USRE36755E - DNA encoding tumor necrosis factor-α and -β receptors - Google Patents

DNA encoding tumor necrosis factor-α and -β receptors Download PDF

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USRE36755E
USRE36755E US09/144,502 US14450298A USRE36755E US RE36755 E USRE36755 E US RE36755E US 14450298 A US14450298 A US 14450298A US RE36755 E USRE36755 E US RE36755E
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Craig A. Smith
Raymond G. Goodwin
M. Patricia Beckmann
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Immunex Corp
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K14/00Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • C07K14/435Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • C07K14/705Receptors; Cell surface antigens; Cell surface determinants
    • C07K14/715Receptors; Cell surface antigens; Cell surface determinants for cytokines; for lymphokines; for interferons
    • C07K14/7151Receptors; Cell surface antigens; Cell surface determinants for cytokines; for lymphokines; for interferons for tumor necrosis factor [TNF], for lymphotoxin [LT]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides

Definitions

  • Tumor necrosis factor- ⁇ also known as cachectin
  • tumor necrosis factor- ⁇ also known as lymphotoxin
  • TNF ⁇ tumor necrosis factor- ⁇
  • lymphotoxin tumor necrosis factor- ⁇
  • TNF proteins initiate their biological effect on cells by binding to specific TNF receptor (TNF-R) proteins expressed on the plasma membrane of a TNF-responsive cell.
  • TNF ⁇ and TNF- ⁇ were first shown to bind to a common receptor on the human cervical carcinoma cell line ME-180 (Aggarwal et al., Nature 318:665, 1985).
  • ME-180 human cervical carcinoma cell line
  • TNF ⁇ and TNF- ⁇ were first shown to bind to a common receptor on the human cervical carcinoma cell line ME-180 (Aggarwal et al., Nature 318:665, 1985).
  • TNF-R TNF receptor
  • the soluble urinary TNF binding protein disclosed by UK 2 218 101 A has a partial N-terminal amino acid sequence of Asp-Ser-Val-Cys-Pro-, which corresponds to the partial sequence disclosed later by Engelmann et al. (1989).
  • the relationship of the above soluble urinary binding proteins was further elucidated after original parent application (U.S. Ser. No. 07/403,241) of the present application was filed, when Engelmann et al. reported the identification and purification of a second distinct soluble urinary TNF binding protein having an N-terminal amino acid sequence of Val-Ala-Phe-Thr-Pro- (J. Biol. Chem. 265:1531, 1990).
  • the two urinary proteins disclosed by the UK 2 218 101 A and the Engelmann et al. publications were shown to be immunochemically related to two apparently distinct cell surface proteins by the ability of antiserum against the binding proteins to inhibit TNF binding to certain cells.
  • TNF-R human 55 kDa TNF-R
  • the TNF-R of both groups has an N-terminal amino acid sequence which corresponds to the partial amino acid sequence of the urinary binding protein disclosed by UK 2 218 101 A, Engelmann et al. (1989) and Englelmann et al. (1990).
  • compositions of TNF-R are needed. Such compositions, however, are obtainable in practical yields only by cloning and expressing genes encoding the receptors using recombinant DNA technology. .[.Efforst.].
  • the present invention also provides recombinant expression vectors comprising the DNA sequences defined above, recombinant TNF-R molecules produced using the recombinant expression vectors, and processes for producing the recombinant TNF-R molecules using the expression vectors.
  • the present invention also provides compositions for use in therapy, diagnosis, assay of TNF-R, or in raising antibodies to TNF-R, comprising effective quantities of soluble native or recombinant receptor proteins prepared according to the foregoing processes.
  • FIGS. 3A-3C depict the cDNA sequence and derived amino acid sequence of murine TNF-R clone 11.
  • the putative signal peptide sequence is represented by amino acids -22 to -1.
  • the N-terminal valine of the mature TNF-R protein is underlined at position 1.
  • the predicted transmembrane region from amino acids 234 to 265 is also underlined..].
  • mature means a protein expressed in a form lacking a leader sequence as may be present in full-length transcripts of a native gene.
  • Experiments using COS cells transfected with a cDNA encoding full-length human TNF-R showed that TNF-R bound 125 I-TNF ⁇ with an apparent K a of about 5 ⁇ 10 9 M -1 , and that TNF-R bound 125 I-TNF ⁇ with an apparent K a of about 2 ⁇ 10 9 M -1 .
  • TNF receptor or “TNF-R” include, but are not limited to, analogs or subunits of native proteins having at least 20 amino acids and which exhibit at least some biological activity in common with TNF-R, for example, soluble TNF-R constructs which are devoid of a transmembrane region (and are secreted from the cell) but retain the ability to bind TNF.
  • soluble TNF-R constructs which are devoid of a transmembrane region (and are secreted from the cell) but retain the ability to bind TNF.
  • bioequivalent protein and amino acid analogs are described in detail below.
  • TNF-R analogs as used herein follows the convention of naming the protein (e.g., TNF-R) preceded by either hu (for human) or mu (for murine) and followed by a ⁇ (to designate a deletion) and the number of the C-terminal amino acid.
  • huTNF-R ⁇ 235 refers to human TNF-R having Asp 235 as the C-terminal amino acid (i.e., a polypeptide having the sequence of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.).
  • TNF-R refers generically to mammalian TNF-R.
  • the term TNF-R means all forms of TNF-R, including mutants and analogs which possess TNF-R biological activity.
  • isolated or purified as used in the context of this specification to define the purity of TNF-R protein or protein compositions, means that the protein or protein composition is substantially free of other proteins of natural or endogenous origin and contains less than about 1% by mass of protein contaminants residual of production processes. Such compositions, however, can contain other proteins added as stabilizers, carriers, excipients or co-therapeutics. TNF-R is isolated if it is detectable as a single protein band in a polyacrylamide gel by silver staining.
  • Recombinant means that a protein is derived from recombinant (e.g., microbial or mammalian) expression systems.
  • Microbial refers to recombinant proteins made in bacterial or fungal (e.g., yeast) expression systems.
  • recombinant microbial defines a protein produced in a microbial expression system which is essentially free of native endogenous substances. Protein expressed in most bacterial cultures, e.g., E. coli, will be free of glycan. Protein expressed in yeast may have a glycosylation pattern different from that expressed in mammalian cells.
  • biologically active as used throughout the specification as a characteristic of TNF receptors, means that a particular molecule shares sufficient amino acid sequence similarity with the embodiments of the present invention disclosed herein to be capable of binding detectable quantifies of TNF, transmitting a TNF stimulus to a cell, for example, as a component of a hybrid receptor construct, or cross-reacting with anti-TNF-R antibodies raised against TNF-R from natural (i.e., nonrecombinant) sources.
  • biologically active TNF receptors within the scope of the present invention are capable of binding greater than 0.1 nmoles TNF per nmole receptor, and most preferably, greater than 0.5 nmole TNF per nmole receptor in standard binding assays (see below).
  • isolated DNA sequence refers to a DNA polymer, in the form of a separate fragment or as a component of a larger DNA construct, which has been derived from DNA isolated at least once in substantially pure form, i.e., free of contaminating endogenous materials and in a quantity or concentration enabling identification, manipulation, and recovery of the sequence and its component nucleotide sequences by standard biochemical methods, for example, using a cloning vector.
  • sequences are preferably provided in the form of an open reading frame uninterrupted by internal nontranslated sequences, or introns, which are typically present in eukaryotic genes. Genomic DNA containing the relevant sequences could also be used as a source of coding sequences. Sequences of nontranslated DNA may be present 5' or 3' from the open reading frame, where the same do not interfere with manipulation or expression of the coding regions.
  • Nucleotide sequence refers to a heteropolymer of deoxyribonucleotides. DNA sequences encoding the proteins provided by this invention can be assembled from cDNA fragments and short oligonucleotide linkers, or from a series of oligonucleotides, to provide a synthetic gene which is capable of being expressed in a recombinant transcriptional unit.
  • the coding sequence of TNF-R is obtained by isolating a complementary DNA (cDNA) sequence encoding TNF-R from a recombinant cDNA or genomic DNA library.
  • a cDNA library is preferably constructed by obtaining polyadenylated mRNA from a particular cell line which expresses a mammalian TNF-R, for example, the human fibroblast cell line WI-26 VA4 (ATCC CCL 95.1) and using the mRNA as a template for synthesizing double stranded cDNA.
  • the double stranded cDNA is then packaged into a recombinant vector, which is introduced into an appropriate E. coli strain and propagated.
  • TNF-R sequences contained in the cDNA library can be readily identified by screening the library with an appropriate nucleic acid probe which is capable of hybridizing with TNF-R cDNA.
  • DNAs encoding TNF-R proteins can be assembled by ligation of synthetic oligonucleotide subunits corresponding to all or part of the sequence of .[.FIGS. 2-3 or FIGS. 4-6.]. .Iadd.SEQ ID NO:1 or SEQ ID NO:3 .Iaddend.to provide a complete coding sequence.
  • the human TNF receptor cDNAs of the present invention were isolated by the method of direct expression cloning.
  • a cDNA library was constructed by first isolating cytoplasmic mRNA from the human fibroblast cell line WI-26 VA4. Polyadenylated RNA was isolated and used to prepare double-stranded cDNA. Purified cDNA fragments were then ligated into pCAV/NOT vector DNA which uses regulatory sequences derived from pDC201 (a derivative of pMLSV, previously described by Cosman et al., Nature 312:768, 1984), SV40 and cytomegalovirus DNA, described in detail below in Example 2.
  • pCAV/NOT has been deposited with the American Type Culture Collection under accession No. ATCC 68014.
  • the pCAV/NOT vectors containing the WI26-VA4 cDNA fragments were transformed into E. coli strain DH5 ⁇ . Transformants were plated to provide approximately 800 colonies per plate. The resulting colonies were harvested and each pool used to prepare plasmid DNA for transfection into COS-7 cells essentially as described by Cosman et al. (Nature 312:768, 1984) and Luthman et al. (Nucl. Acid Res. 11:1295, 1983). Transformants expressing biologically active cell surface TNF receptors were identified by screening for their ability to bind 125 I-TNF.
  • transfected COS-7 cells were incubated with medium containing 125 I-TNF, the cells washed to remove unbound labeled TNF, and the cell monolayers contacted with X-ray film to detect concentrations of TNF binding, as disclosed by Sims et al, Science 241:585 (1988). Transfectants detected in this manner appear as dark foci against a relatively light background.
  • Additional cDNA clones can be isolated from cDNA libraries of other mammalian species by cross-species hybridization.
  • DNA encoding TNF-R may be covalently labeled with a detectable substance such as a fluorescent group, a radioactive atom or a chemiluminescent group by methods well known to those skilled in the art.
  • a detectable substance such as a fluorescent group, a radioactive atom or a chemiluminescent group by methods well known to those skilled in the art.
  • probes could also be used for in vitro diagnosis of particular conditions.
  • mammalian TNF receptors are presumably encoded by multi-exon genes.
  • Alternative mRNA constructs which can be attributed to different mRNA splicing events following transcription, and which share large regions of identity or similarity with the cDNAs claimed herein, are considered to be within the scope of the present invention.
  • TNF-R cDNAs are isolated by using an appropriate human TNF-R DNA sequence as a probe for screening a particular mammalian cDNA library by cross-species hybridization.
  • the present invention provides isolated recombinant mammalian TNF-R polypeptides.
  • Isolated TNF-R polypeptides of this invention are substantially free of other contaminating materials of natural or endogenous origin and contain less than about 1% by mass of protein contaminants residual of production processes.
  • the native human TNF-R molecules are recovered from cell lysates as glycoproteins having an apparent molecular weight by SDS-PAGE of about 80 kilodaltons (kDa).
  • the TNF-R polypeptides of this invention are optionally without associated native-pattern glycosylation.
  • Mammalian TNF-R of the present invention includes, by way of example, primate, human, murine, canine, feline, bovine, ovine, equine and porcine TNF-R.
  • Mammalian TNF-Rs can be obtained by cross species hybridization, using a single stranded cDNA derived from the human TNF-R DNA sequence as a hybridization probe to isolate TNF-R cDNAs from mammalian cDNA libraries.
  • TNF-R within the scope of the invention also include various structural forms of the primary protein which retain biological activity. Due to the presence of ionizable amino and carboxyl groups, for example, a TNF-R protein may be in the form of acidic or basic salts, or may be in neutral form. Individual amino acid residues may also be modified by oxidation or reduction.
  • the primary amino acid structure may be modified by forming covalent or aggregative conjugates with other chemical moieties, such as glycosyl groups, lipids, phosphate, acetyl groups and the like, or by creating amino acid sequence mutants.
  • Covalent derivatives are prepared by linking particular functional groups to TNF-R amino acid side chains or at the N- or C-termini.
  • Other derivatives of TNF-R within the scope of this invention include covalent or aggregative conjugates of TNF-R or its fragments with other proteins or polypeptides, such as by synthesis in recombinant culture as N-terminal or C-terminal fusions.
  • the conjugated peptide may be a a signal (or leader) polypeptide sequence at the N-terminal region of the protein which co-translationally or post-translationally directs transfer of the protein from its site of synthesis to its site of function inside or outside of the cell membrane or wall (e.g., the yeast ⁇ -factor leader).
  • TNF-R protein fusions can comprise peptides added to facilitate purification or identification of TNF-R (e.g., poly-His).
  • TNF receptor can also be linked to the peptide Asp-Tyr-Lys-Asp-Asp-Asp-Asp-Lys (DYKDDDDK) (Hopp et al., Bio/Technology 6:1204, 1988.)
  • the latter sequence is highly antigenic and provides an epitope reversibly bound by a specific monoclonal antibody, enabling rapid assay and facile purification of expressed recombinant protein.
  • This sequence is also specifically cleaved by bovine mucosal enterokinase at the residue immediately following the Asp-Lys pairing. Fusion proteins capped with this peptide may also be resistant to intracellular degradation in E. coli.
  • TNF-R derivatives may also be used as immunogens, reagents in receptor-based immunoassays, or as binding agents for affinity purification procedures of TNF or other binding ligands.
  • TNF-R derivatives may also be obtained by cross-linking agents, such as M-maleimidobenzoyl succinimide ester and N-hydroxysuccinimide, at cysteine and lysine residues.
  • TNF-R proteins may also be covalently bound through reactive side groups to various insoluble substrates, such as cyanogen bromide-activated, bisoxirane-activated, carbonyldiimidazole-activated or tosyl-activated agarose structures, or by adsorbing to polyolefin surfaces (with or without glutaraldehyde cross-linking).
  • substrates such as cyanogen bromide-activated, bisoxirane-activated, carbonyldiimidazole-activated or tosyl-activated agarose structures, or by adsorbing to polyolefin surfaces (with or without glutaraldehyde cross-linking).
  • TNF-R may be used to selectively bind (for purposes of assay or purification) anti-TNF-R antibodies or TNF.
  • TNF-R derivatives may also be obtained by mutations of TNF-R or its subunits.
  • a TNF-R mutant as referred to herein, is a polypeptide homologous to TNF-R but which has an amino acid sequence different from native TNF-R because of a deletion, insertion or substitution.
  • Substantially similar polypeptide sequences generally comprise a like number of amino acids sequences, although C-terminal truncations for the purpose of constructing soluble TNF-Rs will contain fewer amino acid sequences.
  • deletions and substitutions will preferably result in homologous or conservatively substituted sequences, meaning that a given residue is replaced by a biologically similar residue.
  • conservative substitutions include substitution of one aliphatic residue for another, such as Ile, Val, Leu, or Ala for one another, or substitutions of one polar residue for another, such as between Lys and Arg; Glu and Asp; or Gln and Asn.
  • Other such conservative substitutions for example, substitutions of entire regions having similar hydrophobicity characteristics, are well known.
  • particular amino acid differences between human, murine and other mammalian TNF-Rs is suggestive of additional conservative substitutions that may be made without altering the essential biological characteristics of TNF-R.
  • Additional amino acids may be deleted from the .[.transmembrane.]. .Iadd.extracellular .Iaddend.region while retaining TNF binding activity.
  • huTNF-R ⁇ 183 which comprises the sequence of amino acids 1-183 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.
  • TNF-R ⁇ 163 which comprises the sequence of amino acids 1-163 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend., retain the ability to bind TNF ligand as determined using the binding assays described below in Example 1.
  • TNF-R ⁇ 142 does not retain the ability to bind TNF ligand.
  • Cys 157 and Cys 163 are required for formation of an intramolecular disulfide bridge for the proper folding of TNF-R.
  • Cys 178 which was deleted without any apparent adverse effect on the ability of the soluble TNF-R to bind TNF, does not appear to be essential for proper folding of TNF-R.
  • any deletion C-terminal to Cys 163 would be expected to result in a biologically active soluble TNF-R.
  • the present invention contemplates such soluble TNF-R constructs corresponding to all or part of the extracellular region of TNF-R terminating with any amino acid after Cys 163 .
  • Mutations in nucleotide sequences constructed for expression of analog TNF-R must, of course, preserve the reading frame phase of the coding sequences and preferably will not create complementary regions that could hybridize to produce secondary mRNA structures such as loops or hairpins which would adversely affect translation of the receptor mRNA.
  • a mutation site may be predetermined, it is not necessary that the nature of the mutation per se be predetermined. For example, in order to select for optimum characteristics of mutants at a given site, random mutagenesis may be conducted at the target codon and the expressed TNF-R mutants screened for the desired activity.
  • nucleotide substitutions may be made to enhance expression, primarily to avoid secondary structure loops in the transcribed mRNA (see EPA 75,444A, incorporated herein by reference), or to provide codons that are more readily translated by the selected host, e.g., the well-known E. coli preference codons for E. coli expression.
  • Mutations can be introduced at particular loci by synthesizing oligonucleotides containing a mutant sequence, flanked by restriction sites enabling ligation to fragments of the native sequence. Following ligation, the resulting reconstructed sequence encodes an analog having the desired amino acid insertion, substitution, or deletion.
  • oligonucleotide-directed site-specific mutagenesis procedures can be employed to provide an altered gene having particular codons altered according to the substitution, deletion, or insertion required.
  • Exemplary methods of making the alterations set forth above are disclosed by Walder et al. (Gene 42:133, 1986); Bauer et al. (Gene 37:73, 1985); Craik (BioTechniques, January 1985, 12-19); Smith et al. (Genetic Engineering: Principles and Methods, Plenum Press, 1981); and U.S. Pat. Nos. 4,518,584 and 4,737,462 disclose suitable techniques, and are incorporated by reference herein.
  • TNF-R Both monovalent forms and polyvalent forms of TNF-R are useful in the compositions and methods of this invention.
  • Polyvalent forms possess multiple TNF-R binding sites for TNF ligand.
  • a bivalent soluble TNF-R may consist of two tandem repeats of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend., separated by a linker region.
  • Alternate polyvalent forms may also be constructed, for example, by chemically coupling TNF-R to any clinically acceptable carrier molecule, a polymer selected from the group consisting of Ficoll, polyethylene glycol or dextran using conventional coupling techniques.
  • TNF-R may be chemically coupled to biotin, and the biotin-TNF-R conjugate then allowed to bind to avidin, resulting in tetravalent avidin/biotin/TNF-R molecules.
  • TNF-R may also be covalently coupled to dinitrophenol (DNP) or trinitrophenol (TNP) and the resulting conjugate precipitated with anti-DNP or anti-TNP-IgM, to form decameric conjugates with a valency of 10 for TNF-R binding sites.
  • DNP dinitrophenol
  • TNP trinitrophenol
  • a recombinant chimeric antibody molecule may also be produced having TNF-R sequences substituted for the variable domains of either or both of the .[.immunoglubulin.]. .Iadd.immunoglobulin .Iaddend.molecule heavy and light chains and having unmodified constant region domains.
  • chimeric TNF-R/IgG 1 may be produced from two chimeric genes--a TNF-R/human ⁇ light chain chimera (TNF-R/C.sub. ⁇ ) and a TNF-R/human ⁇ 1 heavy chain chimera (TNF-R/C.sub. ⁇ -1).
  • TNF-R displayed bivalently.
  • Such polyvalent forms of TNF-R may have enhanced binding affinity for TNF ligand. Additional details relating to the construction of such chimeric antibody molecules are disclosed in WO 89/09622 and EP 315062.
  • the present invention provides recombinant expression vectors to amplify or express DNA encoding TNF-R.
  • Recombinant expression vectors are replicable DNA constructs which have synthetic or cDNA-derived DNA fragments encoding mammalian TNF-R or bioequivalent analogs operably linked to suitable transcriptional or translational regulatory elements derived from mammalian, microbial, vital or insect genes.
  • a transcriptional unit generally comprises an assembly of (1) a genetic element or elements having a regulatory role in gene expression, for example, transcriptional promoters or enhancers, (2) a structural or coding sequence which is transcribed into mRNA and translated into protein, and (3) appropriate transcription and translation initiation and termination sequences, as described in detail below.
  • Such regulatory elements may include an operator sequence to control transcription, a sequence encoding suitable mRNA ribosomal binding sites.
  • the ability to replicate in a host, usually conferred by an origin of replication, and a selection gene to facilitate recognition of transformants may additionally be incorporated.
  • DNA regions are operably linked when they are functionally related to each other. For example, DNA for a signal peptide (secretory leader) is operably linked to DNA for a polypeptide if it is expressed as a precursor which participates in the secretion of the polypeptide; a promoter is operably linked to a coding sequence if it controls the transcription of the sequence; or a ribosome binding site is operably linked to a coding sequence if it is positioned so as to permit translation.
  • signal peptide secretory leader
  • a promoter is operably linked to a coding sequence if it controls the transcription of the sequence
  • a ribosome binding site is operably linked to a coding sequence if it is positioned so
  • operably linked means contiguous and, in the case of secretory leaders, contiguous and in reading frame.
  • Structural elements intended for use in yeast expression systems preferably include a leader sequence enabling extracellular secretion of translated protein by a host cell.
  • recombinant protein may include an N-terminal methionine residue. This residue may optionally be subsequently cleaved from the expressed recombinant protein to provide a final product.
  • DNA sequences encoding mammalian TNF receptors which are to be expressed in a microorganism will preferably contain no introns that could prematurely terminate transcription of DNA into mRNA; however, premature termination of transcription may be desirable, for example, where it would result in mutants having advantageous C-terminal truncations, for example, deletion of a transmembrane region to yield a soluble receptor not bound to the cell membrane. Due to code degeneracy, there can be considerable variation in nucleotide sequences encoding the same amino acid sequence. Other embodiments include sequences capable of hybridizing to the sequences of the provided cDNA under moderately stringent conditions (50° C., 2 ⁇ SSC) and other sequences hybridizing or degenerate to those which encode biologically active TNF receptor polypeptides.
  • moderately stringent conditions 50° C., 2 ⁇ SSC
  • Recombinant TNF-R DNA is expressed or amplified in a recombinant expression system comprising a substantially homogeneous monoculture of suitable host microorganisms, for example, bacteria such as E. coli or yeast such as S. cerevisiae, which have stably integrated (by transformation or transfection) a recombinant transcriptional unit into chromosomal DNA or carry the recombinant transcriptional unit as a component of a resident plasmid.
  • suitable host microorganisms for example, bacteria such as E. coli or yeast such as S. cerevisiae, which have stably integrated (by transformation or transfection) a recombinant transcriptional unit into chromosomal DNA or carry the recombinant transcriptional unit as a component of a resident plasmid.
  • suitable host microorganisms for example, bacteria such as E. coli or yeast such as S. cerevisiae, which have stably integrated (by transformation or transfection) a re
  • Higher eukaryotic cells include established cell lines of mammalian origin as described below.
  • Cell-free translation systems could also be employed to produce mammalian TNF-R using RNAs derived from the DNA constructs of the present invention.
  • Appropriate cloning and expression vectors for use with bacterial, fungal, yeast, and mammalian cellular hosts are described by Pouwels et al. (Cloning Vectors: A Laboratory Manual, Elsevier, N.Y., 1985), the relevant disclosure of which is hereby incorporated by reference.
  • Prokaryotic expression hosts may be used for expression of TNF-R that do not require extensive proteolytic and disulfide processing.
  • Prokaryotic expression vectors generally comprise one or more phenotypic selectable markers, for example a gene encoding proteins conferring antibiotic resistance or supplying an autotrophic requirement, and an origin of replication recognized by the host to ensure amplification within the host.
  • Suitable prokaryotic hosts for transformation include E. coli, Bacillus subtilis, Salmonella typhimurium, and various species within the genera Pseudomonas, Streptomyces, and .[.Staphyolococcus.]. .Iadd.Staphylococcus.Iaddend., although others may also be employed as a matter of choice.
  • Useful expression vectors for bacterial use can comprise a selectable marker and bacterial origin of replication derived from commercially available plasmids comprising genetic elements of the well known cloning vector pBR322 (ATCC 37017).
  • Such commercial vectors include, for example, pKK223-3 (Pharmacia Fine Chemicals, Uppsala, Sweden) and pGEM1 (Promega Biotec, Madison, Wis., USA). These pBR322 "backbone" sections are combined with an appropriate promoter and the structural sequence to be expressed.
  • E. coli is typically transformed using derivatives of pBR322, a plasmid derived from an E. coli species (Bolivar et al., Gene 2:95, 1977).
  • pBR322 contains genes for ampicillin and tetracycline resistance and thus provides simple means for identifying transformed cells.
  • Promoters commonly used in recombinant microbial expression vectors include the ⁇ -lactamase (penicillinase) and lactose promoter system (Chang et al., Nature 275:615, 1978; and Goeddel et al., Nature 281:544, 1979), the tryptophan (trp) promoter system (Goeddel et al., Nucl. Acids Res. 8:4057, 1980; and EPA 36,776) and tac promoter (Maniatis, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory, p. 412, 1982).
  • a particularly useful bacterial expression system employs the phage ⁇ P L promoter and cI857ts thermolabile repressor.
  • Plasmid vectors available from the American Type Culture Collection which incorporate derivatives of the ⁇ P L promoter include plasmid pHUB2, resident in E. coli strain JMB9 (ATCC 37092) and pPLc28, resident in E. coli RR1 (ATCC 53082).
  • Recombinant TNF-R proteins may also be expressed in yeast hosts, preferably from the Saccharomyces species, such as S. cerevisiae. Yeast of other genera, such as Pichia or Kluyveromyces may also be employed. Yeast vectors will generally contain an origin of replication from the 2 ⁇ yeast plasmid or an autonomously replicating sequence (ARS), promoter, DNA encoding TNF-R, sequences for polyadenylation and transcription termination and a selection gene. Preferably, yeast vectors will include an origin of replication and selectable marker permitting transformation of both yeast and E. coli, e.g., the ampicillin resistance gene of E. coli and S.
  • ARS autonomously replicating sequence
  • TRP1 or URA3 gene which provides a selection marker for a mutant strain of yeast lacking the ability to grow in tryptophan, and a promoter derived from a highly expressed yeast gene to induce transcription of a structural sequence downstream.
  • the presence of the TRP1 or URA3 lesion in the yeast host cell genome then provides an effective environment for detecting transformation by growth in the absence of tryptophan or uracil.
  • Suitable promoter sequences in yeast vectors include the promoters for metallothionein, 3-phosphoglycerate kinase (Hitzeman et al., J. Biol. Chem. 255:2073, 1980) or other glycolytic enzymes (Hess et al., J. Adv. Enzyme Reg. 7:149, 1968; and Holland et al., Biochem.
  • enolase such as enolase, glyceraldehyde-3-phosphate dehydrogenase, hexokinase, pyruvate decarboxylase, phosphofructokinase, glucose-6-phosphate isomerase, 3-phosphoglycerate mutase, pyruvate kinase, triosephosphate isomerase, phosphoglucose isomerase, and glucokinase.
  • Suitable vectors and promoters for use in yeast expression are further described in R. Hitzeman et al., EPA 73,657.
  • Preferred yeast vectors can be assembled using DNA sequences from pUC18 for selection and replication in E. coli (Amp r gene and origin of replication) and yeast DNA sequences including a glucose-repressible ADH2 promoter and ⁇ -factor secretion leader.
  • the ADH2 promoter has been described by Russell et al. (J. Biol. Chem. 258:2674, 1982) and Beier et al. (Nature 300:724, 1982).
  • the yeast ⁇ -factor leader which directs secretion of heterologous proteins, can be inserted between the promoter and the structural gene to be expressed. See, e.g., Kurjan et al., Cell 30:933, 1982; and Bitter et al., Proc. Natl. Acad. Sci. USA 81:5330, 1984.
  • the leader sequence may be modified to contain, near its 3' end, one or more useful restriction sites to facilitate fusion of the leader sequence to foreign genes.
  • Suitable yeast transformation protocols are known to those of skill in the art; an exemplary technique is described by Hinnen et al., Proc. Natl. Acad. Sci. USA 75:1929, 1978, selecting for Trp + transformants in a selective medium consisting of 0.67% yeast nitrogen base, 0.5% casamino acids, 2% glucose, 10 ⁇ g/ml adenine and 20 ⁇ g/ml uracil or URA+ tranformants in medium consisting of 0.67% YNB, with amino acids and bases as described by Sherman et al., Laboratory Course Manual for Methods in Yeast Genetics, Cold Spring Harbor Laboratory, Cold Spring Harbor, N.Y., 1986.
  • Host strains transformed by vectors comprising the ADH2 promoter may be grown for expression in a rich medium consisting of 1% yeast extract, 2% peptone, and 1% or 4% glucose supplemented with 80 ⁇ g/ml adenine and 80 ⁇ g/ml uracil. Derepression of the ADH2 promoter occurs upon exhaustion of medium glucose. Crude yeast supernatants are harvested by filtration and held at 4° C. prior to further purification.
  • Mammalian expression vectors may comprise nontranscribed elements such as an origin of replication, a suitable promoter and enhancer linked to the gene to be expressed, and other 5' or 3' flanking nontranscribed sequences, and 5' or 3' nontranslated sequences, such as necessary ribosome binding sites, a polyadenylation site, splice donor and acceptor sites, and transcriptional termination sequences.
  • nontranscribed elements such as an origin of replication, a suitable promoter and enhancer linked to the gene to be expressed, and other 5' or 3' flanking nontranscribed sequences, and 5' or 3' nontranslated sequences, such as necessary ribosome binding sites, a polyadenylation site, splice donor and acceptor sites, and transcriptional termination sequences.
  • Smaller or larger SV40 fragments may also be used, provided the approximately 250 bp sequence extending from the Hind 3 site toward the Bgl1 site located in the vital origin of replication is included.
  • mammalian genomic TNF-R promoter, control and/or signal sequences may be utilized, provided such control sequences are compatible with the host cell chosen. Additional details regarding the use of a mammalian high expression vector to produce a recombinant mammalian TNF receptor are provided in Examples 2 and 7 below. Exemplary vectors can be constructed as disclosed by Okayama and Berg (Mol. Cell. Biol. 3:280, 1983).
  • a particularly preferred co-amplification system uses the gene for glutamine synthetase (CS), which is responsible for the synthesis of glutamate and ammonia using the hydrolysis of ATP to ADP and phosphate to drive the reaction.
  • GS is subject to inhibition by a variety of inhibitors, for example methionine sulphoximine (MSX).
  • MSX methionine sulphoximine
  • TNF-R can be expressed in high concentrations by co-amplifying cells transformed with a vector comprising the DNA sequence for GS and a desired protein, or co-transformed with a vector comprising a DNA sequence encoding GS and a vector comprising a DNA sequence encoding the desired protein, culturing the host cells in media containing increasing levels of MSX and selecting for surviving cells.
  • the GS co-amplification system, appropriate recombinant expression vectors and cells lines, are described in the following PCT applications: WO 87/04462, WO 89/01036, WO 89/10404
  • Recombinant proteins are preferably expressed by co-amplification of DHFR or GS in a mammalian host cell, such as Chinese Hamster Ovary (CHO) cells, or alternatively in a murine myeloma cell line, such as SP2/0-Ag14 or NS0 or a rat myeloma cell line, such as YB2/3.0-Ag20, disclosed in PCT applications WO/89/10404 and WO 86/05807.
  • a mammalian host cell such as Chinese Hamster Ovary (CHO) cells
  • a murine myeloma cell line such as SP2/0-Ag14 or NS0
  • a rat myeloma cell line such as YB2/3.0-Ag20
  • Purified mammalian TNF receptors or analogs are prepared by culturing suitable host/vector systems to express the recombinant translation products of the DNAs of the present invention, which are then purified from culture media or cell extracts.
  • supernatants from systems which secrete recombinant protein into culture media can be first concentrated using a commercially available protein concentration filter, for example, an Amicon or Millipore Pellicon ultrafiltration unit. Following the concentration step, the concentrate can be applied to a suitable purification matrix.
  • a suitable affinity matrix can comprise a TNF or lectin or antibody molecule bound to a suitable support.
  • an anion exchange resin can be employed, for example, a matrix or substrate having pendant diethylaminoethyl (DEAE) groups.
  • the matrices can be acrylamide, agarose, dextran, cellulose or other types commonly employed in protein purification.
  • a cation exchange step can be employed. Suitable cation exchangers include various insoluble matrices comprising sulfopropyl or carboxymethyl groups. Sulfopropyl groups are preferred.
  • Fermentation of yeast which express mammalian TNF-R as a secreted protein greatly simplifies purification.
  • Secreted recombinant protein resulting from a large-scale fermentation can be purified by methods analogous to those disclosed by Urdal et al. (J. Chromatog. 296:171, 1984).
  • This reference describes two sequential, reversed-phase HPLC steps for purification of recombinant human GM-CSF on a preparative HPLC column.
  • purified soluble TNF-R protein is administered to a patient, preferably a human, for treatment in a manner appropriate to the indication.
  • soluble TNF-R protein compositions can be administered by bolus injection, continuous infusion, sustained release from implants, or other suitable technique.
  • a soluble TNF-R therapeutic agent will be administered in the form of a composition comprising purified protein in conjunction with physiologically acceptable carriers, excipients or diluents.
  • physiologically acceptable carriers, excipients or diluents Such carders will be nontoxic to recipients at the dosages and concentrations employed.
  • Soluble TNF-R proteins are administered for the purpose of inhibiting TNF-dependent responses.
  • TNF diseases or conditions are believed to be caused by TNF, such as cachexia and septic shock.
  • other key cytokines IL-1, IL-2 and other colony stimulating factors
  • Soluble TNF-R compositions may therefore be used, for example, to treat cachexia or septic shock or to treat side effects associated with cytokine therapy.
  • combination therapy using both IL-1 receptors or IL-2 receptors may be preferred in the treatment of TNF-associated clinical indications.
  • Various human cell lines were screened for expression of TNF-R based on their ability to bind 125 I-labeled TNF.
  • An unsized cDNA library was constructed by reverse transcription of polyadenylated mRNA isolated from total RNA extracted from human fibroblast WI-26 VA4 cells grown in the presence of pokeweed mitogen using standard techniques (Gubler, et al., Gene 25:263, 1983; Ausubel et al., eds., Current Protocols in Molecular Biology, Vol. 1, 1987). The cells were harvested by lysing the cells in a guanidine hydrochloride solution and total RNA isolated as previously described (March et al., Nature 315:641, 1985).
  • RNA was isolated by oligo dT cellulose chromatography and double-stranded cDNA was prepared by a method similar to that of Gubler and Hoffman (Gene 25:263, 1983). Briefly, the poly A + RNA was converted to an RNA-cDNA hybrid by reverse transcriptase using oligo dT as a primer. The RNA-cDNA hybrid was then converted into double-stranded cDNA using RNAase H in combination with DNA polymerase I. The resulting double stranded cDNA was blunt-ended with T4 DNA polymerase. To the blunt-ended cDNA is added EcoRI linker-adapters (having internal Not1 sites) which were phosphorylated on only one end (Invitrogen).
  • the linker-adaptered cDNA was treated with T4 polynucleotide kinase to phosphorylate the 5' overhanging region of the linker-adapter and unligated linkers were removed by running the cDNA over a Sepharose CL4B column.
  • the linker-adaptered cDNA was ligated to an equimolar concentration of EcoR1 cut and dephosphorylated arms of bacteriophage ⁇ gt10 (Huynh et al, DNA Cloning: A Practical Approach, Glover, ed., IRL Press, pp. 49-78).
  • the ligated DNA was packaged into phage particles using a commercially available kit to generate a library of recombinants (Stratagene Cloning Systems, San Diego, Calif., USA). Recombinants were further amplified by plating phage on a bacterial lawn of E. coli strain c600(hfl - ).
  • Phage DNA was purified from the resulting ⁇ gt10 cDNA library and the cDNA inserts excised by digestion with the restriction enzyme Not1. Following electrophoresis of the digest through an agarose gel, cDNAs greater than 2,000 bp were isolated.
  • pCAV/NOT eukaryotic expression vector
  • pDC201 a derivative of pMLSV, previously described by Cosman et al., Nature 312:768, 1984
  • SV40 and cytomegalovirus DNA comprises, in sequence with the direction of transcription from the origin of replication: (1) SV40 sequences from coordinates 5171-270 including the origin of replication, enhancer sequences and early and late promoters; (2) cytomegalovirus sequences including the promoter and enhancer regions (nucleotides 671 to +63 from the sequence published by Boechart et al.
  • adenovirus-2 sequences containing the first exon and part of the intron between the first and second exons of the tripartite leader, the second exon and part of the third exon of the tripartite leader and a multiple cloning site (MCS) containing sites for Xho1, Kpn1, Sma1, Not1 and Bgl1; (4) SV40 sequences from coordinates 4127-4100 and 2770-2533 that include the polyadenylation and termination signals for early transcription; (5) sequences derived from pBR322 and virus-associated sequences VAI and VAII of pDC201, with adenovirus sequences 10532-11156 containing the VAI and VAII genes, followed by pBR322 sequences from 4363-2486 and 1094-375 containing the ampicillin resistance gene and origin of replication.
  • MCS multiple cloning site
  • the resulting WI-26 VA4 cDNA library in pCAV/NOT was used to transform E. coli strain DH5 ⁇ , and recombinants were plated to provide approximately 800 colonies per plate and sufficient plates to provide approximately 50,000 total colonies per screen. Colonies were scraped from each plate, pooled, and plasmid DNA prepared from each pool. The pooled DNA was then used to transfect a sub-confluent layer of monkey COS-7 cells using DEAE-dextran followed by chloroquine treatment, as described by Luthman et al. (Nucl. Acids Res. 11:1295, 1983) and McCutchan et al. (J. Natl. Cancer Inst. 41:351, 1986).
  • the cells were then grown in culture for three days to permit transient expression of the inserted sequences. After three days, cell culture supernatants were discarded and the cell monolayers in each plate assayed for TNF binding as follows. Three ml of binding medium containing 1.2 ⁇ 10 -11 M 125 I-labeled FLAG®-TNF was added to each plate and the plates incubated at 4° C. for 120 minutes. This medium was then discarded, and each plate was washed once with cold binding medium (containing no labeled TNF) and twice with cold PBS. The edges of each plate were then broken off, leaving a flat disk which was contacted with X-ray film for 72 hours at -70° C. using an intensifying screen. TNF binding activity was visualized on the exposed films as a dark focus against a relatively uniform background.
  • a frozen stock of bacteria from the positive pool was then used to obtain plates of approximately 150 colonies. Replicas of these plates were made on nitrocellulose filters, and the plates were then scraped and plasmid DNA prepared and transfected as described above to identify a positive plate. Bacteria from individual colonies from the nitrocellulose replica of this plate were grown in 0.2 ml cultures, which were used to obtain plasmid DNA, which was transfected into COS-7 cells as described above. In this manner, a single clone, clone 1, was isolated which was capable of inducing expression of human TNF-R in COS cells.
  • the expression vector pCAV/NOT containing the TNF-R cDNA clone 1 has been deposited with the American Type Culture Collection, 12301 Parklawn Drive, Rockville, Md. 20852, USA (Accession No. 68088) under the name pCAV/NOT-TNF-R.
  • a cDNA encoding a soluble huTNF-R ⁇ 235 (having the sequence of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising an 840 bp fragment from pCAV/NOT-TNF-R with the restriction enzymes Not1 and Pvu2. Not1 cuts at the multiple cloning site of pCAV/NOT-TNF-R and Pvu2 cuts within the TNF-R coding region 20 nucleotides 5' of the transmembrane region.
  • a cDNA encoding a soluble huTNF-R ⁇ 185 (having the sequence of amino acids 1-185 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising a 640 bp fragment from pCAV/NOT-TNF-R with the restriction enzymes Not1 and Bgl2. Not1 cuts at the multiple cloning site of pCAV/NO-TNF-R and Bgl2 cuts within the TNF-R coding region at nucleotide 637, which is 237 nucleotides 5' of the transmembrane region.
  • the following oligonucleotide linkers .Iadd.(encoding amino acids corresponding to Ile 162 -Ala 176 and Val 177 -Arg 185 of SEQ ID NO:1) .Iaddend. were synthesized:
  • a cDNA encoding a soluble huTNF-R ⁇ 163 (having the sequence of amino acids 1-163 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising a 640 bp fragment from from pCAV/NOT-TNF-R with the restriction enzymes Not1 and Bgl2 as described in Example 4.
  • the following oligonucleotide linkers .Iadd.(encoding amino acids corresponding to Ile 162 -Cys 163 of SEQ ID NO:1) .Iaddend. were synthesized:
  • This above oligonucleotide linker reconstructs the 3' end of the receptor molecule up to nucleotide 579 (amino acid 142), followed by a termination codon (underlined).
  • This oligonucleotide was then ligated with the 550 bp Not1/AlwN1 TNF-R insert into Not1/Bgl2 cut pCAV/NOT to yield the expression vector psolTNFR ⁇ 142/CAVNOT, which was transfected into COS-7 cells as described above.
  • This expression vector did not induced expression of soluble human TNF-R which was capable of binding TNF.
  • p6/PSVLGS.1 contains the glutamine synthetase selectable marker gene under control of the SV40 later promoter.
  • the BamH1 to Bgl2 fragment of pEE6hCMV contains the human cytomegalovirus major immediate early promoter (hCMV), a polylinker, and the SV40 early polyadenylation signal.
  • the coding sequences for soluble TNF-R were added to p6/PSVLGS.1 by excising a Not1 to BamH1 fragment from the expression vector psolTNFR/CAVNOT (made according to Example 3 above), blunt ending with Klenow and ligating with SmaI cut dephosphorylated p6/PSVLGS.1, thereby placing the solTNF-R coding sequences under the control of the hCMV promoter. This resulted in a single plasmid vector in which the SV40/GS and hCMB/solTNF-R transcription units are transcribed in opposite directions. This vector was designated psolTNFR/P6/PSVLGS.
  • psolTNFR/P6/PSVLGS was used to transfect CHO-K1 cells (available from ATCC, Rockville, Md., under accession number CCL 61) as follows.
  • a monolayer of CHO-K1 cells were grown to subconfluency in Minimum Essential Medium (MEM) 10X (Gibco: 330-1581AJ) without glutamine and supplemented with 10% dialysed fetal bovine serum (Gibco: 220-6300AJ), 1 mM sodium pyruvate (Sigma), MEM non-essential amino acids (Gibco: 320-1140AG), 500 ⁇ M asparagine and glutamate (Sigma) and nucleosides (30 ⁇ M adenosine, guanosine, cytidine and uridine and 10 ⁇ M thymidine)(Sigma).
  • MEM Minimum Essential Medium
  • nucleosides 30 ⁇ M adenosine, guanosine, cytidine and
  • Colonies of MSX-resistant surviving cells were visible within 3-4 weeks. Surviving colonies were transferred to 24-well plates and allowed to grow to confluency in selective medium. Conditioned medium from confluent wells were then assayed for soluble TNF-R activity using the binding assay described in Example 1 above. These assays indicated that the colonies expressed biologically active soluble TNF-R.
  • MSX-resistant cell lines are transfected with psolTNFR/P6/PSVLGS and grown in various concentrations of MSX.
  • approximately 1 ⁇ 10 6 cells are plated in gradually increasing concentrations of 100 .[.uM.]. .Iadd. ⁇ M.Iaddend., 250 .[.uM.]. .Iadd. ⁇ M.Iaddend., 500 .[.uM.]. .Iadd. ⁇ M .Iaddend.and 1 mM MSX and incubated for 10-14 days. After 12 days, colonies resistant to the higher levels of MSX appear. The surviving colonies are assayed for TNF-R activity using the binding assay described above in Example 1.
  • Each of these highly resistant cell lines contains cells which arise from multiple independent amplification events. From these cells lines, one or more of the most highly resistant cells lines are isolated. The amplified cells with high production rates are then cloned by limiting dilution cloning. Mass cell cultures of the transfectants secrete active soluble TNF-R.
  • Soluble human TNF-R was expressed in yeast with the expression vector pIXY432, which was derived from the yeast expression vector pIXY120 and plasmid pYEP352.
  • pIXY120 is identical to pY ⁇ HuGM (ATCC 53157), except that it contains no cDNA insert and includes a polylinker/multiple cloning site with a Nco1 restriction site.
  • a DNA fragment encoding TNF receptor and suitable for cloning into the yeast expression vector pIXY120 was first generated by polymerase chain reaction (PCR) amplification of the extracellular portion of the full length receptor from pCAV/NOT-TNF-R (ATCC 68088).
  • PCR polymerase chain reaction
  • the following primers .Iadd.(encoding amino acids corresponding in part to amino acids Leu 1 -Thr 8 and Pro 225 -Asp 235 of SEQ ID NO:1) .Iaddend. were used in this PCR amplification:
  • the 5' end oligonucleotide primer used in the amplification included an Asp718 restriction site at its 5' end, followed by nucleotides encoding the 3' end of the yeast ⁇ -factor leader sequence (Pro-Leu-Asp-Lys-Arg) and those encoding the 8 amino acids of the FLAG® peptide (AspTyrLysAspAspAspAspLys) fused to sequence encoding the 5' end of the mature receptor.
  • the FLAG® peptide (Hopp et al., Bio/Technology 6:1204, 1988) is a highly antigenic sequence which reversibly binds the monoclonal antibody M1 (ATCC HB 9259).
  • the oligonucleotide used to generate the 3' end of the PCR-derived fragment is the antisense strand of DNA encoding sequences which terminate the open reading frame of the receptor after nucleotide 704 of the mature coding region (following the Asp residue preceding the transmembrane domain) by introducing a TAA stop codon (underlined). The stop codon is then followed by a BamH1 restriction site.
  • the DNA sequences encoding TNF-R are then amplified by PCR, substantially as described by Innis et al., eds., PCR Protocols: A Guide to Methods and Applications (Academic Press, 1990).
  • the PCR-derived DNA fragment encoding soluble human TNF-R was subcloned into the yeast expression vector pIXY120 by digesting the PCR-derived DNA fragment with BamH1 and Asp718 restriction enzymes, digesting pIXY120 with BamH1 and Asp718, and ligating the PCR fragment into the cut vector in vitro with T4 DNA ligase.
  • the resulting construction (pIXY424) fused the open reading frame of the FLAG®-soluble TNF receptor in-frame to the complete ⁇ -factor leader sequence and placed expression in yeast under the aegis of the regulated yeast alcohol dehydrogenase (ADH2) promoter.
  • Soluble human TNF receptor was also expressed and secreted in yeast in a second vector.
  • This second vector was generated by recovering the pIXY424 plasmid from E. coli and digesting with EcoR1 and BamH1 restriction enzymes to isolate the fragment spanning the region encoding the ADH2 promoter, the ⁇ -factor leader, the FLAG®-soluble TNF receptor and the stop codon. This fragment was ligated in vitro into EcoR1 and BamH1 cut plasmid pYEP352 (Hill et al., Yeast 2:163 (1986)), to yield the expression plasmid pIXY432, which was transformed into E. coli strain RR1.
  • pIXY424 was purified and introduced into a diploid yeast strain of S. cerevisiae (XV2181) by electroporation and selection for acquisition of the plasmid-borne yeast TRP1 + gene on media lacking tryptophan.
  • the plasmid was introduced into the yeast strain PB149-6b by electroporation followed by selection for the plasmid-borne URA3 + gene with growth on media lacking uracil. Overnight cultures were grown at 30° C. in the appropriate selective media.
  • the PB149-6b/pIXY434 transformants were diluted into YEP-1% glucose media and grown at 30° C. for 38-40 hours.
  • Supernatants were prepared by removal of cells by centrifugation, and filtration of supernatants through 0.45 .Iadd. ⁇ .Iaddend.g filters.
  • the level of secreted receptor in the supernatants was determined by immunodotblot. Briefly, 1 ul of supernatants, and dilutions of the supernatants, were spotted onto nitrocellulose filters and allowed to dry. After blocking non-specific protein binding with a 3% BSA solution, the filters were incubated with diluted M1 anti-FLAG® antibody, excess antibody was removed by washing and then dilutions of horseradish peroxidase conjugated anti-mouse IgG antibodies were incubated with the filters. After removal of excess secondary antibodies, peroxidase substrates were added and color development was allowed to proceed for approximately 10 minutes prior to removal of the substrate solution.
  • the anti-FLAG® reactive material found in the supernatants demonstrated that significant levels of receptor were secreted by both expression systems. Comparisons demonstrated that the pIXY432 system secreted approximately 8-16 times more soluble human TNF receptor than the pIXY424 system. The supernatants were assayed for soluble TNF-R activity, as described in Example 1, by their ability to bind 125 I-TNF ⁇ and block TNF ⁇ binding. The pIXY432 supernatants were found to contain significant levels of active soluble TNF-R.
  • Murine TNF-R cDNAs were isolated from a cDNA library made from murine 7B9 cells, an antigen-dependent helper T cell line derived from C57BL/6 mice, by cross-species hybridization with a human TNF-R probe.
  • the cDNA library was constructed in ⁇ ZAP (Stratagene, San Diego), substantially as described above in Example 2, by isolating polyadenylated RNA from the 7B9 cells.
  • a double-stranded human TNF-R cDNA probe was produced by excising an approximately 3.5 kb Not1 fragment of the human TNF-R clone 1 and 32 P-labeling the cDNA using random primers (Boehringer-Mannheim).
  • the murine cDNA library was amplified once and a total of 900,000 plaques were screened, substantially as described in Example 2, with the human TNF-R cDNA probe. Approximately 21 positive plaques were purified, and the Bluescript plasmids containing EcoR1-linkered inserts were excised (Stratagene, San Diego). Nucleic acid sequencing of a portion of murine TNF-R clone 11 indicated that the coding sequence of the murine TNF-R was approximately 88% homologous to the corresponding nucleotide sequence of human TNF-R. A partial nucleotide sequence of murine TNF-R cDNA clone 11 is set forth in .[.FIGS. 3A-3B.]. .Iadd.SEQ ID NO:3 and SEQ ID NO:4.Iaddend..
  • Preparations of purified recombinant TNF-R for example, human TNF-R, or transfected COS cells expressing high levels of TNF-R are employed to generate monoclonal antibodies against TNF-R using conventional techniques, for example, those disclosed in U.S. Pat. No. 4,411,993. Such antibodies are likely to be useful in interfering with TNF binding to TNF receptors, for example, in ameliorating toxic or other undesired effects of TNF, or as components of diagnostic or research assays for TNF or soluble TNF receptor.
  • TNF-R immunogen is emulsified in complete Freund's adjuvant and injected in amounts ranging from 10-100 ⁇ g subcutaneously into Balb/c mice.
  • the immunized animals are boosted with additional immunogen emulsified in incomplete Freund's adjuvant and periodically boosted thereafter on a weekly to biweekly immunization schedule.
  • Serum samples are periodically taken by retro-orbital bleeding or tail-tip excision for testing by dot-blot assay (antibody sandwich) or ELISA (enzyme-linked immunosorbent assay). Other assay procedures are also suitable. Following detection of an appropriate antibody liter, positive animals are given an intravenous injection of antigen in saline.
  • Hybridoma cell lines generated by this procedure are plated in multiple microtiter plates in a HAT selective medium (hypoxanthine, aminopterin, and thymidine) to inhibit proliferation of non-fused cells, myeloma hybrids, and spleen cell hybrids.
  • HAT selective medium hyperxanthine, aminopterin, and thymidine
  • Hybridoma clones thus generated can be screened by ELISA for reactivity with TNF-R, for example, by adaptations of the techniques disclosed by Engvall et al., Immunochem. 8:871 (1971) and in U.S. Pat. No. 4,703,004. Positive clones are then injected into the peritoneal cavities of syngeneic Balb/c mice to produce ascites containing high concentrations (>1 mg/ml) of anti-TNF-R monoclonal antibody. The resulting monoclonal antibody can be purified by ammonium sulfate precipitation followed by gel exclusion chromatography, and/or affinity chromatography based on binding of antibody to Protein A of Staphylococcus aureus.
  • SEQ ID NO:1 and SEQ ID NO:2 show the partial cDNA sequence and derived amino acid sequence of the human TNF-R clone 1. Nucleotides are numbered from the beginning of the 5' untranslated region. Amino acids are numbered from the beginning of the signal peptide sequence. The putative signal sequence is represented by amino acid -22 to -1. The N-terminus of the mature TNF-R begins with amino acid -1. The predicted transmembrane region extends from amino acids 236-265.
  • SEQ ID NO:3 and SEQ ID NO:4 show the cDNA sequence and derived amino acid sequence of murine TNF-R clone 11.
  • the putative signal peptide sequence is represented by amino acids -22 to -1.
  • the N-terminus of the mature TNF-R protein begins with amino acid 1.
  • the predicted transmembrane region extends from amino acids 234 to 265.

Abstract

Tumor necrosis factor receptor DNAs and expression vectors encoding TNF receptors, and processes for producing TNF receptors as products of recombinant cell culture, are disclosed.

Description

CROSS-REFERENCE TO RELATED APPLICATION
This application .Iadd.is a Reissue of U.S. Pat. No. 5,712,155, which issued from U.S. application Ser. No. 08/346,555, filed Nov. 29, 1994; which .Iaddend.is a continuation of U.S. application Ser. No. 07/523,635, filed May 10, 1990, now U.S. Pat. No. 5,395,760, which is a continuation-in-part of U.S. application Ser. No. 07/421,417, filed Oct. 13, 1989; .Iadd.now .Iaddend.abandoned, which is a continuation-in-part of U.S. application Ser. No. 07/405,370, filed Sep. 11, 1989, now abandoned, which is a continuation-in-part of U.S. application Ser. No. 07/403,241, filed Sep. 5, 1989, now abandoned.
BACKGROUND OF THE INVENTION
The present invention relates generally to cytokine receptors and more specifically to tumor necrosis factor receptors.
Tumor necrosis factor-α (TNFα, also known as cachectin) and tumor necrosis factor-β (TNFβ, also known as lymphotoxin) are homologous mammalian endogenous secretory proteins capable of inducing a wide variety of effects on a large number of cell types. The great similarities in the structural and functional characteristics of these two cytokines have resulted in their collective description as "TNF." Complementary cDNA clones encoding TNFα (Pennica et al., Nature 312:724, 1984) and TNFβ (Gray et al., Nature 312:721, 1984) have been isolated, permitting further structural and biological characterization of TNF.
TNF proteins initiate their biological effect on cells by binding to specific TNF receptor (TNF-R) proteins expressed on the plasma membrane of a TNF-responsive cell. TNFα and TNF-β were first shown to bind to a common receptor on the human cervical carcinoma cell line ME-180 (Aggarwal et al., Nature 318:665, 1985). Estimates of the size of the TNF-R determined by affinity labeling studies ranged from 54 to 175 kDa (Creasey et al, Proc. Natl. Acad. Sci. USA 84:3293, 1987; Stauber et al., J. Biol. Chem. 263:19098, 1988; Hohmann et al., J. Biol. Chem. 264:14927, 1989). Although the relationship between these TNF-Rs of different molecular mass is unclear, Hohmann et al. (J. Biol. Chem. 264:14927, 1989) reported that at least two different cell surface receptors for TNF exist on different cell types. These receptors have an apparent molecular mass of about 80 kDa and about 55-60 kDa, respectively. None of the above publications, however, reported the purification to homogeneity of cell surface TNF receptors.
In addition to cell surface receptors for TNF, soluble proteins from human urine capable of binding TNF have also been identified (Peetre et al., Eur. J. Haematol. 41:414, 1988; Seckinger et al., J. Exp. Med. 167:1511, 1988; Seckinger et al., J. Biol. Chem. 264:11966, 1989; UK Patent Application, Publ. No. 2 218 101 A to Seckinger et al.; Engelmann et al., J. Biol. Chem. 264:11974, 1989). The soluble urinary TNF binding protein disclosed by UK 2 218 101 A has a partial N-terminal amino acid sequence of Asp-Ser-Val-Cys-Pro-, which corresponds to the partial sequence disclosed later by Engelmann et al. (1989). The relationship of the above soluble urinary binding proteins was further elucidated after original parent application (U.S. Ser. No. 07/403,241) of the present application was filed, when Engelmann et al. reported the identification and purification of a second distinct soluble urinary TNF binding protein having an N-terminal amino acid sequence of Val-Ala-Phe-Thr-Pro- (J. Biol. Chem. 265:1531, 1990). The two urinary proteins disclosed by the UK 2 218 101 A and the Engelmann et al. publications were shown to be immunochemically related to two apparently distinct cell surface proteins by the ability of antiserum against the binding proteins to inhibit TNF binding to certain cells.
More recently, two separate groups reported the molecular cloning and expression of a human 55 kDa TNF-R (Loetscher et al., Cell 61:351, 1990; Schall et al., Cell 61:361, 1990). The TNF-R of both groups has an N-terminal amino acid sequence which corresponds to the partial amino acid sequence of the urinary binding protein disclosed by UK 2 218 101 A, Engelmann et al. (1989) and Englelmann et al. (1990).
In order to elucidate the relationship of the multiple forms of TNF-R and soluble urinary TNF binding proteins, or to study the structural and biological characteristics of TNF-Rs and the role played by TNF-Rs in the responses of various cell populations to TNF or other cytokine stimulation, or to use TNF-Rs effectively in therapy, diagnosis, or assay, purified compositions of TNF-R are needed. Such compositions, however, are obtainable in practical yields only by cloning and expressing genes encoding the receptors using recombinant DNA technology. .[.Efforst.]. .Iadd.Efforts .Iaddend.to purify the TNF-R molecule for use in biochemical analysis or to clone and express mammalian genes encoding TNF-R, however, have been impeded by lack of a suitable source of receptor protein or mRNA. Prior to the present invention, no cell lines were known to express high levels of TNF-R constitutively and continuously, which precluded purification of receptor for sequencing or construction of genetic libraries for cDNA cloning.
SUMMARY OF THE INVENTION
The present invention provides isolated TNF receptors and DNA sequences encoding mammalian tumor necrosis factor receptors (TNF-R), in particular, human TNF-Rs. Such DNA sequences include (a) cDNA clones having a nucleotide sequence derived from the coding region of a native TNF-R gene; (b) DNA sequences which are capable of hybridization to the cDNA clones of (a) under moderately stringent conditions and which encode biologically active TNF-R molecules; or (c) DNA sequences which are degenerate as a result of the genetic code to the DNA sequences defined in (a) and (b) and which encode biologically active TNF-R molecules. In particular, the present invention provides DNA sequences which encode soluble TNF receptors.
The present invention also provides recombinant expression vectors comprising the DNA sequences defined above, recombinant TNF-R molecules produced using the recombinant expression vectors, and processes for producing the recombinant TNF-R molecules using the expression vectors.
The present invention also provides isolated or purified protein compositions comprising TNF-R, and, in particular, soluble forms of TNF-R.
The present invention also provides compositions for use in therapy, diagnosis, assay of TNF-R, or in raising antibodies to TNF-R, comprising effective quantities of soluble native or recombinant receptor proteins prepared according to the foregoing processes.
Because of the ability of TNF to specifically bind TNF receptors (TNF-Rs), purified TNF-R compositions will be useful in diagnostic assays for TNF, as well as in raising antibodies to TNF receptor for use in diagnosis and therapy. In addition, purified TNF receptor compositions may be used directly in therapy to bind or scavenge TNF, thereby providing a means for regulating the immune activities of this cytokine.
These and other aspects of the present invention will become evident upon reference to the following detailed description.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a schematic representation of the coding region of various cDNAs encoding human and murine TNF-Rs. The leader sequence is hatched and the transmembrane region is solid.
.[.FIGS. 2A-2B depict the partial cDNA sequence and derived amino acid sequence of the human TNF-R clone 1. Nucleotides are numbered from the beginning of the 5' untranslated region. Amino acids are numbered from the beginning of the signal peptide sequence. The putative signal peptide sequence is represented by the amino acids -22 to -1. The N-terminal leucine of the mature TNF-R protein is underlined at position 1. The predicted transmembrane region from amino acids 236 to 265 is also underlined. The C-termini of various soluble TNF-Rs are marked with an arrow (↑)..].
.[.FIGS. 3A-3C depict the cDNA sequence and derived amino acid sequence of murine TNF-R clone 11. The putative signal peptide sequence is represented by amino acids -22 to -1. The N-terminal valine of the mature TNF-R protein is underlined at position 1. The predicted transmembrane region from amino acids 234 to 265 is also underlined..].
DETAILED DESCRIPTION OF THE INVENTION Definitions
As used herein, the terms "TNF receptor" and "TNF-R" refer to proteins having amino acid sequences which are substantially similar to the native mammalian TNF receptor amino acid sequences, and which are biologically active, as defined below, in that they are capable of binding TNF molecules or transducing a biological signal initiated by a TNF molecule binding to a cell, or cross-reacting with anti-TNF-R antibodies raised against TNF-R from natural (i.e., nonrecombinant) sources. The mature full-length human TNF-R is a glycoprotein having a molecular weight of about 80 kilodaltons (kDa). As used throughout the specification, the term "mature" means a protein expressed in a form lacking a leader sequence as may be present in full-length transcripts of a native gene. Experiments using COS cells transfected with a cDNA encoding full-length human TNF-R showed that TNF-R bound 125 I-TNFα with an apparent Ka of about 5×109 M-1, and that TNF-R bound 125 I-TNFβ with an apparent Ka of about 2×109 M-1. The terms "TNF receptor" or "TNF-R" include, but are not limited to, analogs or subunits of native proteins having at least 20 amino acids and which exhibit at least some biological activity in common with TNF-R, for example, soluble TNF-R constructs which are devoid of a transmembrane region (and are secreted from the cell) but retain the ability to bind TNF. Various bioequivalent protein and amino acid analogs are described in detail below.
The nomenclature for TNF-R analogs as used herein follows the convention of naming the protein (e.g., TNF-R) preceded by either hu (for human) or mu (for murine) and followed by a Δ (to designate a deletion) and the number of the C-terminal amino acid. For example, huTNF-RΔ235 refers to human TNF-R having Asp235 as the C-terminal amino acid (i.e., a polypeptide having the sequence of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.). In the absence of any human or murine species designation, TNF-R refers generically to mammalian TNF-R. Similarly, in the absence of any specific designation for deletion mutants, the term TNF-R means all forms of TNF-R, including mutants and analogs which possess TNF-R biological activity.
"Soluble TNF-R" or "sTNF-R" as used in the context of the present invention refer to proteins, or substantially equivalent analogs, having an amino acid sequence corresponding to all or part of the extracellular region of a native TNF-R, for example, huTNF-RΔ235, huTNF-RΔ185 and huTNF-RΔ163, or amino acid sequences substantially similar to the sequences of amino acids 1-163, amino acids 1-185, or amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend., and which are biologically active in that they bind to TNF ligand. Equivalent soluble TNF-Rs include polypeptides which vary from these sequences by one or more substitutions, deletions, or additions, and which retain the ability to bind TNF or inhibit TNF signal transduction activity via cell surface bound TNF receptor proteins, for example huTNF-RΔx, wherein x is selected from the group consisting of any one of amino acids 163-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.. Analogous deletions may be made to muTNF-R. Inhibition of TNF signal transduction activity can be determined by transfecting cells with recombinant TNF-R DNAs to obtain recombinant receptor expression. The cells are then contacted with TNF and the resulting metabolic effects examined. If an effect results which is attributable to the action of the ligand, then the recombinant receptor has signal transduction activity. Exemplary procedures for determining whether a polypeptide has signal transduction activity are disclosed by Idzerda et al., J. Exp. Med. 171:861 (1990); Curtis et al., Proc. Natl. Acad. Sci. USA 86:3045 (1989); Prywes et al., EMBO J. 5:2179 (1986) and Chou et al., J. Biol. Chem. 262:1842 (1987). Alternatively, primary cells or cell lines which express an endogenous TNF receptor and have a detectable biological response to TNF could also be utilized.
The term "isolated" or "purified", as used in the context of this specification to define the purity of TNF-R protein or protein compositions, means that the protein or protein composition is substantially free of other proteins of natural or endogenous origin and contains less than about 1% by mass of protein contaminants residual of production processes. Such compositions, however, can contain other proteins added as stabilizers, carriers, excipients or co-therapeutics. TNF-R is isolated if it is detectable as a single protein band in a polyacrylamide gel by silver staining.
The term "substantially similar," when used to define either amino acid or nucleic acid sequences, means that a particular subject sequence, for example, a mutant sequence, varies from a reference sequence by one or more substitutions, deletions, or additions, the net effect of which is to retain biological activity of the TNF-R protein as may be determined, for example, in one of the TNF-R binding assays set forth in Example 1 below. Alternatively, nucleic acid subunits and analogs are "substantially similar" to the specific DNA sequences disclosed herein if: (a) the DNA sequence is derived from the coding region of a native mammalian TNF-R gene; (b) the DNA sequence is capable of hybridization to DNA sequences of (a) under moderately stringent conditions (50° C., 2× SSC) and which encode biologically active TNF-R molecules; or DNA sequences which are degenerate as a result of the genetic code to the DNA sequences defined in (a) or (b) and which encode biologically active TNF-R molecules.
"Recombinant," as used herein, means that a protein is derived from recombinant (e.g., microbial or mammalian) expression systems. "Microbial" refers to recombinant proteins made in bacterial or fungal (e.g., yeast) expression systems. As a product, "recombinant microbial" defines a protein produced in a microbial expression system which is essentially free of native endogenous substances. Protein expressed in most bacterial cultures, e.g., E. coli, will be free of glycan. Protein expressed in yeast may have a glycosylation pattern different from that expressed in mammalian cells.
"Biologically active," as used throughout the specification as a characteristic of TNF receptors, means that a particular molecule shares sufficient amino acid sequence similarity with the embodiments of the present invention disclosed herein to be capable of binding detectable quantifies of TNF, transmitting a TNF stimulus to a cell, for example, as a component of a hybrid receptor construct, or cross-reacting with anti-TNF-R antibodies raised against TNF-R from natural (i.e., nonrecombinant) sources. Preferably, biologically active TNF receptors within the scope of the present invention are capable of binding greater than 0.1 nmoles TNF per nmole receptor, and most preferably, greater than 0.5 nmole TNF per nmole receptor in standard binding assays (see below).
"Isolated DNA sequence" refers to a DNA polymer, in the form of a separate fragment or as a component of a larger DNA construct, which has been derived from DNA isolated at least once in substantially pure form, i.e., free of contaminating endogenous materials and in a quantity or concentration enabling identification, manipulation, and recovery of the sequence and its component nucleotide sequences by standard biochemical methods, for example, using a cloning vector. Such sequences are preferably provided in the form of an open reading frame uninterrupted by internal nontranslated sequences, or introns, which are typically present in eukaryotic genes. Genomic DNA containing the relevant sequences could also be used as a source of coding sequences. Sequences of nontranslated DNA may be present 5' or 3' from the open reading frame, where the same do not interfere with manipulation or expression of the coding regions.
"Nucleotide sequence" refers to a heteropolymer of deoxyribonucleotides. DNA sequences encoding the proteins provided by this invention can be assembled from cDNA fragments and short oligonucleotide linkers, or from a series of oligonucleotides, to provide a synthetic gene which is capable of being expressed in a recombinant transcriptional unit.
Isolation of cDNAs Encoding TNF-R
The coding sequence of TNF-R is obtained by isolating a complementary DNA (cDNA) sequence encoding TNF-R from a recombinant cDNA or genomic DNA library. A cDNA library is preferably constructed by obtaining polyadenylated mRNA from a particular cell line which expresses a mammalian TNF-R, for example, the human fibroblast cell line WI-26 VA4 (ATCC CCL 95.1) and using the mRNA as a template for synthesizing double stranded cDNA. The double stranded cDNA is then packaged into a recombinant vector, which is introduced into an appropriate E. coli strain and propagated. Murine or other mammalian cell lines which express TNF-R may also be used. TNF-R sequences contained in the cDNA library can be readily identified by screening the library with an appropriate nucleic acid probe which is capable of hybridizing with TNF-R cDNA. Alternatively, DNAs encoding TNF-R proteins can be assembled by ligation of synthetic oligonucleotide subunits corresponding to all or part of the sequence of .[.FIGS. 2-3 or FIGS. 4-6.]. .Iadd.SEQ ID NO:1 or SEQ ID NO:3 .Iaddend.to provide a complete coding sequence.
The human TNF receptor cDNAs of the present invention were isolated by the method of direct expression cloning. A cDNA library was constructed by first isolating cytoplasmic mRNA from the human fibroblast cell line WI-26 VA4. Polyadenylated RNA was isolated and used to prepare double-stranded cDNA. Purified cDNA fragments were then ligated into pCAV/NOT vector DNA which uses regulatory sequences derived from pDC201 (a derivative of pMLSV, previously described by Cosman et al., Nature 312:768, 1984), SV40 and cytomegalovirus DNA, described in detail below in Example 2. pCAV/NOT has been deposited with the American Type Culture Collection under accession No. ATCC 68014. The pCAV/NOT vectors containing the WI26-VA4 cDNA fragments were transformed into E. coli strain DH5α. Transformants were plated to provide approximately 800 colonies per plate. The resulting colonies were harvested and each pool used to prepare plasmid DNA for transfection into COS-7 cells essentially as described by Cosman et al. (Nature 312:768, 1984) and Luthman et al. (Nucl. Acid Res. 11:1295, 1983). Transformants expressing biologically active cell surface TNF receptors were identified by screening for their ability to bind 125 I-TNF. In this screening approach, transfected COS-7 cells were incubated with medium containing 125 I-TNF, the cells washed to remove unbound labeled TNF, and the cell monolayers contacted with X-ray film to detect concentrations of TNF binding, as disclosed by Sims et al, Science 241:585 (1988). Transfectants detected in this manner appear as dark foci against a relatively light background.
Using this approach, approximately 240,000 cDNAs were screened in pools of approximately 800 cDNAs until assay of one transfectant pool indicated positive foci for TNF binding. A frozen stock of bacteria from this positive pool was grown in culture and plated to provide individual colonies, which were screened until a single clone (clone .[.11.]. .Iadd.1.Iaddend.) was identified which was capable of directing synthesis of a surface protein with detectable TNF binding activity. The sequence of cDNA clone .[.11.]. .Iadd.1 .Iaddend.isolated by the above method is depicted in .[.FIGS. 4-6.]. .Iadd.SEQ ID NO:1.Iaddend..
Additional cDNA clones can be isolated from cDNA libraries of other mammalian species by cross-species hybridization. For use in hybridization, DNA encoding TNF-R may be covalently labeled with a detectable substance such as a fluorescent group, a radioactive atom or a chemiluminescent group by methods well known to those skilled in the art. Such probes could also be used for in vitro diagnosis of particular conditions.
Like most mammalian genes, mammalian TNF receptors are presumably encoded by multi-exon genes. Alternative mRNA constructs which can be attributed to different mRNA splicing events following transcription, and which share large regions of identity or similarity with the cDNAs claimed herein, are considered to be within the scope of the present invention.
Other mammalian TNF-R cDNAs are isolated by using an appropriate human TNF-R DNA sequence as a probe for screening a particular mammalian cDNA library by cross-species hybridization.
Proteins and Analogs
The present invention provides isolated recombinant mammalian TNF-R polypeptides. Isolated TNF-R polypeptides of this invention are substantially free of other contaminating materials of natural or endogenous origin and contain less than about 1% by mass of protein contaminants residual of production processes. The native human TNF-R molecules are recovered from cell lysates as glycoproteins having an apparent molecular weight by SDS-PAGE of about 80 kilodaltons (kDa). The TNF-R polypeptides of this invention are optionally without associated native-pattern glycosylation.
Mammalian TNF-R of the present invention includes, by way of example, primate, human, murine, canine, feline, bovine, ovine, equine and porcine TNF-R. Mammalian TNF-Rs can be obtained by cross species hybridization, using a single stranded cDNA derived from the human TNF-R DNA sequence as a hybridization probe to isolate TNF-R cDNAs from mammalian cDNA libraries.
Derivatives of TNF-R within the scope of the invention also include various structural forms of the primary protein which retain biological activity. Due to the presence of ionizable amino and carboxyl groups, for example, a TNF-R protein may be in the form of acidic or basic salts, or may be in neutral form. Individual amino acid residues may also be modified by oxidation or reduction.
The primary amino acid structure may be modified by forming covalent or aggregative conjugates with other chemical moieties, such as glycosyl groups, lipids, phosphate, acetyl groups and the like, or by creating amino acid sequence mutants. Covalent derivatives are prepared by linking particular functional groups to TNF-R amino acid side chains or at the N- or C-termini. Other derivatives of TNF-R within the scope of this invention include covalent or aggregative conjugates of TNF-R or its fragments with other proteins or polypeptides, such as by synthesis in recombinant culture as N-terminal or C-terminal fusions. For example, the conjugated peptide may be a a signal (or leader) polypeptide sequence at the N-terminal region of the protein which co-translationally or post-translationally directs transfer of the protein from its site of synthesis to its site of function inside or outside of the cell membrane or wall (e.g., the yeast α-factor leader). TNF-R protein fusions can comprise peptides added to facilitate purification or identification of TNF-R (e.g., poly-His). The amino acid sequence of TNF receptor can also be linked to the peptide Asp-Tyr-Lys-Asp-Asp-Asp-Asp-Lys (DYKDDDDK) (Hopp et al., Bio/Technology 6:1204, 1988.) The latter sequence is highly antigenic and provides an epitope reversibly bound by a specific monoclonal antibody, enabling rapid assay and facile purification of expressed recombinant protein. This sequence is also specifically cleaved by bovine mucosal enterokinase at the residue immediately following the Asp-Lys pairing. Fusion proteins capped with this peptide may also be resistant to intracellular degradation in E. coli.
TNF-R derivatives may also be used as immunogens, reagents in receptor-based immunoassays, or as binding agents for affinity purification procedures of TNF or other binding ligands. TNF-R derivatives may also be obtained by cross-linking agents, such as M-maleimidobenzoyl succinimide ester and N-hydroxysuccinimide, at cysteine and lysine residues. TNF-R proteins may also be covalently bound through reactive side groups to various insoluble substrates, such as cyanogen bromide-activated, bisoxirane-activated, carbonyldiimidazole-activated or tosyl-activated agarose structures, or by adsorbing to polyolefin surfaces (with or without glutaraldehyde cross-linking). Once bound to a substrate, TNF-R may be used to selectively bind (for purposes of assay or purification) anti-TNF-R antibodies or TNF.
The present invention also includes TNF-R with or without associated native-pattern glycosylation. TNF-R expressed in yeast or mammalian expression systems, e.g., COS-7 cells, may be similar or slightly different in molecular weight and glycosylation pattern than the native molecules, depending upon the expression system. Expression of TNF-R DNAs in bacteria such as E. coli provides non-glycosylated molecules. Functional mutant analogs of mammalian TNF-R having inactivated N-glycosylation sites can be produced by oligonucleotide synthesis and ligation or by site-specific mutagenesis techniques. These analog proteins can be produced in a homogeneous, reduced-carbohydrate form in good yield using yeast expression systems. N-glycosylation sites in eukaryotic proteins are characterized by the amino acid triplet Asn--A1 --Z, where A1 is any amino acid except Pro, and Z is Ser or Thr. In this sequence, asparagine provides a side chain amino group for covalent attachment of carbohydrate. Such a site can be eliminated by substituting another amino acid for Asn or for residue Z, deleting Asn or Z, or inserting a non-Z amino acid between A1 and Z, or an amino acid other than Asn between Asn and A1.
TNF-R derivatives may also be obtained by mutations of TNF-R or its subunits. A TNF-R mutant, as referred to herein, is a polypeptide homologous to TNF-R but which has an amino acid sequence different from native TNF-R because of a deletion, insertion or substitution.
Bioequivalent analogs of TNF-R proteins may be constructed by, for example, making various substitutions of residues or sequences or deleting terminal or internal residues or sequences not needed for biological activity. For example, cysteine residues can be deleted (e.g., Cys178) or replaced with other amino acids to prevent formation of unnecessary or incorrect intramolecular disulfide bridges upon renaturation. Other approaches to mutagenesis involve modification of adjacent dibasic amino acid residues to enhance expression in yeast systems in which KEX2 protease activity is present. Generally, substitutions should be made conservatively; i.e., the most preferred substitute amino acids are those having physiochemical characteristics resembling those of the residue to be replaced. Similarly, when a deletion or insertion strategy is adopted, the potential effect of the deletion or insertion on biological activity should be considered. Substantially similar polypeptide sequences, as defined above, generally comprise a like number of amino acids sequences, although C-terminal truncations for the purpose of constructing soluble TNF-Rs will contain fewer amino acid sequences. In order to preserve the biological activity of TNF-Rs, deletions and substitutions will preferably result in homologous or conservatively substituted sequences, meaning that a given residue is replaced by a biologically similar residue. Examples of conservative substitutions include substitution of one aliphatic residue for another, such as Ile, Val, Leu, or Ala for one another, or substitutions of one polar residue for another, such as between Lys and Arg; Glu and Asp; or Gln and Asn. Other such conservative substitutions, for example, substitutions of entire regions having similar hydrophobicity characteristics, are well known. Moreover, particular amino acid differences between human, murine and other mammalian TNF-Rs is suggestive of additional conservative substitutions that may be made without altering the essential biological characteristics of TNF-R.
Subunits of TNF-R may be constructed by deleting terminal or internal residues or sequences. Particularly preferred sequences include those in which the transmembrane region and intracellular domain of TNF-R are deleted or substituted with hydrophilic residues to facilitate secretion of the receptor into the cell culture medium. The resulting protein is referred to as a soluble TNF-R molecule which retains its ability to bind TNF. A particularly preferred soluble TNF-R construct is TNF-RΔ235 (the sequence of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.), which comprises the entire extracellular region of TNF-R, terminating with Asp235 immediately adjacent the transmembrane region. Additional amino acids may be deleted from the .[.transmembrane.]. .Iadd.extracellular .Iaddend.region while retaining TNF binding activity. For example, huTNF-RΔ183 which comprises the sequence of amino acids 1-183 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend., and TNF-RΔ163 which comprises the sequence of amino acids 1-163 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend., retain the ability to bind TNF ligand as determined using the binding assays described below in Example 1. TNF-RΔ142, however, does not retain the ability to bind TNF ligand. This suggests that one or both of Cys157 and Cys163 is required for formation of an intramolecular disulfide bridge for the proper folding of TNF-R. Cys178, which was deleted without any apparent adverse effect on the ability of the soluble TNF-R to bind TNF, does not appear to be essential for proper folding of TNF-R. Thus, any deletion C-terminal to Cys163 would be expected to result in a biologically active soluble TNF-R. The present invention contemplates such soluble TNF-R constructs corresponding to all or part of the extracellular region of TNF-R terminating with any amino acid after Cys163. Other C-terminal deletions, such as TNF-FΔ157, may be made as a matter of convenience by cutting TNF-R cDNA with appropriate restriction enzymes and, if necessary, reconstructing specific sequences with synthetic oligonucleotide linkers. The resulting soluble TNF-R constructs are then inserted and expressed in appropriate expression vectors and assayed for the ability to bind TNF, as described in Example 1. Biologically active soluble TNF-Rs resulting from such constructions are also contemplated to be within the scope of the present invention.
Mutations in nucleotide sequences constructed for expression of analog TNF-R must, of course, preserve the reading frame phase of the coding sequences and preferably will not create complementary regions that could hybridize to produce secondary mRNA structures such as loops or hairpins which would adversely affect translation of the receptor mRNA. Although a mutation site may be predetermined, it is not necessary that the nature of the mutation per se be predetermined. For example, in order to select for optimum characteristics of mutants at a given site, random mutagenesis may be conducted at the target codon and the expressed TNF-R mutants screened for the desired activity.
Not all mutations in the nucleotide sequence which encodes TNF-R will be expressed in the final product, for example, nucleotide substitutions may be made to enhance expression, primarily to avoid secondary structure loops in the transcribed mRNA (see EPA 75,444A, incorporated herein by reference), or to provide codons that are more readily translated by the selected host, e.g., the well-known E. coli preference codons for E. coli expression.
Mutations can be introduced at particular loci by synthesizing oligonucleotides containing a mutant sequence, flanked by restriction sites enabling ligation to fragments of the native sequence. Following ligation, the resulting reconstructed sequence encodes an analog having the desired amino acid insertion, substitution, or deletion.
Alternatively, oligonucleotide-directed site-specific mutagenesis procedures can be employed to provide an altered gene having particular codons altered according to the substitution, deletion, or insertion required. Exemplary methods of making the alterations set forth above are disclosed by Walder et al. (Gene 42:133, 1986); Bauer et al. (Gene 37:73, 1985); Craik (BioTechniques, January 1985, 12-19); Smith et al. (Genetic Engineering: Principles and Methods, Plenum Press, 1981); and U.S. Pat. Nos. 4,518,584 and 4,737,462 disclose suitable techniques, and are incorporated by reference herein.
Both monovalent forms and polyvalent forms of TNF-R are useful in the compositions and methods of this invention. Polyvalent forms possess multiple TNF-R binding sites for TNF ligand. For example, a bivalent soluble TNF-R may consist of two tandem repeats of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend., separated by a linker region. Alternate polyvalent forms may also be constructed, for example, by chemically coupling TNF-R to any clinically acceptable carrier molecule, a polymer selected from the group consisting of Ficoll, polyethylene glycol or dextran using conventional coupling techniques. Alternatively, TNF-R may be chemically coupled to biotin, and the biotin-TNF-R conjugate then allowed to bind to avidin, resulting in tetravalent avidin/biotin/TNF-R molecules. TNF-R may also be covalently coupled to dinitrophenol (DNP) or trinitrophenol (TNP) and the resulting conjugate precipitated with anti-DNP or anti-TNP-IgM, to form decameric conjugates with a valency of 10 for TNF-R binding sites.
A recombinant chimeric antibody molecule may also be produced having TNF-R sequences substituted for the variable domains of either or both of the .[.immunoglubulin.]. .Iadd.immunoglobulin .Iaddend.molecule heavy and light chains and having unmodified constant region domains. For example, chimeric TNF-R/IgG1 may be produced from two chimeric genes--a TNF-R/human κ light chain chimera (TNF-R/C.sub.κ) and a TNF-R/human γ1 heavy chain chimera (TNF-R/C.sub.γ-1). Following transcription and translation of the two chimeric genes, the gene products assemble into a single chimeric antibody molecule having TNF-R displayed bivalently. Such polyvalent forms of TNF-R may have enhanced binding affinity for TNF ligand. Additional details relating to the construction of such chimeric antibody molecules are disclosed in WO 89/09622 and EP 315062.
Expression of Recombinant TNF-R
The present invention provides recombinant expression vectors to amplify or express DNA encoding TNF-R. Recombinant expression vectors are replicable DNA constructs which have synthetic or cDNA-derived DNA fragments encoding mammalian TNF-R or bioequivalent analogs operably linked to suitable transcriptional or translational regulatory elements derived from mammalian, microbial, vital or insect genes. A transcriptional unit generally comprises an assembly of (1) a genetic element or elements having a regulatory role in gene expression, for example, transcriptional promoters or enhancers, (2) a structural or coding sequence which is transcribed into mRNA and translated into protein, and (3) appropriate transcription and translation initiation and termination sequences, as described in detail below. Such regulatory elements may include an operator sequence to control transcription, a sequence encoding suitable mRNA ribosomal binding sites. The ability to replicate in a host, usually conferred by an origin of replication, and a selection gene to facilitate recognition of transformants may additionally be incorporated. DNA regions are operably linked when they are functionally related to each other. For example, DNA for a signal peptide (secretory leader) is operably linked to DNA for a polypeptide if it is expressed as a precursor which participates in the secretion of the polypeptide; a promoter is operably linked to a coding sequence if it controls the transcription of the sequence; or a ribosome binding site is operably linked to a coding sequence if it is positioned so as to permit translation. Generally, operably linked means contiguous and, in the case of secretory leaders, contiguous and in reading frame. Structural elements intended for use in yeast expression systems preferably include a leader sequence enabling extracellular secretion of translated protein by a host cell. Alternatively, where recombinant protein is expressed without a leader or transport sequence, it may include an N-terminal methionine residue. This residue may optionally be subsequently cleaved from the expressed recombinant protein to provide a final product.
DNA sequences encoding mammalian TNF receptors which are to be expressed in a microorganism will preferably contain no introns that could prematurely terminate transcription of DNA into mRNA; however, premature termination of transcription may be desirable, for example, where it would result in mutants having advantageous C-terminal truncations, for example, deletion of a transmembrane region to yield a soluble receptor not bound to the cell membrane. Due to code degeneracy, there can be considerable variation in nucleotide sequences encoding the same amino acid sequence. Other embodiments include sequences capable of hybridizing to the sequences of the provided cDNA under moderately stringent conditions (50° C., 2× SSC) and other sequences hybridizing or degenerate to those which encode biologically active TNF receptor polypeptides.
Recombinant TNF-R DNA is expressed or amplified in a recombinant expression system comprising a substantially homogeneous monoculture of suitable host microorganisms, for example, bacteria such as E. coli or yeast such as S. cerevisiae, which have stably integrated (by transformation or transfection) a recombinant transcriptional unit into chromosomal DNA or carry the recombinant transcriptional unit as a component of a resident plasmid. Generally, cells constituting the system are the progeny of a single ancestral transformant. Recombinant expression systems as defined herein will express heterologous protein upon induction of the regulatory elements linked to the DNA sequence or synthetic gene to be expressed.
Transformed host cells are cells which have been transformed or transfected with TNF-R vectors constructed using recombinant DNA techniques. Transformed host cells ordinarily express TNF-R, but host cells transformed for purposes of cloning or amplifying TNF-R DNA do not need to express TNF-R. Expressed TNF-R will be deposited in the cell membrane or secreted into the culture supernatant, depending on the TNF-R DNA selected. Suitable host cells for expression of mammalian TNF-R include prokaryotes, yeast or higher eukaryotic cells under the control of appropriate promoters. Prokaryotes include gram negative or gram positive organisms, for example E. coli or bacilli. Higher eukaryotic cells include established cell lines of mammalian origin as described below. Cell-free translation systems could also be employed to produce mammalian TNF-R using RNAs derived from the DNA constructs of the present invention. Appropriate cloning and expression vectors for use with bacterial, fungal, yeast, and mammalian cellular hosts are described by Pouwels et al. (Cloning Vectors: A Laboratory Manual, Elsevier, N.Y., 1985), the relevant disclosure of which is hereby incorporated by reference.
Prokaryotic expression hosts may be used for expression of TNF-R that do not require extensive proteolytic and disulfide processing. Prokaryotic expression vectors generally comprise one or more phenotypic selectable markers, for example a gene encoding proteins conferring antibiotic resistance or supplying an autotrophic requirement, and an origin of replication recognized by the host to ensure amplification within the host. Suitable prokaryotic hosts for transformation include E. coli, Bacillus subtilis, Salmonella typhimurium, and various species within the genera Pseudomonas, Streptomyces, and .[.Staphyolococcus.]. .Iadd.Staphylococcus.Iaddend., although others may also be employed as a matter of choice.
Useful expression vectors for bacterial use can comprise a selectable marker and bacterial origin of replication derived from commercially available plasmids comprising genetic elements of the well known cloning vector pBR322 (ATCC 37017). Such commercial vectors include, for example, pKK223-3 (Pharmacia Fine Chemicals, Uppsala, Sweden) and pGEM1 (Promega Biotec, Madison, Wis., USA). These pBR322 "backbone" sections are combined with an appropriate promoter and the structural sequence to be expressed. E. coli is typically transformed using derivatives of pBR322, a plasmid derived from an E. coli species (Bolivar et al., Gene 2:95, 1977). pBR322 contains genes for ampicillin and tetracycline resistance and thus provides simple means for identifying transformed cells.
Promoters commonly used in recombinant microbial expression vectors include the β-lactamase (penicillinase) and lactose promoter system (Chang et al., Nature 275:615, 1978; and Goeddel et al., Nature 281:544, 1979), the tryptophan (trp) promoter system (Goeddel et al., Nucl. Acids Res. 8:4057, 1980; and EPA 36,776) and tac promoter (Maniatis, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory, p. 412, 1982). A particularly useful bacterial expression system employs the phage λ PL promoter and cI857ts thermolabile repressor. Plasmid vectors available from the American Type Culture Collection which incorporate derivatives of the λ PL promoter include plasmid pHUB2, resident in E. coli strain JMB9 (ATCC 37092) and pPLc28, resident in E. coli RR1 (ATCC 53082).
Recombinant TNF-R proteins may also be expressed in yeast hosts, preferably from the Saccharomyces species, such as S. cerevisiae. Yeast of other genera, such as Pichia or Kluyveromyces may also be employed. Yeast vectors will generally contain an origin of replication from the 2μ yeast plasmid or an autonomously replicating sequence (ARS), promoter, DNA encoding TNF-R, sequences for polyadenylation and transcription termination and a selection gene. Preferably, yeast vectors will include an origin of replication and selectable marker permitting transformation of both yeast and E. coli, e.g., the ampicillin resistance gene of E. coli and S. cerevisiae TRP1 or URA3 gene, which provides a selection marker for a mutant strain of yeast lacking the ability to grow in tryptophan, and a promoter derived from a highly expressed yeast gene to induce transcription of a structural sequence downstream. The presence of the TRP1 or URA3 lesion in the yeast host cell genome then provides an effective environment for detecting transformation by growth in the absence of tryptophan or uracil.
Suitable promoter sequences in yeast vectors include the promoters for metallothionein, 3-phosphoglycerate kinase (Hitzeman et al., J. Biol. Chem. 255:2073, 1980) or other glycolytic enzymes (Hess et al., J. Adv. Enzyme Reg. 7:149, 1968; and Holland et al., Biochem. 17:4900, 1978), such as enolase, glyceraldehyde-3-phosphate dehydrogenase, hexokinase, pyruvate decarboxylase, phosphofructokinase, glucose-6-phosphate isomerase, 3-phosphoglycerate mutase, pyruvate kinase, triosephosphate isomerase, phosphoglucose isomerase, and glucokinase. Suitable vectors and promoters for use in yeast expression are further described in R. Hitzeman et al., EPA 73,657.
Preferred yeast vectors can be assembled using DNA sequences from pUC18 for selection and replication in E. coli (Ampr gene and origin of replication) and yeast DNA sequences including a glucose-repressible ADH2 promoter and α-factor secretion leader. The ADH2 promoter has been described by Russell et al. (J. Biol. Chem. 258:2674, 1982) and Beier et al. (Nature 300:724, 1982). The yeast α-factor leader, which directs secretion of heterologous proteins, can be inserted between the promoter and the structural gene to be expressed. See, e.g., Kurjan et al., Cell 30:933, 1982; and Bitter et al., Proc. Natl. Acad. Sci. USA 81:5330, 1984. The leader sequence may be modified to contain, near its 3' end, one or more useful restriction sites to facilitate fusion of the leader sequence to foreign genes.
Suitable yeast transformation protocols are known to those of skill in the art; an exemplary technique is described by Hinnen et al., Proc. Natl. Acad. Sci. USA 75:1929, 1978, selecting for Trp+ transformants in a selective medium consisting of 0.67% yeast nitrogen base, 0.5% casamino acids, 2% glucose, 10 μg/ml adenine and 20 μg/ml uracil or URA+ tranformants in medium consisting of 0.67% YNB, with amino acids and bases as described by Sherman et al., Laboratory Course Manual for Methods in Yeast Genetics, Cold Spring Harbor Laboratory, Cold Spring Harbor, N.Y., 1986.
Host strains transformed by vectors comprising the ADH2 promoter may be grown for expression in a rich medium consisting of 1% yeast extract, 2% peptone, and 1% or 4% glucose supplemented with 80 μg/ml adenine and 80 μg/ml uracil. Derepression of the ADH2 promoter occurs upon exhaustion of medium glucose. Crude yeast supernatants are harvested by filtration and held at 4° C. prior to further purification.
Various mammalian or insect cell culture systems are also advantageously employed to express recombinant protein. Expression of recombinant proteins in mammalian cells is particularly preferred because such proteins are generally correctly folded, appropriately modified and completely functional Examples of suitable mammalian host cell lines include the COS-7 lines of monkey kidney cells, described by Gluzman (Cell 23:175, 1981), and other cell lines capable of expressing an appropriate vector including, for example, L cells, C127, 3T3, Chinese hamster ovary (CHO), HeLa and BHK cell lines. Mammalian expression vectors may comprise nontranscribed elements such as an origin of replication, a suitable promoter and enhancer linked to the gene to be expressed, and other 5' or 3' flanking nontranscribed sequences, and 5' or 3' nontranslated sequences, such as necessary ribosome binding sites, a polyadenylation site, splice donor and acceptor sites, and transcriptional termination sequences. Baculovirus systems for production of heterologous proteins in insect cells are reviewed by Luckow and Summers, Bio/Technology 6:47 (1988).
The transcriptional and translational control sequences in expression vectors to be used in transforming vertebrate cells may be provided by viral sources. For example, commonly used promoters and enhancers are derived from Polyoma, Adenovirus 2, Simian Virus 40 (SV40), and human cytomegalovirus. DNA sequences derived from the SV40 viral genome, for example, SV40 origin, early and late promoter, enhancer, splice, and polyadenylation sites may be used to provide the other genetic elements required for expression of a heterologous DNA sequence. The early and late promoters are particularly useful because both are obtained easily from the virus as a fragment which also contains the SV40 vital origin of replication (Fiers et al., Nature 273:113, 1978). Smaller or larger SV40 fragments may also be used, provided the approximately 250 bp sequence extending from the Hind 3 site toward the Bgl1 site located in the vital origin of replication is included. Further, mammalian genomic TNF-R promoter, control and/or signal sequences may be utilized, provided such control sequences are compatible with the host cell chosen. Additional details regarding the use of a mammalian high expression vector to produce a recombinant mammalian TNF receptor are provided in Examples 2 and 7 below. Exemplary vectors can be constructed as disclosed by Okayama and Berg (Mol. Cell. Biol. 3:280, 1983).
A useful system for stable high level expression of mammalian receptor cDNAs in C127 murine mammary epithelial cells can be constructed substantially as described by Cosman et al. (Mol. Immunol. 23:935, 1986).
In preferred aspects of the present invention, recombinant expression vectors comprising TNF-R cDNAs are stably integrated into a host cell's DNA. Elevated levels of expression product is achieved by selecting for cell lines having amplified numbers of vector DNA. Cell lines having amplified numbers of vector DNA are selected, for example, by transforming a host cell with a vector comprising a DNA sequence which encodes an enzyme which is inhibited by a known drug. The vector may also comprise a DNA sequence which encodes a desired protein. Alternatively, the host cell may be co-transformed with a second vector which comprises the DNA sequence which encodes the desired protein. The transformed or co-transformed host cells are then cultured in increasing concentrations of the known drug, thereby selecting for drug-resistant cells. Such drug-resistant cells survive in increased concentrations of the toxic drug by overproduction of the enzyme which is inhibited by the drug, frequently as a result of amplification of the gene encoding the enzyme. Where drug resistance is caused by an increase in the copy number of the vector DNA encoding the inhibitable enzyme, there is a concomitant co-amplification of the vector DNA encoding the desired protein (TNF-R) in the host cell's DNA.
A preferred system for such co-amplification uses the gene for dihydrofolate reductase (DHFR), which can be inhibited by the drug methotrexate (MTX). To achieve co-amplification, a host cell which lacks an active gene encoding DHFR is either transformed with a vector which comprises DNA sequence encoding DHFR and a desired protein, or is co-transformed with a vector comprising a DNA sequence encoding DHFR and a vector comprising a DNA sequence encoding the desired protein. The transformed or co-transformed host cells are cultured in media containing increasing levels of MTX, and those cells lines which survive are selected.
A particularly preferred co-amplification system uses the gene for glutamine synthetase (CS), which is responsible for the synthesis of glutamate and ammonia using the hydrolysis of ATP to ADP and phosphate to drive the reaction. GS is subject to inhibition by a variety of inhibitors, for example methionine sulphoximine (MSX). Thus, TNF-R can be expressed in high concentrations by co-amplifying cells transformed with a vector comprising the DNA sequence for GS and a desired protein, or co-transformed with a vector comprising a DNA sequence encoding GS and a vector comprising a DNA sequence encoding the desired protein, culturing the host cells in media containing increasing levels of MSX and selecting for surviving cells. The GS co-amplification system, appropriate recombinant expression vectors and cells lines, are described in the following PCT applications: WO 87/04462, WO 89/01036, WO 89/10404 and WO 86/05807.
Recombinant proteins are preferably expressed by co-amplification of DHFR or GS in a mammalian host cell, such as Chinese Hamster Ovary (CHO) cells, or alternatively in a murine myeloma cell line, such as SP2/0-Ag14 or NS0 or a rat myeloma cell line, such as YB2/3.0-Ag20, disclosed in PCT applications WO/89/10404 and WO 86/05807.
A preferred eukaryotic vector for expression of TNF-R DNA is disclosed below in Example 2. This vector, referred to as pCAV/NOT, was derived from the mammalian high expression vector pDC201 and contains regulatory sequences from SV40, adenovirus-2, and human cytomegalovirus.
Purification of Recombinant TNF-R
Purified mammalian TNF receptors or analogs are prepared by culturing suitable host/vector systems to express the recombinant translation products of the DNAs of the present invention, which are then purified from culture media or cell extracts.
For example, supernatants from systems which secrete recombinant protein into culture media can be first concentrated using a commercially available protein concentration filter, for example, an Amicon or Millipore Pellicon ultrafiltration unit. Following the concentration step, the concentrate can be applied to a suitable purification matrix. For example, a suitable affinity matrix can comprise a TNF or lectin or antibody molecule bound to a suitable support. Alternatively, an anion exchange resin can be employed, for example, a matrix or substrate having pendant diethylaminoethyl (DEAE) groups. The matrices can be acrylamide, agarose, dextran, cellulose or other types commonly employed in protein purification. Alternatively, a cation exchange step can be employed. Suitable cation exchangers include various insoluble matrices comprising sulfopropyl or carboxymethyl groups. Sulfopropyl groups are preferred.
Finally, one or more reversed-phase high performance liquid chromatography (RP-HPLC) steps employing hydrophobic RP-HPLC media, e.g., silica gel having pendant methyl or other aliphatic groups, can be employed to further purify a TNF-R composition. Some or all of the foregoing purification steps, in various combinations, can also be employed to provide a homogeneous recombinant protein.
Recombinant protein produced in bacterial culture is usually isolated by initial extraction from cell pellets, followed by one or more concentration, salting-out, aqueous ion exchange or size exclusion chromatography steps. Finally, high performance liquid chromatography (HPLC) can be employed for final purification steps. Microbial cells employed in expression of recombinant mammalian TNF-R can be disrupted by any convenient method, including freeze-thaw cycling, sonication, mechanical disruption, or use of cell lysing agents.
Fermentation of yeast which express mammalian TNF-R as a secreted protein greatly simplifies purification. Secreted recombinant protein resulting from a large-scale fermentation can be purified by methods analogous to those disclosed by Urdal et al. (J. Chromatog. 296:171, 1984). This reference describes two sequential, reversed-phase HPLC steps for purification of recombinant human GM-CSF on a preparative HPLC column.
Human TNF-R synthesized in recombinant culture is characterized by the presence of non-human cell components, including proteins, in amounts and of a character which depend upon the purification steps taken to recover human TNF-R from the culture. These components ordinarily will be of yeast, prokaryotic or non-human higher eukaryotic origin and preferably are present in innocuous contaminant quantities, on the order of less than about 1 percent by weight. Further, recombinant cell culture enables the production of TNF-R free of proteins which may be normally associated with TNF-R as it is found in nature in its species of origin, e.g. in cells, cell exudates or body fluids.
Therapeutic Administration of Recombinant Soluble TNF-R
The present invention provides methods of using therapeutic compositions comprising an effective amount of soluble TNF-R proteins and a suitable diluent and carrier, and methods for suppressing TNF-dependent inflammatory responses in humans comprising administering an effective amount of soluble TNF-R protein.
For therapeutic use, purified soluble TNF-R protein is administered to a patient, preferably a human, for treatment in a manner appropriate to the indication. Thus, for example, soluble TNF-R protein compositions can be administered by bolus injection, continuous infusion, sustained release from implants, or other suitable technique. Typically, a soluble TNF-R therapeutic agent will be administered in the form of a composition comprising purified protein in conjunction with physiologically acceptable carriers, excipients or diluents. Such carders will be nontoxic to recipients at the dosages and concentrations employed. Ordinarily, the preparation of such compositions entails combining the TNF-R with buffers, antioxidants such as ascorbic acid, low molecular weight (less than about 10 residues) polypeptides, proteins, amino acids, carbohydrates including glucose, sucrose or dextrins, chelating agents such as EDTA, glutathione and other stabilizers and excipients. Neutral buffered saline or saline mixed with conspecific serum albumin are exemplary appropriate diluents. Preferably, product is formulated as a lyophilizate using appropriate excipient solutions (e.g., sucrose) as diluents. Appropriate dosages can be determined in trials. The amount and frequency of administration will depend, of course, on such factors as the nature and severity of the indication being treated, the desired response, the condition of the patient, and so forth.
Soluble TNF-R proteins are administered for the purpose of inhibiting TNF-dependent responses. A variety of diseases or conditions are believed to be caused by TNF, such as cachexia and septic shock. In addition, other key cytokines (IL-1, IL-2 and other colony stimulating factors) can also induce significant host production of TNF. Soluble TNF-R compositions may therefore be used, for example, to treat cachexia or septic shock or to treat side effects associated with cytokine therapy. Because of the primary roles IL-1 and IL-2 play in the production of TNF, combination therapy using both IL-1 receptors or IL-2 receptors may be preferred in the treatment of TNF-associated clinical indications.
The following examples are offered by way of illustration, and not by way of limitation.
EXAMPLES Example 1 Binding Assays
A. Radiolabeling of TNFα and TNFβ. Recombinant human TNFα, in the form of a fusion protein containing a hydrophilic octapeptide at the N-terminus, was expressed in yeast as a secreted protein and purified by affinity chromatography (Hopp et al., Bio/Technology 6:1204, 1988). Purified recombinant human TNFβ was purchased from R&D Systems (Minneapolis, Minn.). Both proteins were radiolabeled using the commercially available solid phase agent, IODO-GEN (Pierce). In this procedure, 5 μg of IODO-GEN were plated at the bottom of a 10×75 mm glass tube and incubated for 20 minutes at 4° C. with 75 μl of 0.1M sodium phosphate, pH 7.4 and 20 μl (2 mCi) Na 125 I. This solution was then transferred to a second glass tube containing 5 μg TNFα (or TNFβ) in 45 μl PBS for 20 minutes at 4° C. The reaction mixture was fractionated by gel filtration on a 2 ml bed volume of Sephadex G-25 (Sigma) equilibrated in Roswell Park Memorial Institute (RPMI) 1640 medium containing 2.5% (w/v) bovine serum albumin (BSA), 0.2% (w/v) sodium azide and 20 mM Hepes pH 7.4 (binding medium). The final pool of 125 I-TNF was diluted to a working stock solution of 1×10-7 M in binding medium and stored for up to one month at 4° C. without detectable loss of receptor binding activity. The specific activity is routinely 1×106 cpm/mmole TNF.
B. Binding to Intact Cells. Binding assays with intact cells were performed by two methods. In the first method, cells were first grown either in suspension (e.g., U 937) or by adherence on tissue culture plates (e.g., WI26-VA4, COS cells expressing the recombinant TNF receptor). Adherent cells were subsequently removed by treatment with 5 mM EDTA treatment for ten minutes at 37 degrees centigrade. Binding assays were then performed by a .[.pthalate.]. .Iadd.phthalate .Iaddend.oil separation method (Dower et al., J. Immunol. 132:751, 1984) essentially as described by Park et al. (J. Biol. Chem. 261:4177, 1986). Non-specific binding of 125 I-TNF was measured in the presence of a 200-fold or greater molar excess of unlabeled TNF. Sodium azide (0.2%) was included in a binding assay to inhibit internalization of 125 I-TNF by cells. In the second method, COS cells transfected with the TNF-R-containing plasmid, and expressing TNF receptors on the surface, were tested for the ability to bind 125 I-TNF by the plate binding assay described by Sims et al. (Science 241:585, 1988).
C. Solid Phase Binding Assays. The ability of TNF-R to be stably adsorbed to nitrocellulose from detergent extracts of human cells yet retain TNF-binding activity provided a means of detecting TNF-R. Cell extracts were prepared by mixing a cell pellet with a 2× volume of PBS containing 1% Triton X-100 and a cocktail of protease inhibitors (2 mM phenylmethyl sulfonyl fluoride, 10 μM pepstatin, 10 μM leupeptin, 2 mM o-phenanthroline and 2 mM EGTA) by vigorous vortexing. The mixture was incubated on ice for 30 minutes after which it was centrifuged at 12,000×g for 15 minutes at 8° C. to remove nuclei and other debris. Two microliter aliquots of cell extracts were placed on dry BA85/21 nitrocellulose membranes (Schleicher and Schuell, Keene, N.H.) and allowed to dry. The membranes were incubated in tissue culture dishes for 30 minutes in Tris (0.05M) buffered saline (0.15M) pH 7.5 containing 3% w/v BSA to block nonspecific binding sites. The membrane was then covered with 5×10-11 M 125 I-TNF in PBS+3% BSA and incubated for 2 hr at 4° C. with shaking. At the end of this time, the membranes were washed 3 times in PBS, dried and placed on Kodak X-Omat AR film for 18 hr at -70° C.
Example 2 Isolation of Human TNF-R cDNA by Direct Expression of Active Protein in COS-7 Cells
Various human cell lines were screened for expression of TNF-R based on their ability to bind 125 I-labeled TNF. The human fibroblast cell line WI-26 VA4 was found to express a reasonable number of receptors per cell. Equilibrium binding studies showed that the cell line exhibited biphasic binding of 125 I-TNF with approximately 4,000 high affinity sites (Ka =1×1010 M-1) and 15,00 low affinity sites (Ka =1×108 M-1) per cell.
An unsized cDNA library was constructed by reverse transcription of polyadenylated mRNA isolated from total RNA extracted from human fibroblast WI-26 VA4 cells grown in the presence of pokeweed mitogen using standard techniques (Gubler, et al., Gene 25:263, 1983; Ausubel et al., eds., Current Protocols in Molecular Biology, Vol. 1, 1987). The cells were harvested by lysing the cells in a guanidine hydrochloride solution and total RNA isolated as previously described (March et al., Nature 315:641, 1985).
Poly A+ RNA was isolated by oligo dT cellulose chromatography and double-stranded cDNA was prepared by a method similar to that of Gubler and Hoffman (Gene 25:263, 1983). Briefly, the poly A+ RNA was converted to an RNA-cDNA hybrid by reverse transcriptase using oligo dT as a primer. The RNA-cDNA hybrid was then converted into double-stranded cDNA using RNAase H in combination with DNA polymerase I. The resulting double stranded cDNA was blunt-ended with T4 DNA polymerase. To the blunt-ended cDNA is added EcoRI linker-adapters (having internal Not1 sites) which were phosphorylated on only one end (Invitrogen). The linker-adaptered cDNA was treated with T4 polynucleotide kinase to phosphorylate the 5' overhanging region of the linker-adapter and unligated linkers were removed by running the cDNA over a Sepharose CL4B column. The linker-adaptered cDNA was ligated to an equimolar concentration of EcoR1 cut and dephosphorylated arms of bacteriophage λgt10 (Huynh et al, DNA Cloning: A Practical Approach, Glover, ed., IRL Press, pp. 49-78). The ligated DNA was packaged into phage particles using a commercially available kit to generate a library of recombinants (Stratagene Cloning Systems, San Diego, Calif., USA). Recombinants were further amplified by plating phage on a bacterial lawn of E. coli strain c600(hfl-).
Phage DNA was purified from the resulting λgt10 cDNA library and the cDNA inserts excised by digestion with the restriction enzyme Not1. Following electrophoresis of the digest through an agarose gel, cDNAs greater than 2,000 bp were isolated.
The resulting cDNAs were ligated into the eukaryotic expression vector pCAV/NOT, which was designed to express cDNA sequences inserted at its multiple cloning site when transfected into mammalian cells. pCAV/NOT was assembled from pDC201 (a derivative of pMLSV, previously described by Cosman et al., Nature 312:768, 1984), SV40 and cytomegalovirus DNA and comprises, in sequence with the direction of transcription from the origin of replication: (1) SV40 sequences from coordinates 5171-270 including the origin of replication, enhancer sequences and early and late promoters; (2) cytomegalovirus sequences including the promoter and enhancer regions (nucleotides 671 to +63 from the sequence published by Boechart et al. (Cell 41:521, 1985); (3) adenovirus-2 sequences containing the first exon and part of the intron between the first and second exons of the tripartite leader, the second exon and part of the third exon of the tripartite leader and a multiple cloning site (MCS) containing sites for Xho1, Kpn1, Sma1, Not1 and Bgl1; (4) SV40 sequences from coordinates 4127-4100 and 2770-2533 that include the polyadenylation and termination signals for early transcription; (5) sequences derived from pBR322 and virus-associated sequences VAI and VAII of pDC201, with adenovirus sequences 10532-11156 containing the VAI and VAII genes, followed by pBR322 sequences from 4363-2486 and 1094-375 containing the ampicillin resistance gene and origin of replication.
The resulting WI-26 VA4 cDNA library in pCAV/NOT was used to transform E. coli strain DH5α, and recombinants were plated to provide approximately 800 colonies per plate and sufficient plates to provide approximately 50,000 total colonies per screen. Colonies were scraped from each plate, pooled, and plasmid DNA prepared from each pool. The pooled DNA was then used to transfect a sub-confluent layer of monkey COS-7 cells using DEAE-dextran followed by chloroquine treatment, as described by Luthman et al. (Nucl. Acids Res. 11:1295, 1983) and McCutchan et al. (J. Natl. Cancer Inst. 41:351, 1986). The cells were then grown in culture for three days to permit transient expression of the inserted sequences. After three days, cell culture supernatants were discarded and the cell monolayers in each plate assayed for TNF binding as follows. Three ml of binding medium containing 1.2×10-11 M 125 I-labeled FLAG®-TNF was added to each plate and the plates incubated at 4° C. for 120 minutes. This medium was then discarded, and each plate was washed once with cold binding medium (containing no labeled TNF) and twice with cold PBS. The edges of each plate were then broken off, leaving a flat disk which was contacted with X-ray film for 72 hours at -70° C. using an intensifying screen. TNF binding activity was visualized on the exposed films as a dark focus against a relatively uniform background.
After approximately 240,000 recombinants from the library had been screened in this manner, one transfectant pool was observed to provide TNF binding foci which were clearly apparent against the background exposure.
A frozen stock of bacteria from the positive pool was then used to obtain plates of approximately 150 colonies. Replicas of these plates were made on nitrocellulose filters, and the plates were then scraped and plasmid DNA prepared and transfected as described above to identify a positive plate. Bacteria from individual colonies from the nitrocellulose replica of this plate were grown in 0.2 ml cultures, which were used to obtain plasmid DNA, which was transfected into COS-7 cells as described above. In this manner, a single clone, clone 1, was isolated which was capable of inducing expression of human TNF-R in COS cells. The expression vector pCAV/NOT containing the TNF-R cDNA clone 1 has been deposited with the American Type Culture Collection, 12301 Parklawn Drive, Rockville, Md. 20852, USA (Accession No. 68088) under the name pCAV/NOT-TNF-R.
Example 3 Construction of cDNAs Encoding Soluble huTNF-RΔ235
A cDNA encoding a soluble huTNF-RΔ235 (having the sequence of amino acids 1-235 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising an 840 bp fragment from pCAV/NOT-TNF-R with the restriction enzymes Not1 and Pvu2. Not1 cuts at the multiple cloning site of pCAV/NOT-TNF-R and Pvu2 cuts within the TNF-R coding region 20 nucleotides 5' of the transmembrane region. In order to reconstruct the 3' end of the TNF-R sequences, two oligonucleotides .Iadd.(encoding amino acids corresponding to Ala229 -Asp235 of SEQ ID NO:1) .Iaddend.were synthesized and annealed to create the following oligonucleotide linker:
 Pvu2                   BamH1  Bgl2                                       
 CTGAAGGGAGCACTGGCGACTAAGGATCCA                                           
 GACTTCCCTCGTGACCGCTGATTCCTAGGTCTAG                                       
AlaGluGlySerThrGlyAspEnd                                                  
This oligonucleotide linker has terminal Pvu2 and Bgl2 restriction sites, regenerates 20 nucleotides of the TNF-R, followed by a termination codon (underlined) and a BamH1 restriction site (for convenience in isolating the entire soluble TNF-R by Not1/BamH1 digestion). This oligonucleotide was then ligated with the 840 bp Not1/Pvu2 TNF-R insert into Bgl2/Not1 cut pCAV/NOT to yield psolhuTNF-RΔ235/CAVNOT, which was transfected into COS-7 cells as described above. This expression vector induced expression of soluble human TNF-R which was capable of binding TNF.
Example 4 Construction of cDNAs Encoding Soluble huTNF-RΔ185
A cDNA encoding a soluble huTNF-RΔ185 (having the sequence of amino acids 1-185 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising a 640 bp fragment from pCAV/NOT-TNF-R with the restriction enzymes Not1 and Bgl2. Not1 cuts at the multiple cloning site of pCAV/NO-TNF-R and Bgl2 cuts within the TNF-R coding region at nucleotide 637, which is 237 nucleotides 5' of the transmembrane region. The following oligonucleotide linkers .Iadd.(encoding amino acids corresponding to Ile162 -Ala176 and Val177 -Arg185 of SEQ ID NO:1) .Iaddend.were synthesized:
   Bgl2                                                                   
5'-GATCTGTAACGTGGTGGCCATCCCTGGGAATGCAAGCATGGATGC-3'                       
       ACATTGCACCACCGGTAGGGACCCTTACGTTCG                                  
    IleCysAsnValValAlaIleProGlyAsnAlaSerMetAspAla                         
                                           Not1                           
3'-        AGTCTGCACGTCCACGTCCCCCACCCGGTGAGC                              
   TACCTACGTCAGACGTGCAGGTGCAGGGGGTGGGCCACTCGCCGG                          
            ValCysThrSerThrSerProThrArgEnd                                
The above oligonucleotide linkers reconstruct the 3' end of the receptor molecule up to nucleotide 708, followed by a termination codon (underlined). These oligonucleotides were then ligated with the 640 bp Not1 TNF-R insert into Not1 cut pCAV/NOT to yield the expression vector psolTNFRΔ185/CAVNOT, which was transfected into COS-7 cells as described above. This expression vector induced expression of soluble human TNF-R which was capable of binding TNF.
Example 5 Construction of cDNAs Encoding Soluble huTNF-RΔ163
A cDNA encoding a soluble huTNF-RΔ163 (having the sequence of amino acids 1-163 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising a 640 bp fragment from from pCAV/NOT-TNF-R with the restriction enzymes Not1 and Bgl2 as described in Example 4. The following oligonucleotide linkers .Iadd.(encoding amino acids corresponding to Ile162 -Cys163 of SEQ ID NO:1) .Iaddend.were synthesized:
           Bgl2         Not1                                              
        3'-GATCTGTTGAGC                                                   
               ACAACTCGCCGG                                               
            IleCysEnd                                                     
This above oligonucleotide linker reconstructs the 3' end of the receptor molecule up to nucleotide 642 (amino acid 163), followed by a termination codon (underlined). This oligonucleotide was then ligated with the 640 bp Not1 TNF-R insert into Not1 cut pCAV/NOT to yield the expression vector psolTNFRΔ163/CAVNOT, which was transfected into COS-7 cells as described above. This expression vector induced expression of soluble human TNF-R which was capable of binding TNF in the binding assay described in Example 1.
Example 6 Construction of cDNAs Encoding Soluble huTNF-RΔ142
A cDNA encoding a soluble huTNF-RΔ142 (having the sequence of amino acids 1-142 of .[.FIG. 2A.]. .Iadd.SEQ ID NO:1.Iaddend.) was constructed by excising a 550 bp fragment from from pCAV/NOT-TNF-R with the restriction enzymes Not1 and AlwN1. AlwN1 cuts within the TNF-R coding region at nucleotide 549. The following oligonucleotide linker .Iadd.(encoding amino acids corresponding to Thr132 -Cys142 of SEQ ID NO:1) .Iaddend.was synthesized:
   Bgl2         Not1                                                      
5'-CTGAAACATCAGACGTGGTGTGCAAGCCCTGTTAAA-3'                                
CTTGACTTTGTAGTCTGCACCACACGTTCGGGACAATTTCTAGA                              
                                   End                                    
This above oligonucleotide linker reconstructs the 3' end of the receptor molecule up to nucleotide 579 (amino acid 142), followed by a termination codon (underlined). This oligonucleotide was then ligated with the 550 bp Not1/AlwN1 TNF-R insert into Not1/Bgl2 cut pCAV/NOT to yield the expression vector psolTNFRΔ142/CAVNOT, which was transfected into COS-7 cells as described above. This expression vector did not induced expression of soluble human TNF-R which was capable of binding TNF. It is believed that this particular construct failed to express biologically active TNF-R because one or more essential cysteine residue (e.g., Cys157 or Cys163) required for intramolecular bonding (for formation of the proper tertiary structure of the TNF-R molecule) was eliminated.
Example 7 Expression of Soluble TNF Receptors in CHO Cells
Soluble TNF receptor was expressed in Chinese Hamster Ovary (CHO) cells using the glutamine-synthetase (GS) gene amplification system, substantially as described in PCT patent application Nos. WO87/04462 and WO89/01036. Briefly, CHO cells are transfected with an expression vector containing genes for both TNF-R and GS. CHO cells are selected for GS gene expression based on the ability of the transfected DNA to confer resistance to low levels of methionine sulphoximine (MSX). GS sequence amplification events in such cells are selected using elevated MSX concentrations. In this way, contiguous TNF-R sequences are also amplified and enhanced TNF-R expression is achieved.
The vector used in the GS expression system was psolTNFR/P6/PSVLGS, which was constructed as follows. First, the vector pSVLGS.1 (described in PCT Application Nos. WO87/04462 and WO89/01036, and available from Celltech, Ltd., Berkshire, UK) was cut with the BamH1 restriction enzyme and dephosphorylated with calf intestinal alkaline phosphatase (CIAP) to prevent the vector from religating to itself. The BamH1 cut pSVLGS.1 fragment was then ligated to a 2.4 kb BamH1 to Bgl2 fragment of pEE6hCMV (described in PCT Application No. WO89/01036, also available from Celltech) which was cut with Bgl2, BamH1 and Fsp1 to avoid two fragments of similar size, to yield an 11.2 kb vector designated p6/PSVLGS.1. pSVLGS.1 contains the glutamine synthetase selectable marker gene under control of the SV40 later promoter. The BamH1 to Bgl2 fragment of pEE6hCMV contains the human cytomegalovirus major immediate early promoter (hCMV), a polylinker, and the SV40 early polyadenylation signal. The coding sequences for soluble TNF-R were added to p6/PSVLGS.1 by excising a Not1 to BamH1 fragment from the expression vector psolTNFR/CAVNOT (made according to Example 3 above), blunt ending with Klenow and ligating with SmaI cut dephosphorylated p6/PSVLGS.1, thereby placing the solTNF-R coding sequences under the control of the hCMV promoter. This resulted in a single plasmid vector in which the SV40/GS and hCMB/solTNF-R transcription units are transcribed in opposite directions. This vector was designated psolTNFR/P6/PSVLGS.
psolTNFR/P6/PSVLGS was used to transfect CHO-K1 cells (available from ATCC, Rockville, Md., under accession number CCL 61) as follows. A monolayer of CHO-K1 cells were grown to subconfluency in Minimum Essential Medium (MEM) 10X (Gibco: 330-1581AJ) without glutamine and supplemented with 10% dialysed fetal bovine serum (Gibco: 220-6300AJ), 1 mM sodium pyruvate (Sigma), MEM non-essential amino acids (Gibco: 320-1140AG), 500 μM asparagine and glutamate (Sigma) and nucleosides (30 μM adenosine, guanosine, cytidine and uridine and 10 μM thymidine)(Sigma).
Approximately 1×106 cells per 10 cm petri dish were transfected with 10 ug of psolTNFR/P6/PSVLGS by standard calcium phosphate precipitation, substantially as described by Graham & van der Eb, Virology 52:456 (1983). Cells were subjected to glycerol shock (15% glycerol in serum-free culture medium for approximately 1.5 minutes) approximately 4 hours after transfection, substantially as described by Frost & Williams, Virology 91:39 (1978), and then washed with serum-free medium. One day later, transfected cells were fed with fresh selective medium containing MSX at a final concentration of 25 .[.uM.]. .Iadd.μM.Iaddend.. Colonies of MSX-resistant surviving cells were visible within 3-4 weeks. Surviving colonies were transferred to 24-well plates and allowed to grow to confluency in selective medium. Conditioned medium from confluent wells were then assayed for soluble TNF-R activity using the binding assay described in Example 1 above. These assays indicated that the colonies expressed biologically active soluble TNF-R.
In order to select for GS gene amplification, several MSX-resistant cell lines are transfected with psolTNFR/P6/PSVLGS and grown in various concentrations of MSX. For each cell line, approximately 1×106 cells are plated in gradually increasing concentrations of 100 .[.uM.]. .Iadd.μM.Iaddend., 250 .[.uM.]. .Iadd.μM.Iaddend., 500 .[.uM.]. .Iadd.μM .Iaddend.and 1 mM MSX and incubated for 10-14 days. After 12 days, colonies resistant to the higher levels of MSX appear. The surviving colonies are assayed for TNF-R activity using the binding assay described above in Example 1. Each of these highly resistant cell lines contains cells which arise from multiple independent amplification events. From these cells lines, one or more of the most highly resistant cells lines are isolated. The amplified cells with high production rates are then cloned by limiting dilution cloning. Mass cell cultures of the transfectants secrete active soluble TNF-R.
Example 8 Expression of Soluble Human TNF-R in Yeast
Soluble human TNF-R was expressed in yeast with the expression vector pIXY432, which was derived from the yeast expression vector pIXY120 and plasmid pYEP352. pIXY120 is identical to pYαHuGM (ATCC 53157), except that it contains no cDNA insert and includes a polylinker/multiple cloning site with a Nco1 restriction site.
A DNA fragment encoding TNF receptor and suitable for cloning into the yeast expression vector pIXY120 was first generated by polymerase chain reaction (PCR) amplification of the extracellular portion of the full length receptor from pCAV/NOT-TNF-R (ATCC 68088). The following primers .Iadd.(encoding amino acids corresponding in part to amino acids Leu1 -Thr8 and Pro225 -Asp235 of SEQ ID NO:1) .Iaddend.were used in this PCR amplification:
5' End Primer                                                             
5'-TTCCGGTACCTTTGGATAAAAGAGACTACAAGGAC                                    
   Asp718->ProLeuAspLysArgAspTyrLysAsp                                    
     GACGATGACAAGTTGCCCGCCCAGGTGGCATTTACA-3'                              
     AspAspAspLys<---------TNF-R----------->                              
3' End Primer (antisense)                                                 
5'-CCCGGGATCCTTAGTCGCCAGTGCTCCCTTCAGCTGGG-3'                              
       BamH1>End<--------------TNF-R------->                              
The 5' end oligonucleotide primer used in the amplification included an Asp718 restriction site at its 5' end, followed by nucleotides encoding the 3' end of the yeast α-factor leader sequence (Pro-Leu-Asp-Lys-Arg) and those encoding the 8 amino acids of the FLAG® peptide (AspTyrLysAspAspAspAspLys) fused to sequence encoding the 5' end of the mature receptor. The FLAG® peptide (Hopp et al., Bio/Technology 6:1204, 1988) is a highly antigenic sequence which reversibly binds the monoclonal antibody M1 (ATCC HB 9259). The oligonucleotide used to generate the 3' end of the PCR-derived fragment is the antisense strand of DNA encoding sequences which terminate the open reading frame of the receptor after nucleotide 704 of the mature coding region (following the Asp residue preceding the transmembrane domain) by introducing a TAA stop codon (underlined). The stop codon is then followed by a BamH1 restriction site. The DNA sequences encoding TNF-R are then amplified by PCR, substantially as described by Innis et al., eds., PCR Protocols: A Guide to Methods and Applications (Academic Press, 1990).
The PCR-derived DNA fragment encoding soluble human TNF-R was subcloned into the yeast expression vector pIXY120 by digesting the PCR-derived DNA fragment with BamH1 and Asp718 restriction enzymes, digesting pIXY120 with BamH1 and Asp718, and ligating the PCR fragment into the cut vector in vitro with T4 DNA ligase. The resulting construction (pIXY424) fused the open reading frame of the FLAG®-soluble TNF receptor in-frame to the complete α-factor leader sequence and placed expression in yeast under the aegis of the regulated yeast alcohol dehydrogenase (ADH2) promoter. Identity of the nucleotide sequence of the soluble TNF receptor carried in pIXY424 with those in cDNA clone 1 were verified by DNA sequencing using the dideoxynucleotide chain termination method. pIXY424 was then transformed into E. coli strain RR1.
Soluble human TNF receptor was also expressed and secreted in yeast in a second vector. This second vector was generated by recovering the pIXY424 plasmid from E. coli and digesting with EcoR1 and BamH1 restriction enzymes to isolate the fragment spanning the region encoding the ADH2 promoter, the α-factor leader, the FLAG®-soluble TNF receptor and the stop codon. This fragment was ligated in vitro into EcoR1 and BamH1 cut plasmid pYEP352 (Hill et al., Yeast 2:163 (1986)), to yield the expression plasmid pIXY432, which was transformed into E. coli strain RR1.
To assess secretion of the soluble human TNF receptor from yeast, pIXY424 was purified and introduced into a diploid yeast strain of S. cerevisiae (XV2181) by electroporation and selection for acquisition of the plasmid-borne yeast TRP1+ gene on media lacking tryptophan. To assess secretion of the receptor directed by pIXY432, the plasmid was introduced into the yeast strain PB149-6b by electroporation followed by selection for the plasmid-borne URA3+ gene with growth on media lacking uracil. Overnight cultures were grown at 30° C. in the appropriate selective media. The PB149-6b/pIXY434 transformants were diluted into YEP-1% glucose media and grown at 30° C. for 38-40 hours. Supernatants were prepared by removal of cells by centrifugation, and filtration of supernatants through 0.45 .Iadd.μ.Iaddend.g filters.
The level of secreted receptor in the supernatants was determined by immunodotblot. Briefly, 1 ul of supernatants, and dilutions of the supernatants, were spotted onto nitrocellulose filters and allowed to dry. After blocking non-specific protein binding with a 3% BSA solution, the filters were incubated with diluted M1 anti-FLAG® antibody, excess antibody was removed by washing and then dilutions of horseradish peroxidase conjugated anti-mouse IgG antibodies were incubated with the filters. After removal of excess secondary antibodies, peroxidase substrates were added and color development was allowed to proceed for approximately 10 minutes prior to removal of the substrate solution.
The anti-FLAG® reactive material found in the supernatants demonstrated that significant levels of receptor were secreted by both expression systems. Comparisons demonstrated that the pIXY432 system secreted approximately 8-16 times more soluble human TNF receptor than the pIXY424 system. The supernatants were assayed for soluble TNF-R activity, as described in Example 1, by their ability to bind 125 I-TNFα and block TNFα binding. The pIXY432 supernatants were found to contain significant levels of active soluble TNF-R.
Example 9 Isolation of Murine TNF-R cDNAs
Murine TNF-R cDNAs were isolated from a cDNA library made from murine 7B9 cells, an antigen-dependent helper T cell line derived from C57BL/6 mice, by cross-species hybridization with a human TNF-R probe. The cDNA library was constructed in λZAP (Stratagene, San Diego), substantially as described above in Example 2, by isolating polyadenylated RNA from the 7B9 cells.
A double-stranded human TNF-R cDNA probe was produced by excising an approximately 3.5 kb Not1 fragment of the human TNF-R clone 1 and 32 P-labeling the cDNA using random primers (Boehringer-Mannheim).
The murine cDNA library was amplified once and a total of 900,000 plaques were screened, substantially as described in Example 2, with the human TNF-R cDNA probe. Approximately 21 positive plaques were purified, and the Bluescript plasmids containing EcoR1-linkered inserts were excised (Stratagene, San Diego). Nucleic acid sequencing of a portion of murine TNF-R clone 11 indicated that the coding sequence of the murine TNF-R was approximately 88% homologous to the corresponding nucleotide sequence of human TNF-R. A partial nucleotide sequence of murine TNF-R cDNA clone 11 is set forth in .[.FIGS. 3A-3B.]. .Iadd.SEQ ID NO:3 and SEQ ID NO:4.Iaddend..
Example 10 Preparation of Monoclonal Antibodies to TNF-R
Preparations of purified recombinant TNF-R, for example, human TNF-R, or transfected COS cells expressing high levels of TNF-R are employed to generate monoclonal antibodies against TNF-R using conventional techniques, for example, those disclosed in U.S. Pat. No. 4,411,993. Such antibodies are likely to be useful in interfering with TNF binding to TNF receptors, for example, in ameliorating toxic or other undesired effects of TNF, or as components of diagnostic or research assays for TNF or soluble TNF receptor.
To immunize mice, TNF-R immunogen is emulsified in complete Freund's adjuvant and injected in amounts ranging from 10-100 μg subcutaneously into Balb/c mice. Ten to twelve days later, the immunized animals are boosted with additional immunogen emulsified in incomplete Freund's adjuvant and periodically boosted thereafter on a weekly to biweekly immunization schedule. Serum samples are periodically taken by retro-orbital bleeding or tail-tip excision for testing by dot-blot assay (antibody sandwich) or ELISA (enzyme-linked immunosorbent assay). Other assay procedures are also suitable. Following detection of an appropriate antibody liter, positive animals are given an intravenous injection of antigen in saline. Three to four days later, the animals are sacrificed, splenocytes harvested, and fused to the murine myeloma cell line NS1. Hybridoma cell lines generated by this procedure are plated in multiple microtiter plates in a HAT selective medium (hypoxanthine, aminopterin, and thymidine) to inhibit proliferation of non-fused cells, myeloma hybrids, and spleen cell hybrids.
Hybridoma clones thus generated can be screened by ELISA for reactivity with TNF-R, for example, by adaptations of the techniques disclosed by Engvall et al., Immunochem. 8:871 (1971) and in U.S. Pat. No. 4,703,004. Positive clones are then injected into the peritoneal cavities of syngeneic Balb/c mice to produce ascites containing high concentrations (>1 mg/ml) of anti-TNF-R monoclonal antibody. The resulting monoclonal antibody can be purified by ammonium sulfate precipitation followed by gel exclusion chromatography, and/or affinity chromatography based on binding of antibody to Protein A of Staphylococcus aureus.
.Iadd.DETAILED DESCRIPTION OF THE SEQUENCE LISTING
SEQ ID NO:1 and SEQ ID NO:2 show the partial cDNA sequence and derived amino acid sequence of the human TNF-R clone 1. Nucleotides are numbered from the beginning of the 5' untranslated region. Amino acids are numbered from the beginning of the signal peptide sequence. The putative signal sequence is represented by amino acid -22 to -1. The N-terminus of the mature TNF-R begins with amino acid -1. The predicted transmembrane region extends from amino acids 236-265.
SEQ ID NO:3 and SEQ ID NO:4 show the cDNA sequence and derived amino acid sequence of murine TNF-R clone 11. The putative signal peptide sequence is represented by amino acids -22 to -1. The N-terminus of the mature TNF-R protein begins with amino acid 1. The predicted transmembrane region extends from amino acids 234 to 265.
__________________________________________________________________________
#             SEQUENCE LISTING                                            
- (1) GENERAL INFORMATION:                                                
-    (iii) NUMBER OF SEQUENCES: 4                                         
- (2) INFORMATION FOR SEQ ID NO:1:                                        
-      (i) SEQUENCE CHARACTERISTICS:                                      
#pairs    (A) LENGTH: 1641 base                                           
          (B) TYPE: nucleic acid                                          
          (C) STRANDEDNESS: single                                        
          (D) TOPOLOGY: linear                                            
-     (ii) MOLECULE TYPE: cDNA to mRNA                                    
-    (iii) HYPOTHETICAL: NO                                               
-     (iv) ANTI-SENSE: NO                                                 
-     (vi) ORIGINAL SOURCE:                                               
          (A) ORGANISM: Homo sapi - #ens                                  
          (G) CELL TYPE: Fibrobla - #st                                   
#VA4      (H) CELL LINE: WI-26                                            
-    (vii) IMMEDIATE SOURCE:                                              
          (A) LIBRARY: WI-26 VA4                                          
          (B) CLONE: 1                                                    
-     (ix) FEATURE:                                                       
          (A) NAME/KEY: CDS                                               
          (B) LOCATION: 88..1473                                          
-     (ix) FEATURE:                                                       
          (A) NAME/KEY: mat.sub.-- - #peptide                             
          (B) LOCATION: 154..1470                                         
-     (ix) FEATURE:                                                       
          (A) NAME/KEY: sig.sub.-- - #peptide                             
          (B) LOCATION: 88..153                                           
-      (x) PUBLICATION INFORMATION:                                       
          (A) AUTHORS: Smith, Cra - #ig A.                                
               Davis, Te - #rri                                           
#Dirk          Anderson,                                                  
               Solam, Li - #sabeth                                        
#M. P.         Beckmann,                                                  
               Jerzy, Ri - #ta                                            
               Dower, St - #even K.                                       
               Cosman, D - #avid                                          
#Raymond G.    Goodwin,                                                   
          (B) TITLE:  A Recept - #or for Tumor Necrosis                   
               Factor De - #fines an Unusual Family                       
               of Cellul - #ar and Viral Proteins                         
          (C) JOURNAL: Science                                            
          (D) VOLUME: 248                                                 
          (F) PAGES: 1019-1023                                            
          (G) DATE: 25-MAY-1990                                           
-     (xi) SEQUENCE DESCRIPTION: SEQ ID NO:1:                             
- GCGAGGCAGG CAGCCTGGAG AGAAGGCGCT GGGCTGCGAG GGCGCGAGGG CG - #CGAGGGCA   
  60                                                                      
#GTC TGG GCC        111 CGCATCC ATG GCG CCC GTC GCC                       
#            Met Ala Pro Va - #l Ala Val Trp Ala                          
#-15                                                                      
- GCG CTG GCC GTC GGA CTG GAG CTC TGG GCT GC - #G GCG CAC GCC TTG CCC     
 159                                                                      
Ala Leu Ala Val Gly Leu Glu Leu Trp Ala Al - #a Ala His Ala Leu Pro       
#                 1                                                       
- GCC CAG GTG GCA TTT ACA CCC TAC GCC CCG GA - #G CCC GGG AGC ACA TGC     
 207                                                                      
Ala Gln Val Ala Phe Thr Pro Tyr Ala Pro Gl - #u Pro Gly Ser Thr Cys       
#          15                                                             
- CGG CTC AGA GAA TAC TAT GAC CAG ACA GCT CA - #G ATG TGC TGC AGC AAA     
 255                                                                      
Arg Leu Arg Glu Tyr Tyr Asp Gln Thr Ala Gl - #n Met Cys Cys Ser Lys       
#     30                                                                  
- TGC TCG CCG GGC CAA CAT GCA AAA GTC TTC TG - #T ACC AAG ACC TCG GAC     
 303                                                                      
Cys Ser Pro Gly Gln His Ala Lys Val Phe Cy - #s Thr Lys Thr Ser Asp       
# 50                                                                      
- ACC GTG TGT GAC TCC TGT GAG GAC AGC ACA TA - #C ACC CAG CTC TGG AAC     
 351                                                                      
Thr Val Cys Asp Ser Cys Glu Asp Ser Thr Ty - #r Thr Gln Leu Trp Asn       
#                 65                                                      
- TGG GTT CCC GAG TGC TTG AGC TGT GGC TCC CG - #C TGT AGC TCT GAC CAG     
 399                                                                      
Trp Val Pro Glu Cys Leu Ser Cys Gly Ser Ar - #g Cys Ser Ser Asp Gln       
#             80                                                          
- GTG GAA ACT CAA GCC TGC ACT CGG GAA CAG AA - #C CGC ATC TGC ACC TGC     
 447                                                                      
Val Glu Thr Gln Ala Cys Thr Arg Glu Gln As - #n Arg Ile Cys Thr Cys       
#         95                                                              
- AGG CCC GGC TGG TAC TGC GCG CTG AGC AAG CA - #G GAG GGG TGC CGG CTG     
 495                                                                      
Arg Pro Gly Trp Tyr Cys Ala Leu Ser Lys Gl - #n Glu Gly Cys Arg Leu       
#   110                                                                   
- TGC GCG CCG CTG CGC AAG TGC CGC CCG GGC TT - #C GGC GTG GCC AGA CCA     
 543                                                                      
Cys Ala Pro Leu Arg Lys Cys Arg Pro Gly Ph - #e Gly Val Ala Arg Pro       
115                 1 - #20                 1 - #25                 1 -   
#30                                                                       
- GGA ACT GAA ACA TCA GAC GTG GTG TGC AAG CC - #C TGT GCC CCG GGG ACG     
 591                                                                      
Gly Thr Glu Thr Ser Asp Val Val Cys Lys Pr - #o Cys Ala Pro Gly Thr       
#               145                                                       
- TTC TCC AAC ACG ACT TCA TCC ACG GAT ATT TG - #C AGG CCC CAC CAG ATC     
 639                                                                      
Phe Ser Asn Thr Thr Ser Ser Thr Asp Ile Cy - #s Arg Pro His Gln Ile       
#           160                                                           
- TGT AAC GTG GTG GCC ATC CCT GGG AAT GCA AG - #C ATG GAT GCA GTC TGC     
 687                                                                      
Cys Asn Val Val Ala Ile Pro Gly Asn Ala Se - #r Met Asp Ala Val Cys       
#       175                                                               
- ACG TCC ACG TCC CCC ACC CGG AGT ATG GCC CC - #A GGG GCA GTA CAC TTA     
 735                                                                      
Thr Ser Thr Ser Pro Thr Arg Ser Met Ala Pr - #o Gly Ala Val His Leu       
#   190                                                                   
- CCC CAG CCA GTG TCC ACA CGA TCC CAA CAC AC - #G CAG CCA ACT CCA GAA     
 783                                                                      
Pro Gln Pro Val Ser Thr Arg Ser Gln His Th - #r Gln Pro Thr Pro Glu       
195                 2 - #00                 2 - #05                 2 -   
#10                                                                       
- CCC AGC ACT GCT CCA AGC ACC TCC TTC CTG CT - #C CCA ATG GGC CCC AGC     
 831                                                                      
Pro Ser Thr Ala Pro Ser Thr Ser Phe Leu Le - #u Pro Met Gly Pro Ser       
#               225                                                       
- CCC CCA GCT GAA GGG AGC ACT GGC GAC TTC GC - #T CTT CCA GTT GGA CTG     
 879                                                                      
Pro Pro Ala Glu Gly Ser Thr Gly Asp Phe Al - #a Leu Pro Val Gly Leu       
#           240                                                           
- ATT GTG GGT GTG ACA GCC TTG GGT CTA CTA AT - #A ATA GGA GTG GTG AAC     
 927                                                                      
Ile Val Gly Val Thr Ala Leu Gly Leu Leu Il - #e Ile Gly Val Val Asn       
#       255                                                               
- TGT GTC ATC ATG ACC CAG GTG AAA AAG AAG CC - #C TTG TGC CTG CAG AGA     
 975                                                                      
Cys Val Ile Met Thr Gln Val Lys Lys Lys Pr - #o Leu Cys Leu Gln Arg       
#   270                                                                   
- GAA GCC AAG GTG CCT CAC TTG CCT GCC GAT AA - #G GCC CGG GGT ACA CAG     
1023                                                                      
Glu Ala Lys Val Pro His Leu Pro Ala Asp Ly - #s Ala Arg Gly Thr Gln       
275                 2 - #80                 2 - #85                 2 -   
#90                                                                       
- GGC CCC GAG CAG CAG CAC CTG CTG ATC ACA GC - #G CCG AGC TCC AGC AGC     
1071                                                                      
Gly Pro Glu Gln Gln His Leu Leu Ile Thr Al - #a Pro Ser Ser Ser Ser       
#               305                                                       
- AGC TCC CTG GAG AGC TCG GCC AGT GCG TTG GA - #C AGA AGG GCG CCC ACT     
1119                                                                      
Ser Ser Leu Glu Ser Ser Ala Ser Ala Leu As - #p Arg Arg Ala Pro Thr       
#           320                                                           
- CGG AAC CAG CCA CAG GCA CCA GGC GTG GAG GC - #C AGT GGG GCC GGG GAG     
1167                                                                      
Arg Asn Gln Pro Gln Ala Pro Gly Val Glu Al - #a Ser Gly Ala Gly Glu       
#       335                                                               
- GCC CGG GCC AGC ACC GGG AGC TCA GAT TCT TC - #C CCT GGT GGC CAT GGG     
1215                                                                      
Ala Arg Ala Ser Thr Gly Ser Ser Asp Ser Se - #r Pro Gly Gly His Gly       
#   350                                                                   
- ACC CAG GTC AAT GTC ACC TGC ATC GTG AAC GT - #C TGT AGC AGC TCT GAC     
1263                                                                      
Thr Gln Val Asn Val Thr Cys Ile Val Asn Va - #l Cys Ser Ser Ser Asp       
355                 3 - #60                 3 - #65                 3 -   
#70                                                                       
- CAC AGC TCA CAG TGC TCC TCC CAA GCC AGC TC - #C ACA ATG GGA GAC ACA     
1311                                                                      
His Ser Ser Gln Cys Ser Ser Gln Ala Ser Se - #r Thr Met Gly Asp Thr       
#               385                                                       
- GAT TCC AGC CCC TCG GAG TCC CCG AAG GAC GA - #G CAG GTC CCC TTC TCC     
1359                                                                      
Asp Ser Ser Pro Ser Glu Ser Pro Lys Asp Gl - #u Gln Val Pro Phe Ser       
#           400                                                           
- AAG GAG GAA TGT GCC TTT CGG TCA CAG CTG GA - #G ACG CCA GAG ACC CTG     
1407                                                                      
Lys Glu Glu Cys Ala Phe Arg Ser Gln Leu Gl - #u Thr Pro Glu Thr Leu       
#       415                                                               
- CTG GGG AGC ACC GAA GAG AAG CCC CTG CCC CT - #T GGA GTG CCT GAT GCT     
1455                                                                      
Leu Gly Ser Thr Glu Glu Lys Pro Leu Pro Le - #u Gly Val Pro Asp Ala       
#   430                                                                   
- GGG ATG AAG CCC AGT TAACCAGGCC GGTGTGGGCT GTGTCGTAG - #C CAAGGTGGGC     
1510                                                                      
Gly Met Lys Pro Ser                                                       
435                 4 - #40                                               
- TGAGCCCTGG CAGGATGACC CTGCGAAGGG GCCCTGGTCC TTCCAGGCCC CC - #ACCACTAG   
1570                                                                      
- GACTCTGAGG CTCTTTCTGG GCCAAGTTCC TCTAGTGCCC TCCACAGCCG CA - #GCCTCCCT   
1630                                                                      
#     1641                                                                
- (2) INFORMATION FOR SEQ ID NO:2:                                        
-      (i) SEQUENCE CHARACTERISTICS:                                      
#acids    (A) LENGTH: 461 amino                                           
          (B) TYPE: amino acid                                            
          (D) TOPOLOGY: linear                                            
-     (ii) MOLECULE TYPE: protein                                         
-     (xi) SEQUENCE DESCRIPTION: SEQ ID NO:2:                             
- Met Ala Pro Val Ala Val Trp Ala Ala Leu Al - #a Val Gly Leu Glu Leu     
10                                                                        
- Trp Ala Ala Ala His Ala Leu Pro Ala Gln Va - #l Ala Phe Thr Pro Tyr     
#   10                                                                    
- Ala Pro Glu Pro Gly Ser Thr Cys Arg Leu Ar - #g Glu Tyr Tyr Asp Gln     
#                 25                                                      
- Thr Ala Gln Met Cys Cys Ser Lys Cys Ser Pr - #o Gly Gln His Ala Lys     
#             40                                                          
- Val Phe Cys Thr Lys Thr Ser Asp Thr Val Cy - #s Asp Ser Cys Glu Asp     
#         55                                                              
- Ser Thr Tyr Thr Gln Leu Trp Asn Trp Val Pr - #o Glu Cys Leu Ser Cys     
#     70                                                                  
- Gly Ser Arg Cys Ser Ser Asp Gln Val Glu Th - #r Gln Ala Cys Thr Arg     
# 90                                                                      
- Glu Gln Asn Arg Ile Cys Thr Cys Arg Pro Gl - #y Trp Tyr Cys Ala Leu     
#                105                                                      
- Ser Lys Gln Glu Gly Cys Arg Leu Cys Ala Pr - #o Leu Arg Lys Cys Arg     
#           120                                                           
- Pro Gly Phe Gly Val Ala Arg Pro Gly Thr Gl - #u Thr Ser Asp Val Val     
#       135                                                               
- Cys Lys Pro Cys Ala Pro Gly Thr Phe Ser As - #n Thr Thr Ser Ser Thr     
#   150                                                                   
- Asp Ile Cys Arg Pro His Gln Ile Cys Asn Va - #l Val Ala Ile Pro Gly     
155                 1 - #60                 1 - #65                 1 -   
#70                                                                       
- Asn Ala Ser Met Asp Ala Val Cys Thr Ser Th - #r Ser Pro Thr Arg Ser     
#               185                                                       
- Met Ala Pro Gly Ala Val His Leu Pro Gln Pr - #o Val Ser Thr Arg Ser     
#           200                                                           
- Gln His Thr Gln Pro Thr Pro Glu Pro Ser Th - #r Ala Pro Ser Thr Ser     
#       215                                                               
- Phe Leu Leu Pro Met Gly Pro Ser Pro Pro Al - #a Glu Gly Ser Thr Gly     
#   230                                                                   
- Asp Phe Ala Leu Pro Val Gly Leu Ile Val Gl - #y Val Thr Ala Leu Gly     
235                 2 - #40                 2 - #45                 2 -   
#50                                                                       
- Leu Leu Ile Ile Gly Val Val Asn Cys Val Il - #e Met Thr Gln Val Lys     
#               265                                                       
- Lys Lys Pro Leu Cys Leu Gln Arg Glu Ala Ly - #s Val Pro His Leu Pro     
#           280                                                           
- Ala Asp Lys Ala Arg Gly Thr Gln Gly Pro Gl - #u Gln Gln His Leu Leu     
#       295                                                               
- Ile Thr Ala Pro Ser Ser Ser Ser Ser Ser Le - #u Glu Ser Ser Ala Ser     
#   310                                                                   
- Ala Leu Asp Arg Arg Ala Pro Thr Arg Asn Gl - #n Pro Gln Ala Pro Gly     
315                 3 - #20                 3 - #25                 3 -   
#30                                                                       
- Val Glu Ala Ser Gly Ala Gly Glu Ala Arg Al - #a Ser Thr Gly Ser Ser     
#               345                                                       
- Asp Ser Ser Pro Gly Gly His Gly Thr Gln Va - #l Asn Val Thr Cys Ile     
#           360                                                           
- Val Asn Val Cys Ser Ser Ser Asp His Ser Se - #r Gln Cys Ser Ser Gln     
#       375                                                               
- Ala Ser Ser Thr Met Gly Asp Thr Asp Ser Se - #r Pro Ser Glu Ser Pro     
#   390                                                                   
- Lys Asp Glu Gln Val Pro Phe Ser Lys Glu Gl - #u Cys Ala Phe Arg Ser     
395                 4 - #00                 4 - #05                 4 -   
#10                                                                       
- Gln Leu Glu Thr Pro Glu Thr Leu Leu Gly Se - #r Thr Glu Glu Lys Pro     
#               425                                                       
- Leu Pro Leu Gly Val Pro Asp Ala Gly Met Ly - #s Pro Ser                 
#           435                                                           
- (2) INFORMATION FOR SEQ ID NO:3:                                        
-      (i) SEQUENCE CHARACTERISTICS:                                      
#pairs    (A) LENGTH: 3813 base                                           
          (B) TYPE: nucleic acid                                          
          (C) STRANDEDNESS: single                                        
          (D) TOPOLOGY: linear                                            
-     (ii) MOLECULE TYPE: cDNA to mRNA                                    
-    (iii) HYPOTHETICAL: NO                                               
-     (iv) ANTI-SENSE: NO                                                 
-     (vi) ORIGINAL SOURCE:                                               
          (A) ORGANISM: mouse                                             
          (B) STRAIN: C57BL/6                                             
          (G) CELL TYPE: T-helper - # cell                                
          (H) CELL LINE: 7B9                                              
-    (vii) IMMEDIATE SOURCE:                                              
          (B) CLONE: 11                                                   
-     (ix) FEATURE:                                                       
          (A) NAME/KEY: CDS                                               
          (B) LOCATION: 55..1479                                          
-     (ix) FEATURE:                                                       
          (A) NAME/KEY: mat.sub.-- - #peptide                             
          (B) LOCATION: 121..1476                                         
-     (ix) FEATURE:                                                       
          (A) NAME/KEY: sig.sub.-- - #peptide                             
          (B) LOCATION: 55..120                                           
-     (xi) SEQUENCE DESCRIPTION: SEQ ID NO:3:                             
- CGCAGCTGAG GCACTAGAGC TCCAGGCACA AGGGCGGGAG CCACCGCTGC CC - #CT ATG     
  57                                                                      
#      Met                                                                
22                                                                        
- GCG CCC GCC GCC CTC TGG GTC GCG CTG GTC TT - #C GAA CTG CAG CTG TGG     
 105                                                                      
Ala Pro Ala Ala Leu Trp Val Ala Leu Val Ph - #e Glu Leu Gln Leu Trp       
10                                                                        
- GCC ACC GGG CAC ACA GTG CCC GCC CAG GTT GT - #C TTG ACA CCC TAC AAA     
 153                                                                      
Ala Thr Gly His Thr Val Pro Ala Gln Val Va - #l Leu Thr Pro Tyr Lys       
#                 10                                                      
- CCG GAA CCT GGG TAC GAG TGC CAG ATC TCA CA - #G GAA TAC TAT GAC AGG     
 201                                                                      
Pro Glu Pro Gly Tyr Glu Cys Gln Ile Ser Gl - #n Glu Tyr Tyr Asp Arg       
#             25                                                          
- AAG GCT CAG ATG TGC TGT GCT AAG TGT CCT CC - #T GGC CAA TAT GTG AAA     
 249                                                                      
Lys Ala Gln Met Cys Cys Ala Lys Cys Pro Pr - #o Gly Gln Tyr Val Lys       
#         40                                                              
- CAT TTC TGC AAC AAG ACC TCG GAC ACC GTG TG - #T GCG GAC TGT GAG GCA     
 297                                                                      
His Phe Cys Asn Lys Thr Ser Asp Thr Val Cy - #s Ala Asp Cys Glu Ala       
#     55                                                                  
- AGC ATG TAT ACC CAG GTC TGG AAC CAG TTT CG - #T ACA TGT TTG AGC TGC     
 345                                                                      
Ser Met Tyr Thr Gln Val Trp Asn Gln Phe Ar - #g Thr Cys Leu Ser Cys       
# 75                                                                      
- AGT TCT TCC TGT ACC ACT GAC CAG GTG GAG AT - #C CGC GCC TGC ACT AAA     
 393                                                                      
Ser Ser Ser Cys Thr Thr Asp Gln Val Glu Il - #e Arg Ala Cys Thr Lys       
#                 90                                                      
- CAG CAG AAC CGA GTG TGT GCT TGC GAA GCT GG - #C AGG TAC TGC GCC TTG     
 441                                                                      
Gln Gln Asn Arg Val Cys Ala Cys Glu Ala Gl - #y Arg Tyr Cys Ala Leu       
#            105                                                          
- AAA ACC CAT TCT GGC AGC TGT CGA CAG TGC AT - #G AGG CTG AGC AAG TGC     
 489                                                                      
Lys Thr His Ser Gly Ser Cys Arg Gln Cys Me - #t Arg Leu Ser Lys Cys       
#       120                                                               
- GGC CCT GGC TTC GGA GTG GCC AGT TCA AGA GC - #C CCA AAT GGA AAT GTG     
 537                                                                      
Gly Pro Gly Phe Gly Val Ala Ser Ser Arg Al - #a Pro Asn Gly Asn Val       
#   135                                                                   
- CTA TGC AAG GCC TGT GCC CCA GGG ACG TTC TC - #T GAC ACC ACA TCA TCC     
 585                                                                      
Leu Cys Lys Ala Cys Ala Pro Gly Thr Phe Se - #r Asp Thr Thr Ser Ser       
140                 1 - #45                 1 - #50                 1 -   
#55                                                                       
- ACT GAT GTG TGC AGG CCC CAC CGC ATC TGT AG - #C ATC CTG GCT ATT CCC     
 633                                                                      
Thr Asp Val Cys Arg Pro His Arg Ile Cys Se - #r Ile Leu Ala Ile Pro       
#               170                                                       
- GGA AAT GCA AGC ACA GAT GCA GTC TGT GCG CC - #C GAG TCC CCA ACT CTA     
 681                                                                      
Gly Asn Ala Ser Thr Asp Ala Val Cys Ala Pr - #o Glu Ser Pro Thr Leu       
#           185                                                           
- AGT GCC ATC CCA AGG ACA CTC TAC GTA TCT CA - #G CCA GAG CCC ACA AGA     
 729                                                                      
Ser Ala Ile Pro Arg Thr Leu Tyr Val Ser Gl - #n Pro Glu Pro Thr Arg       
#       200                                                               
- TCC CAA CCC CTG GAT CAA GAG CCA GGG CCC AG - #C CAA ACT CCA AGC ATC     
 777                                                                      
Ser Gln Pro Leu Asp Gln Glu Pro Gly Pro Se - #r Gln Thr Pro Ser Ile       
#   215                                                                   
- CTT ACA TCG TTG GGT TCA ACC CCC ATT ATT GA - #A CAA AGT ACC AAG GGT     
 825                                                                      
Leu Thr Ser Leu Gly Ser Thr Pro Ile Ile Gl - #u Gln Ser Thr Lys Gly       
220                 2 - #25                 2 - #30                 2 -   
#35                                                                       
- GGC ATC TCT CTT CCA ATT GGT CTG ATT GTT GG - #A GTG ACA TCA CTG GGT     
 873                                                                      
Gly Ile Ser Leu Pro Ile Gly Leu Ile Val Gl - #y Val Thr Ser Leu Gly       
#               250                                                       
- CTG CTG ATG TTA GGA CTG GTG AAC TGC ATC AT - #C CTG GTG CAG AGG AAA     
 921                                                                      
Leu Leu Met Leu Gly Leu Val Asn Cys Ile Il - #e Leu Val Gln Arg Lys       
#           265                                                           
- AAG AAG CCC TCC TGC CTA CAA AGA GAT GCC AA - #G GTG CCT CAT GTG CCT     
 969                                                                      
Lys Lys Pro Ser Cys Leu Gln Arg Asp Ala Ly - #s Val Pro His Val Pro       
#       280                                                               
- GAT GAG AAA TCC CAG GAT GCA GTA GGC CTT GA - #G CAG CAG CAC CTG TTG     
1017                                                                      
Asp Glu Lys Ser Gln Asp Ala Val Gly Leu Gl - #u Gln Gln His Leu Leu       
#   295                                                                   
- ACC ACA GCA CCC AGT TCC AGC AGC AGC TCC CT - #A GAG AGC TCA GCC AGC     
1065                                                                      
Thr Thr Ala Pro Ser Ser Ser Ser Ser Ser Le - #u Glu Ser Ser Ala Ser       
300                 3 - #05                 3 - #10                 3 -   
#15                                                                       
- GCT GGG GAC CGA AGG GCG CCC CCT GGG GGC CA - #T CCC CAA GCA AGA GTC     
1113                                                                      
Ala Gly Asp Arg Arg Ala Pro Pro Gly Gly Hi - #s Pro Gln Ala Arg Val       
#               330                                                       
- ATG GCG GAG GCC CAA GGG TTT CAG GAG GCC CG - #T GCC AGC TCC AGG ATT     
1161                                                                      
Met Ala Glu Ala Gln Gly Phe Gln Glu Ala Ar - #g Ala Ser Ser Arg Ile       
#           345                                                           
- TCA GAT TCT TCC CAC GGA AGC CAC GGG ACC CA - #C GTC AAC GTC ACC TGC     
1209                                                                      
Ser Asp Ser Ser His Gly Ser His Gly Thr Hi - #s Val Asn Val Thr Cys       
#       360                                                               
- ATC GTG AAC GTC TGT AGC AGC TCT GAC CAC AG - #T TCT CAG TGC TCT TCC     
1257                                                                      
Ile Val Asn Val Cys Ser Ser Ser Asp His Se - #r Ser Gln Cys Ser Ser       
#   375                                                                   
- CAA GCC AGC GCC ACA GTG GGA GAC CCA GAT GC - #C AAG CCC TCA GCG TCC     
1305                                                                      
Gln Ala Ser Ala Thr Val Gly Asp Pro Asp Al - #a Lys Pro Ser Ala Ser       
380                 3 - #85                 3 - #90                 3 -   
#95                                                                       
- CCA AAG GAT GAG CAG GTC CCC TTC TCT CAG GA - #G GAG TGT CCG TCT CAG     
1353                                                                      
Pro Lys Asp Glu Gln Val Pro Phe Ser Gln Gl - #u Glu Cys Pro Ser Gln       
#               410                                                       
- TCC CCG TGT GAG ACT ACA GAG ACA CTG CAG AG - #C CAT GAG AAG CCC TTG     
1401                                                                      
Ser Pro Cys Glu Thr Thr Glu Thr Leu Gln Se - #r His Glu Lys Pro Leu       
#           425                                                           
- CCC CTT GGT GTG CCG GAT ATG GGC ATG AAG CC - #C AGC CAA GCT GGC TGG     
1449                                                                      
Pro Leu Gly Val Pro Asp Met Gly Met Lys Pr - #o Ser Gln Ala Gly Trp       
#       440                                                               
- TTT GAT CAG ATT GCA GTC AAA GTG GCC TGACCCCTG - #A CAGGGGTAAC           
1496                                                                      
Phe Asp Gln Ile Ala Val Lys Val Ala                                       
#   450                                                                   
- ACCCTGCAAA GGGACCCCCG AGACCCTGAA CCCATGGAAC TTCATGACTT TT - #GCTGGATC   
1556                                                                      
- CATTTCCCTT AGTGGCTTCC AGAGCCCCAG TTGCAGGTCA AGTGAGGGCT GA - #GACAGCTA   
1616                                                                      
- GAGTGGTCAA AAACTGCCAT GGTGTTTTAT GGGGGCAGTC CCAGGAAGTT GT - #TGCTCTTC   
1676                                                                      
- CATGACCCCT CTGGATCTCC TGGGCTCTTG CCTGATTCTT GCTTCTGAGA GG - #CCCCAGTA   
1736                                                                      
- TTTTTTCCTT CTAAGGAGCT AACATCCTCT TCCATGAATA GCACAGCTCT TC - #AGCCTGAA   
1796                                                                      
- TGCTGACACT GCAGGGCGGT TCCAGCAAGT AGGAGCAAGT GGTGGCCTGG TA - #GGGCACAG   
1856                                                                      
- AGGCCCTTCA GGTTAGTGCT AAACTCTTAG GAAGTACCCT CTCCAAGCCC AC - #CGAAATTC   
1916                                                                      
- TTTTGATGCA AGAATCAGAG GCCCCATCAG GCAGAGTTGC TCTGTTATAG GA - #TGGTAGGG   
1976                                                                      
- CTGTAACTCA GTGGTCCAGT GTGCTTTTAG CATGCCCTGG GTTTGATCCT CA - #GCAACACA   
2036                                                                      
- TGCAAAACGT AAGTAGACAG CAGACAGCAG ACAGCACAGC CAGCCCCCTG TG - #TGGTTTGC   
2096                                                                      
- AGCCTCTGCC TTTGACTTTT ACTCTGGTGG GCACACAGAG GGCTGGAGCT CC - #TCCTCCTG   
2156                                                                      
- ACCTTCTAAT GAGCCCTTCC AAGGCCACGC CTTCCTTCAG GGAATCTCAG GG - #ACTGTAGA   
2216                                                                      
- GTTCCCAGGC CCCTGCAGCC ACCTGTCTCT TCCTACCTCA GCCTGGAGCA CT - #CCCTCTAA   
2276                                                                      
- CTCCCCAACG GCTTGGTACT GTACTTGCTG TGACCCCAAC GTGCATTGTC CG - #GGTTAGGC   
2336                                                                      
- ACTGTGAGTT GGAACAGCTC ATGACATCGG TTGAAAGGCC CACCCGGAAA CA - #GCTAAGCC   
2396                                                                      
- AGCTCTTTTG CCAAAGGATT CATGCCGGTT TTCTAATCAA CCTGCTCCCT AG - #CATTGCCT   
2456                                                                      
- GGAAGGAAAG GGTTCAGGAG ACTCCTCAAG AAGCAAGTTC AGTCTCAGGT GC - #TTGGATGC   
2516                                                                      
- CATGCTCACC GATTCCACTG GATATGAACT TGGCAGAGGA GCCTAGTTGT TG - #CCATGGAG   
2576                                                                      
- ACTTAAAGAG CTCAGCACTC TGGAATCAAG ATACTGGACA CTTGGGGCCG AC - #TTGTTAAG   
2636                                                                      
- GCTCTGCAGC ATCAGACTGT AGAGGGGAAG GAACACGTCT GCCCCCTGGT GG - #CCCGTCCT   
2696                                                                      
- GGGATGACCT CGGGCCTCCT AGGCAACAAA AGAATGAATT GGAAAGGATG TT - #CCTGGGTG   
2756                                                                      
- TGGCCTAGCT CCTGTGCTTG TGTGGATCCC TAAAGGGTGT GCTAAGGAGC AA - #TTGCACTG   
2816                                                                      
- TGTGCTGGAC AGAATTCCTG CTTATAAATG CTTTTTGTTG TTGTTTTGTA CA - #CTGAGCCC   
2876                                                                      
- TGGCTGAGCC ACCCCACCCC ACCTCCCATC CCACCTTTAC ACGCCACTCT TG - #CATGAGAA   
2936                                                                      
- CCTGGCTGTC TCCCACTTGT AGCCTGTGGA TGCTGAGGAA ACACCCAGCC AA - #GTAGACTC   
2996                                                                      
- CAGGCTTGCC CCTATCTCCT GCTATGAGTC TGGCCTCCTC ATTGTGTTGT GG - #GAAGGAGA   
3056                                                                      
- CGGGTTCTGT CATCTCGGAA CGCCCACACC GTGGATGTGA ACAATGGCTG TA - #CTAGCTTA   
3116                                                                      
- GACCAGCTTA GGGCTCTGCA TATCACAGGA GGGGGAGCAG GGAACAATTT GA - #GTGCTGAC   
3176                                                                      
- CTATAACACA GTTCCTAAAG GATCGGGCAG TCCAGAATCT CCTCCTTCAG TG - #TGTGTGTG   
3236                                                                      
- TGTGTGTGTG TGTGTGTGTG TGTGTGTGTG TGTCCATGTT TGCATGTATG TG - #TGTGCCAG   
3296                                                                      
- TGTGTGGAGG CCCGAGGTTG GCTTTGGGTG TGTTTGATCA CTCTCCAGTT AC - #TGAGGCGG   
3356                                                                      
- GCTCTCATCT GTACCCAGAG CTTGCACATT TTCTAGTCTA ACTTGATTCA GG - #GATCTCTG   
3416                                                                      
- TCTGCCTATG GAGGTGCTCA GGTTACAGGC AGGCTGCCAT ACCTGCCCGA CA - #TTTACATG   
3476                                                                      
- AATACTAGAG ATCTGAATTC TGGTCCTCAC ACTTGTATAC CTGCATTTTA TC - #CACTAAGA   
3536                                                                      
- CATCTCTCCA AGGGCTCCCC CTTCCTATTT AATAAGTTAG TTTTGAACTG GC - #AAGATGGC   
3596                                                                      
- TCAGTGGGTA AGGCAGTTTG CGGACAAACC TGATGACCTG AGTTGGATCC CT - #GACCATAA   
3656                                                                      
- GGTAGAAGAG ACCTGATTCC TGCAAGTTGT CCTCTGACCA CCACCCCATA CA - #TGCTTCTG   
3716                                                                      
- CATATGTGCA CACATCACAT TCTTGCACAC ACACTCACAT ACCATAAATG TA - #ATAAATTT   
3776                                                                      
#    3813          TTTA TCTTTTAAAA AAAAAAA                                
- (2) INFORMATION FOR SEQ ID NO:4:                                        
-      (i) SEQUENCE CHARACTERISTICS:                                      
#acids    (A) LENGTH: 474 amino                                           
          (B) TYPE: amino acid                                            
          (D) TOPOLOGY: linear                                            
-     (ii) MOLECULE TYPE: protein                                         
-     (xi) SEQUENCE DESCRIPTION: SEQ ID NO:4:                             
- Met Ala Pro Ala Ala Leu Trp Val Ala Leu Va - #l Phe Glu Leu Gln Leu     
10                                                                        
- Trp Ala Thr Gly His Thr Val Pro Ala Gln Va - #l Val Leu Thr Pro Tyr     
#   10                                                                    
- Lys Pro Glu Pro Gly Tyr Glu Cys Gln Ile Se - #r Gln Glu Tyr Tyr Asp     
#                 25                                                      
- Arg Lys Ala Gln Met Cys Cys Ala Lys Cys Pr - #o Pro Gly Gln Tyr Val     
#             40                                                          
- Lys His Phe Cys Asn Lys Thr Ser Asp Thr Va - #l Cys Ala Asp Cys Glu     
#         55                                                              
- Ala Ser Met Tyr Thr Gln Val Trp Asn Gln Ph - #e Arg Thr Cys Leu Ser     
#     70                                                                  
- Cys Ser Ser Ser Cys Thr Thr Asp Gln Val Gl - #u Ile Arg Ala Cys Thr     
# 90                                                                      
- Lys Gln Gln Asn Arg Val Cys Ala Cys Glu Al - #a Gly Arg Tyr Cys Ala     
#                105                                                      
- Leu Lys Thr His Ser Gly Ser Cys Arg Gln Cy - #s Met Arg Leu Ser Lys     
#           120                                                           
- Cys Gly Pro Gly Phe Gly Val Ala Ser Ser Ar - #g Ala Pro Asn Gly Asn     
#       135                                                               
- Val Leu Cys Lys Ala Cys Ala Pro Gly Thr Ph - #e Ser Asp Thr Thr Ser     
#   150                                                                   
- Ser Thr Asp Val Cys Arg Pro His Arg Ile Cy - #s Ser Ile Leu Ala Ile     
155                 1 - #60                 1 - #65                 1 -   
#70                                                                       
- Pro Gly Asn Ala Ser Thr Asp Ala Val Cys Al - #a Pro Glu Ser Pro Thr     
#               185                                                       
- Leu Ser Ala Ile Pro Arg Thr Leu Tyr Val Se - #r Gln Pro Glu Pro Thr     
#           200                                                           
- Arg Ser Gln Pro Leu Asp Gln Glu Pro Gly Pr - #o Ser Gln Thr Pro Ser     
#       215                                                               
- Ile Leu Thr Ser Leu Gly Ser Thr Pro Ile Il - #e Glu Gln Ser Thr Lys     
#   230                                                                   
- Gly Gly Ile Ser Leu Pro Ile Gly Leu Ile Va - #l Gly Val Thr Ser Leu     
235                 2 - #40                 2 - #45                 2 -   
#50                                                                       
- Gly Leu Leu Met Leu Gly Leu Val Asn Cys Il - #e Ile Leu Val Gln Arg     
#               265                                                       
- Lys Lys Lys Pro Ser Cys Leu Gln Arg Asp Al - #a Lys Val Pro His Val     
#           280                                                           
- Pro Asp Glu Lys Ser Gln Asp Ala Val Gly Le - #u Glu Gln Gln His Leu     
#       295                                                               
- Leu Thr Thr Ala Pro Ser Ser Ser Ser Ser Se - #r Leu Glu Ser Ser Ala     
#   310                                                                   
- Ser Ala Gly Asp Arg Arg Ala Pro Pro Gly Gl - #y His Pro Gln Ala Arg     
315                 3 - #20                 3 - #25                 3 -   
#30                                                                       
- Val Met Ala Glu Ala Gln Gly Phe Gln Glu Al - #a Arg Ala Ser Ser Arg     
#               345                                                       
- Ile Ser Asp Ser Ser His Gly Ser His Gly Th - #r His Val Asn Val Thr     
#           360                                                           
- Cys Ile Val Asn Val Cys Ser Ser Ser Asp Hi - #s Ser Ser Gln Cys Ser     
#       375                                                               
- Ser Gln Ala Ser Ala Thr Val Gly Asp Pro As - #p Ala Lys Pro Ser Ala     
#   390                                                                   
- Ser Pro Lys Asp Glu Gln Val Pro Phe Ser Gl - #n Glu Glu Cys Pro Ser     
395                 4 - #00                 4 - #05                 4 -   
#10                                                                       
- Gln Ser Pro Cys Glu Thr Thr Glu Thr Leu Gl - #n Ser His Glu Lys Pro     
#               425                                                       
- Leu Pro Leu Gly Val Pro Asp Met Gly Met Ly - #s Pro Ser Gln Ala Gly     
#           440                                                           
- Trp Phe Asp Gln Ile Ala Val Lys Val Ala                                 
#       450                                                               
__________________________________________________________________________

Claims (8)

    What is claimed is: .[.1. An isolated DNA sequence selected from the group consisting of:
  1. identical to a polypeptide encoded by the DNA of (a)..]..[.4. A recombinant expression vector comprising the DNA sequence according to claim 1..]..[.5. A recombinant expression vector comprising the DNA sequence according to claim 2..]..[.6. A recombinant expression vector comprising the DNA sequence according to claim 3..]..[.7. A host cell transformed or transfected with the vector according to claim 4..]..[.8. A host cell transformed or transfected with the vector according to claim 5..]..[.9. A host cell transformed or transfected with the vector according to claim 6..]..[.10. An isolated DNA sequence selected from the group consisting of:
    (a) a DNA sequence that encodes a polypeptide having the amino acid sequence selected from the group consisting of amino acids 1 to X of FIG. 2A and amino acids 1 to 233 of FIG. 3A, wherein X is an amino acid from 163 to 235; and
    (b) a DNA sequence that encodes a polypeptide identical to the polypeptide encoded by the DNA of (a) except for modification(s) to the amino acid sequence selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; (iii) conservative amino acid substitutions; (iv) substitution or deletion of cysteine residues; and (v) combinations of modifications (i)-(iv); wherein such polypeptide is capable of binding TNF..]..[.11. An isolated DNA sequence selected from the group consisting of:
    (a) a DNA sequence that encodes a polypeptide having the amino acid sequence selected from the group consisting of amino acids 1 to X of FIG. 2A and amino acids 1 to 233 of FIG. 3A, wherein X is an amino acid from 163 to 235; and
    (b) a DNA sequence that encodes a polypeptide identical to the polypeptide encoded by the DNA of (a) except for modification(s) to the amino acid sequence selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; (iii) conservative amino acid substitutions; (iv) substitution or deletion of cysteine residues; and (v) combinations of modifications (i)-(iv); which encoded polypeptide is capable of binding greater than 0.1 moles TNF per nmole of such polypeptide..]..[.12. An isolated DNA sequence selected from the group consisting of:
    (a) a DNA sequence that encodes a polypeptide having the amino acid sequence selected from the group consisting of amino acids 1 to X of FIG. 2A and amino acids 1 to 233 of FIG. 3A, wherein X is an amino acid from 163 to 235; and
    (b) a DNA sequence that encodes a polypeptide identical to the polypeptide encoded by the DNA of (a) except for modification(s) to the amino acid sequence selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; (iii) conservative amino acid substitutions; (iv) substitution or deletion of cysteine residues; and (v) combinations of modifications (i)-(iv); which encoded polypeptide is capable of binding greater than 0.5 moles TNF per nmole of such polypeptide..]..[.13. A recombinant expression vector comprising the DNA according to any of claims 10, 11 or 12..]..[.14. A host cell transformed or transfected with the vector according to claim 13..]..[.15. A DNA sequence that encodes a polypeptide having the amino acid sequence selected from the group consisting of (a) amino acids 1-235 of FIG. 2A; and (b) a DNA sequence capable of hybridization to the DNA sequence of (a) under moderately stringent conditions (50° C., 2×SSC) and which encodes a polypeptide that is capable of binding to TNF and which is at least 88% identical to a polypeptide encoded by the DNA of (a)..]..[.16. A recombinant expression vector comprising the DNA sequence according to claim 15..]..[.17. A host cell transformed or
  2. transfected with the vector according to claim 16..]..Iadd.18. An isolated DNA molecule encoding a protein comprising a sequence of amino acids selected from the group consisting of amino acids 1-163 of SEQ ID NO:1 and amino acids 1-233 of SEQ ID NO:3, wherein said protein is capable of binding TNF. .Iaddend..Iadd.19. The isolated DNA molecule according to claim 18, wherein said protein comprises amino acids 1-163 of SEQ ID NO:1. .Iaddend..Iadd.20. The isolated DNA molecule according to claim 18, wherein said protein comprises amino acids 1-185 of SEQ ID NO:1. .Iaddend..Iadd.21. The isolated DNA molecule according to claim 18, wherein said protein comprises amino acids 1-235 of SEQ ID NO:1. .Iaddend..Iadd.22. An isolated DNA molecule encoding a protein selected from the group consisting of:
    (a) a polypeptide having a sequence of amino acids comprising amino acids 1-163 of SEQ ID NO:1;
    (b) a polypeptide having a sequence of amino acids comprising amino acids 1-233 of SEQ ID NO:3; and
    (c) a polypeptide identical to the polypeptides of (a) or (b) except for one or more modification(s) to the sequence of amino acids selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; and (iii) substitution or deletion of cysteine residues,
    wherein said protein is capable of binding TNF. .Iaddend..Iadd.23. A recombinant expression vector comprising the DNA molecule according to claim 18, 19, 20, 21 or 22. .Iaddend..Iadd.24. A host cell transformed or transfected with the recombinant expression vector according to claim 23. .Iaddend..Iadd.25. The host cell of claim 24, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.26. The host cell of claim 25, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.27. The host cell of claim 26, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.28. A process for producing a protein capable of binding TNF, said process comprising culturing a host cell of claim 24 under conditions suitable to
  3. effect expression of said protein. .Iaddend..Iadd.29. The process of claim 28, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.30. The process of claim 29, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.31. The process of claim 30, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.32. An isolated DNA molecule encoding a soluble TNF receptor protein comprising a sequence of amino acids selected from the group consisting of from about amino acid 1 to about amino acid 163 of SEQ ID NO:1 and from about amino acid 1 to about amino acid 233 of SEQ ID NO:3, wherein said soluble TNF receptor protein is capable of binding TNF protein. .Iaddend..Iadd.33. The isolated DNA molecule according to claim 32, wherein said soluble TNF receptor protein comprises from about amino acid 1 to about amino acid 163 of SEQ ID NO:1. .Iaddend..Iadd.34. The isolated DNA molecule according to claim 32, wherein said soluble TNF receptor protein comprises from about amino acid 1 to about amino acid 185 of SEQ ID NO:1. .Iaddend..Iadd.35. The isolated DNA molecule according to claim 32, wherein said TNF soluble receptor protein comprises from about amino acid 1 to about amino acid 235 of SEQ ID NO:1. .Iaddend..Iadd.36. An isolated DNA molecule encoding a soluble TNF receptor protein selected from the group consisting of:
    (a) a TNF receptor polypeptide having a sequence of amino acids comprising from about amino acid 1 to about amino acid 163 of SEQ ID NO:1;
    (b) a TNF receptor polypeptide having a sequence of amino acids comprising from about amino acid 1 to about amino acid 233 of SEQ ID NO:3; and
    (c) a TNF receptor polypeptide identical to the TNF receptor polypeptides of (a) or (b) except for one or more modification(s) to the sequence of amino acids selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; and (iii) substitution or deletion of cysteine residues,
    wherein said soluble TNF receptor protein is capable of binding TNF. .Iaddend..Iadd.37. A recombinant expression vector comprising the DNA molecule according to claim 32, 33, 34, 35 or 36. .Iaddend..Iadd.38. A host cell transformed or transfected with the recombinant expression vector according to claim 37. .Iaddend..Iadd.39. The host cell of claim 38, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.40. The host cell of claim 39, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.41. The host cell of claim 40, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.42. A process for producing a protein capable of binding TNF, said process comprising culturing a host cell of claim 38 under conditions suitable to effect expression of said
  4. protein. .Iaddend..Iadd.43. The process of claim 42, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.44. The process of claim 43, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.45. The process of claim 44, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.46. An isolated DNA molecule encoding a soluble TNF receptor protein comprising a sequence of amino acids selected from the group consisting of from amino acid 1 to amino acid 163 of SEQ ID NO:1 and from amino acid 1 to amino acid 233 of SEQ ID NO:3, wherein said soluble TNF receptor protein is capable of binding TNF protein. .Iaddend..Iadd.47. The isolated DNA molecule according to claim 46, wherein said soluble TNF receptor protein comprises from amino acid 1 to amino acid 163 of SEQ ID NO:1. .Iaddend..Iadd.48. The isolated DNA molecule according to claim 46, wherein said soluble TNF receptor protein comprises from amino acid 1 to amino acid 185 of SEQ ID NO:1. .Iaddend..Iadd.49. The isolated DNA molecule according to claim 46, wherein said soluble TNF receptor protein comprises from amino acid 1 to amino acid 235 of SEQ ID NO:1. .Iaddend..Iadd.50. An isolated DNA molecule encoding a soluble TNF receptor protein selected from the group consisting of:
    (a) a TNF receptor polypeptide having a sequence of amino acids comprising from amino acid 1 to amino acid 163 of SEQ ID NO:1;
    (b) a TNF receptor polypeptide having a sequence of amino acids comprising from amino acid 1 to amino acid 233 of SEQ ID NO:3; and
    (c) a TNF receptor polypeptide identical to the TNF receptor polypeptides of (a) or (b) except for one or more modification(s) to the sequence of amino acids selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; and (iii) substitution or deletion of cysteine residues,
    wherein said soluble TNF receptor protein is capable of binding TNF. .Iaddend..Iadd.51. A recombinant expression vector comprising the DNA molecule according to claim 46, 47, 48, 49 or 50. .Iaddend..Iadd.52. A host cell transformed or transfected with the recombinant expression
  5. vector according to claim 51. .Iaddend..Iadd.53. The host cell of claim 52, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.54. The host cell of claim 53, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.55. The host cell of claim 54, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.56. A process for producing a protein capable of binding TNF, said process comprising culturing a host cell of claim 52 under conditions suitable to effect expression of said
  6. protein. .Iaddend..Iadd.57. The process of claim 56, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.58. The process of claim 57, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.59. The process of claim 58, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.60. An isolated DNA molecule encoding a protein comprising a sequence of amino acids selected from the group consisting of amino acids 1-163 of SEQ ID NO:1 and amino acids 1-233 of SEQ ID NO:3, wherein said protein lacks amino acids 236-265 of SEQ ID NO:1 and amino acids 234-265 of SEQ ID NO:3, respectively, and wherein said protein is capable of binding TNF. .Iaddend..Iadd.61. The isolated DNA molecule according to claim 60, wherein said protein comprises amino acids 1-163 of SEQ ID NO:1. .Iaddend..Iadd.62. The isolated DNA molecule according to claim 60, wherein said protein comprises amino acids 1-185 of SEQ ID NO:1. .Iaddend..Iadd.63. The isolated DNA molecule according to claim 60, wherein said protein comprises amino acids 1-235 of SEQ ID NO:1. .Iaddend..Iadd.64. An isolated DNA molecule encoding a protein selected from the group consisting of:
    (a) a TNF receptor polypeptide having a sequence of amino acids comprising amino acids 1-163 of SEQ ID NO:1, wherein said polypeptide lacks amino acids 236-265 of SEQ ID NO:1;
    (b) a TNF receptor polypeptide having a sequence of amino acids comprising amino acids 1-233 of SEQ NO:3, wherein said polypeptide lacks amino acids 234-265 of SEQ ID NO:3; and
    (c) a TNF receptor polypeptide identical to the TNF receptor polypeptides of (a) or (b) except for one or more modification(s) to the sequence of amino acids selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; and (iii) substitution or deletion of cysteine residues,
    wherein said protein is capable of binding TNF. .Iaddend..Iadd.65. A recombinant expression vector comprising the DNA molecule according to claim 60, 61, 62, 63 or 64. .Iaddend..Iadd.66. A host cell transformed or transfected with the recombinant expression vector according to claim 65. .Iaddend..Iadd.67. The host cell of claim 66, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.68. The host cell of claim 67, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.69. The host cell of claim 68, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.70. A process for producing a protein capable of binding TNF, said process comprising culturing a host cell of claim 67 under conditions suitable to
  7. effect expression of said protein. .Iaddend..Iadd.71. The process of claim 70, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.72. The process of claim 71, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.73. The process of claim 72, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.74. An isolated DNA molecule encoding a protein comprising a sequence of amino acids selected from the group consisting of amino acids 1-163 of SEQ ID NO:1 and amino acids 1-233 of SEQ ID NO:3, wherein said protein lacks a functional transmembrane region, and wherein said protein is capable of binding TNF. .Iaddend..Iadd.75. The isolated DNA molecule according to claim 74, wherein said protein comprises amino acids 1-163 of SEQ ID NO:1. .Iaddend..Iadd.76. The isolated DNA molecule according to claim 74, wherein said protein comprises amino acids 1-185 of SEQ ID NO:1. .Iaddend..Iadd.77. The isolated DNA molecule according to claim 74, wherein said protein comprises amino acids 1-235 of SEQ ID NO:1. .Iaddend..Iadd.78. An isolated DNA molecule encoding a protein selected from the group consisting of:
    (a) a TNF receptor polypeptide having a sequence of amino acids comprising amino acids 1-163 of SEQ ID NO:1;
    (b) a TNF receptor polypeptide having a sequence of amino acids comprising amino acids 1-233 of SEQ ID NO:3; and
    (c) a TNF receptor polypeptide identical to the TNF receptor polypeptides of (a) or (b) except for one or more modification(s) to the sequence of amino acids selected from the group consisting of: (i) inactivated N-linked glycosylation sites; (ii) altered KEX2 protease cleavage sites; and (iii) substitution or deletion of cysteine residues,
    wherein said protein lacks a functional transmembrane region; and wherein said protein is capable of binding TNF. .Iaddend..Iadd.79. A recombinant expression vector comprising the DNA molecule according to claim 74, 75, 76, 77 or 78. .Iaddend..Iadd.80. A host cell transformed or transfected with the recombinant expression vector according to claim 79.
  8. .Iaddend..Iadd.81. The host cell of claim 80, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.82. The host cell of claim 81, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.83. The host cell of claim 82, wherein said mammalian cells are CHO cells. .Iaddend..Iadd.84. A process for producing a protein capable of binding TNF, said process comprising culturing a host cell of claim 80 under conditions suitable to effect expression of said protein. .Iaddend..Iadd.85. The process of claim 84, wherein said host cell is selected from the group consisting of microbial cells and mammalian cells. .Iaddend..Iadd.86. The process of claim 85, wherein said mammalian cells are selected from the group consisting of L cells, C127 cells, 3T3 cells, CHO cells, BHK cells and COS-7 cells. .Iaddend..Iadd.87. The process of claim 86, wherein said mammalian cells are CHO cells. .Iaddend.
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Cited By (46)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20020119147A1 (en) * 1999-11-20 2002-08-29 Cytologic, Llc Apparatus for enhancing immune responses in mammals
US20030082736A1 (en) * 1989-09-05 2003-05-01 Immunex Corporation Fusion proteins comprising tumor necrosis factor receptor
US20050244371A1 (en) * 1998-05-22 2005-11-03 Biopheresis Technologies, Llc Method and system to remove cytokine inhibitor in patients
US20050265996A1 (en) * 2004-04-30 2005-12-01 Biopheresis Technologies, Inc. Method and system to remove soluble TNFR1, TNFR2, and IL2 in patients
US20060002935A1 (en) * 2002-06-28 2006-01-05 Domantis Limited Tumor Necrosis Factor Receptor 1 antagonists and methods of use therefor
US20060140951A1 (en) * 1989-08-07 2006-06-29 Rathjen Deborah A Tumour necrosis factor binding ligands
US7070783B1 (en) 1995-05-09 2006-07-04 The Mathilda And Terence Kennedy Institute Of Rheumatology Small molecular weight TNF receptor multimeric molecule
US20060159677A1 (en) * 1989-08-07 2006-07-20 Peptech Limited Tumour necrosis factor peptide binding antibodies
US20060263847A1 (en) * 2003-05-20 2006-11-23 Siber George R Compositions and methods for treatment of sever acute respiratory syndrome (sars)
US20060275868A1 (en) * 1989-09-05 2006-12-07 Immunex Corporation Fusion proteins comprising tumor necrosis factor receptor
US20070065514A1 (en) * 2005-09-22 2007-03-22 Howell Mark D Method for enhancing immune responses in mammals
US20070104711A1 (en) * 1998-09-25 2007-05-10 Kjell Olmarker Use of certain drugs for treating nerve root injury
US20070105807A1 (en) * 2005-11-10 2007-05-10 Sazani Peter L Splice switch oligomers for TNF superfamily receptors and their use in treatment of disease
US20070243185A1 (en) * 2002-02-27 2007-10-18 Immunex Corporation Polypeptide formulation
US20070249538A1 (en) * 2005-11-10 2007-10-25 Sazani Peter L Soluble TNF receptors and their use in treatment of disease
US20080008713A1 (en) * 2002-06-28 2008-01-10 Domantis Limited Single domain antibodies against tnfr1 and methods of use therefor
US20080075690A1 (en) * 2006-09-22 2008-03-27 Mark Douglas Howell Method for enhancing immune responses in mammals
EP1998266A2 (en) 2001-02-19 2008-12-03 Merck Patent GmbH Method for identification of T-cell epitopes and use for preparing molecules with reduced immunogenicity
US7605233B2 (en) 1989-08-07 2009-10-20 Arana Therapeutics Limited Tumour necrosis factor binding ligands
US20090264353A1 (en) * 2007-10-19 2009-10-22 Santaris Pharma A/S Splice Switching Oligomers for TNF Superfamily Receptors and their Use in Treatment of Disease
US20100040609A1 (en) * 2006-07-07 2010-02-18 Gorman James R Methods for preventing, postponing or improving the outcome of invasive spinal procedures
US20100285044A1 (en) * 1998-05-22 2010-11-11 Lentz M Rigdon Method and compositions for treatment of cancers
US20110171218A1 (en) * 2009-12-02 2011-07-14 Acceleron Pharma Inc. Compositions and methods for increasing serum half-life
US8007790B2 (en) 2006-04-03 2011-08-30 Stowers Institute For Medical Research Methods for treating polycystic kidney disease (PKD) or other cyst forming diseases
US8063182B1 (en) 1989-09-12 2011-11-22 Hoffman-Laroche Inc. Human TNF receptor fusion protein
CN102382850A (en) * 2010-09-01 2012-03-21 山东新时代药业有限公司 Novel human tumor necrosis factor receptor-Fc fusion gene and product protein thereof
WO2013063277A1 (en) 2011-10-25 2013-05-02 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
WO2014043103A1 (en) 2012-09-11 2014-03-20 Coherus Biosciences, Inc. Correctly folded etanercept in high purity and excellent yield
US8883982B2 (en) 2011-06-08 2014-11-11 Acceleron Pharma, Inc. Compositions and methods for increasing serum half-life
US9028822B2 (en) 2002-06-28 2015-05-12 Domantis Limited Antagonists against TNFR1 and methods of use therefor
EP2979729A2 (en) 2007-02-05 2016-02-03 Apellis Pharmaceuticals, Inc. Compstatin analogues for use in the treatment of inflammatory conditions of the respiratory system
WO2016149139A1 (en) 2015-03-13 2016-09-22 Samsung Bioepis Co., Ltd. Anti-tnf-alpha polypeptide composition and use thereof
US9603775B2 (en) 2013-04-24 2017-03-28 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9700486B2 (en) 2013-04-24 2017-07-11 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9700485B2 (en) 2013-04-24 2017-07-11 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9707153B2 (en) 2013-04-24 2017-07-18 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9707155B2 (en) 2013-04-24 2017-07-18 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9707154B2 (en) 2013-04-24 2017-07-18 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9713572B2 (en) 2013-04-24 2017-07-25 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9717648B2 (en) 2013-04-24 2017-08-01 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9717649B2 (en) 2013-04-24 2017-08-01 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9839579B2 (en) 2013-04-24 2017-12-12 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US9849066B2 (en) 2013-04-24 2017-12-26 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
US10307483B2 (en) 2016-10-21 2019-06-04 Amgen Inc. Pharmaceutical formulations and methods of making the same
US10350139B2 (en) 2011-10-25 2019-07-16 Corning Incorporated Pharmaceutical glass packaging assuring pharmaceutical sterility
US11607451B2 (en) 2005-06-14 2023-03-21 Amgen Inc. Self-buffering antibody formulations

Families Citing this family (119)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IL83878A (en) * 1987-09-13 1995-07-31 Yeda Res & Dev Soluble protein corresponding to tnf inhibitory protein its preparation and pharmaceutical compositions containing it
US6479632B1 (en) * 1988-09-12 2002-11-12 Yeda Research And Development Co. Ltd. Tumor necrosis factor inhibitory protein and its purification
US6406697B1 (en) 1989-02-23 2002-06-18 Genentech, Inc. Hybrid immunoglobulins
ES2238070T3 (en) * 1989-04-21 2005-08-16 Amgen Inc. TNF RECEPTOR, TNF BINDING PROTEIN AND CODANT DNA FOR THESE.
US7264944B1 (en) 1989-04-21 2007-09-04 Amgen Inc. TNF receptors, TNF binding proteins and DNAs coding for them
US6221675B1 (en) 1989-04-21 2001-04-24 Amgen, Inc. TNF receptors, TNF binding proteins and DNAs coding for them
CA2458875A1 (en) * 1989-05-18 1990-11-18 Yeda Research And Development Company Limited Tumor necrosis factor (tnf) binding protein ii, its purification and antibodies thereto
US6262239B1 (en) 1989-05-18 2001-07-17 Yeda Research And Development Co., Ltd. TNF receptor-specific antibodies
US6232446B1 (en) 1989-05-18 2001-05-15 Yeda Research And Development Co. Ltd. TNF ligands
US6143866A (en) * 1989-07-18 2000-11-07 Amgen, Inc. Tumor necrosis factor (TNF) inhibitor and method for obtaining the same
IL95031A (en) 1989-07-18 2007-03-08 Amgen Inc Method for the production of a human recombinant tumor necrosis factor inhibitor
US6498237B2 (en) 1989-08-07 2002-12-24 Peptech Limited Tumor necrosis factor antibodies
NZ235148A (en) * 1989-09-05 1991-12-23 Immunex Corp Tumour necrosis factor receptor protein and dna sequences
US5945397A (en) * 1989-09-05 1999-08-31 Immunex Corporation Purified p75 (type II) tumor necrosis factor receptor polypeptides
US5395760A (en) * 1989-09-05 1995-03-07 Immunex Corporation DNA encoding tumor necrosis factor-α and -β receptors
US6552170B1 (en) * 1990-04-06 2003-04-22 Amgen Inc. PEGylation reagents and compounds formed therewith
GB2246569A (en) * 1990-06-15 1992-02-05 Charing Cross Sunley Research Tumour necrosis factor - alpha binding protein
US7253264B1 (en) 1990-06-28 2007-08-07 Sanofi-Arentideutschland GmbH Immunoglobulin fusion proteins, their production and use
US20030064480A1 (en) * 1990-06-28 2003-04-03 Leander Lauffer Fusion proteins with immunoglobulin portions, the preparation and use thereof
ATE309376T1 (en) * 1990-06-28 2005-11-15 Hoechst Ag FUSION PROTEINS WITH IMMUNGLOBULIN COMPONENTS, THEIR PRODUCTION AND USE
EP0604418B1 (en) * 1991-03-29 1998-09-23 Immunex Corporation Isolated viral protein cytokine antagonists
US6475983B1 (en) * 1991-04-17 2002-11-05 Medisup International N.V. Water-soluble polypeptides having a high affinity for α and β interferons
IL99120A0 (en) * 1991-08-07 1992-07-15 Yeda Res & Dev Multimers of the soluble forms of tnf receptors,their preparation and pharmaceutical compositions containing them
DE69230862T2 (en) * 1991-10-15 2000-12-14 Michael F Mullarkey Receptors for the treatment of delayed-type inflammation
ES2142341T3 (en) * 1992-04-30 2000-04-16 Amgen Inc TREATMENT METHODS FOR DISEASES INDUCED BY INTERLEUKIN-1 AND THE TUMOR NECROSIS FACTOR.
IL101769A (en) * 1992-05-03 2007-02-11 Yeda Res & Dev Tnf receptor action modulation
US20050260201A1 (en) * 1993-01-29 2005-11-24 Centocor, Inc. Methods of treating rheumatoid arthritis using anti-TNF receptor fusion proteins
CA2125763C (en) * 1993-07-02 2007-08-28 Maurice Kent Gately P40 homodimer of interleukin-12
US6074642A (en) 1994-05-02 2000-06-13 Alexion Pharmaceuticals, Inc. Use of antibodies specific to human complement component C5 for the treatment of glomerulonephritis
US6579697B1 (en) 1995-05-11 2003-06-17 Yeda Research And Development Co. Ltd. Modulator of TNF/NGF superfamily receptors and soluble oligomeric TNF/NGF superfamily receptors
IL111125A0 (en) * 1994-05-11 1994-12-29 Yeda Res & Dev Soluble oligomeric tnf/ngf super family ligand receptors and their use
US5741667A (en) * 1994-05-27 1998-04-21 Genentech, Inc. Tumor necrosis factor receptor-associated factors
US5708142A (en) * 1994-05-27 1998-01-13 Genentech, Inc. Tumor necrosis factor receptor-associated factors
US7094564B1 (en) 1995-03-15 2006-08-22 Human Genome Sciences, Inc. Human tumor necrosis factor receptor
US7078493B1 (en) 1995-03-15 2006-07-18 Human Genome Sciences, Inc. Antibodies to human tumor necrosis factor receptor-like genes
US8110659B1 (en) 1995-03-15 2012-02-07 Human Genome Sciences, Inc. Human tumor necrosis factor receptor-like genes
US7429646B1 (en) 1995-06-05 2008-09-30 Human Genome Sciences, Inc. Antibodies to human tumor necrosis factor receptor-like 2
US7427492B1 (en) 1995-06-05 2008-09-23 Human Genome Sciences, Inc. Polynucleotides encoding human tumor necrosis factor receptor-like2
ZA966663B (en) * 1995-08-17 1998-02-06 Genentech Inc Traf Inhibitors.
US6410252B1 (en) 1995-12-22 2002-06-25 Case Western Reserve University Methods for measuring T cell cytokines
US6369027B1 (en) * 1995-12-22 2002-04-09 Amgen Inc. Osteoprotegerin
US7357927B2 (en) * 1996-03-12 2008-04-15 Human Genome Sciences, Inc. Death domain containing receptors
WO1997033904A1 (en) 1996-03-12 1997-09-18 Human Genome Sciences, Inc. Death domain containing receptors
US6713061B1 (en) 1996-03-12 2004-03-30 Human Genome Sciences, Inc. Death domain containing receptors
WO1997034616A1 (en) * 1996-03-18 1997-09-25 Medical Science Systems, Inc. A method for periodontal disease treatment
US5912141A (en) * 1996-05-22 1999-06-15 President & Fellows Of Harvard College Nucleic acids encoding tumor virus susceptibility genes
DE69737070T2 (en) 1996-05-23 2007-06-21 The Scripps Research Institute, La Jolla SYSTEMS FOR THE PRESENTATION OF CLASS II MHC ANTIGENES AND METHOD FOR THE ACTIVATION OF CD4 + T-LYMPHOCYTES
TW555765B (en) * 1996-07-09 2003-10-01 Amgen Inc Low molecular weight soluble tumor necrosis factor type-I and type-II proteins
US5939281A (en) * 1996-09-16 1999-08-17 Case Western Reserve University Detecting alloreactivity
CA2270913C (en) * 1996-10-30 2011-05-24 Human Genome Sciences, Inc. Human tumor necrosis factor receptor-like 2
US6593456B1 (en) * 1996-11-06 2003-07-15 The Regents Of The University Of California Tumor necrosis factor receptor releasing enzyme
US6930084B1 (en) 1996-11-06 2005-08-16 The Regents Of The University Of California Treating arthritis with TNF receptor releasing enzyme
BR9712900A (en) 1996-11-06 2000-11-28 Univ California Isolated tumor necrosis factor receptor-releasing enzyme, compositions comprising the enzyme and methods of using it
US20050191661A1 (en) * 1996-11-06 2005-09-01 Tetsuya Gatanaga Treatment of inflammatory disease by cleaving TNF receptors
WO1998023284A1 (en) 1996-11-27 1998-06-04 Immunex Corporation Method of regulating nitric oxide production
ATE247974T1 (en) 1996-12-06 2003-09-15 Amgen Inc COMBINATION THERAPY WITH A TNF-BINDING PROTEIN FOR THE TREATMENT OF DISEASES CAUSED BY TNF
EP2002846B1 (en) 1996-12-06 2017-01-25 Amgen Inc. Combination therapy using an IL-1 inhibitor for treating IL-1 mediated diseases
US20020137890A1 (en) * 1997-03-31 2002-09-26 Genentech, Inc. Secreted and transmembrane polypeptides and nucleic acids encoding the same
WO1998054201A1 (en) * 1997-05-29 1998-12-03 Human Genome Sciences, Inc. Human tumor necrosis factor receptor-like protein 8
EP1053351A4 (en) * 1998-01-27 2002-09-25 Millennium Pharm Inc Novel molecules of the tnf receptor superfamily and uses therefor
US20030180310A1 (en) * 1998-04-29 2003-09-25 Genentech, Inc. Secreted and transmembrane polypeptides and nucleic acids encoding the same
US6660843B1 (en) * 1998-10-23 2003-12-09 Amgen Inc. Modified peptides as therapeutic agents
US7294481B1 (en) 1999-01-05 2007-11-13 Immunex Corporation Method for producing recombinant proteins
US7109292B2 (en) * 1999-03-08 2006-09-19 Genentech, Inc. Secreted and transmembrane polypeptides and nucleic acids encoding the same
EP1939300A1 (en) 1999-05-28 2008-07-02 Targeted Genetics Corporation Methods and compositions for lowering the level of tumor necrosis factor (TNF) in TNF-associated disorders
AU783037B2 (en) * 1999-05-28 2005-09-15 Targeted Genetics Corporation Methods and compositions for lowering the level of tumor necrosis factor (TNF) in the TNF-associated disorders
US6808902B1 (en) 1999-11-12 2004-10-26 Amgen Inc. Process for correction of a disulfide misfold in IL-1Ra Fc fusion molecules
US7122631B2 (en) * 2000-02-22 2006-10-17 Genentech, Inc. Secreted and transmembrane polypeptides and nucleic acids encoding the same
EP1259616A2 (en) 2000-03-02 2002-11-27 Xencor Tnf-alpha variants for the treatment of tnf-alpha related disorders
UA83458C2 (en) 2000-09-18 2008-07-25 Байоджен Айдек Ма Інк. The isolated polypeptide baff-r (the receptor of the factor of activation of b-cells of the family tnf)
ATE366306T1 (en) 2000-09-22 2007-07-15 Immunex Corp SCREENING METHODS FOR AGONISTS AND ANTAGONISTS OF THE RECEPTOR ACTIVATOR OF NF-KAPPA B
US20030040119A1 (en) * 2001-04-11 2003-02-27 The Regents Of The University Of Michigan Separation devices and methods for separating particles
DE122010000047I1 (en) 2001-06-26 2011-05-05 Amgen Fremont Inc ANTIBODIES AGAINST OPGL
WO2003026695A1 (en) * 2001-09-21 2003-04-03 Genset S.A. Agonists and antagonists of cylixin for the treatment of metabolic disorders
US7084257B2 (en) 2001-10-05 2006-08-01 Amgen Inc. Fully human antibody Fab fragments with human interferon-gamma neutralizing activity
ATE425989T1 (en) * 2001-12-21 2009-04-15 Immunex Corp PROTEIN PURIFICATION PROCESS
EP1497444B1 (en) 2002-03-27 2015-11-04 Immunex Corporation Methods for increasing polypeptide production
WO2004050683A2 (en) * 2002-12-02 2004-06-17 Abgenix, Inc. Antibodies directed to tumor necrosis factor and uses thereof
MXPA05007019A (en) 2002-12-30 2005-08-18 Amgen Inc Combination therapy with co-stimulatory factors.
TWI353991B (en) 2003-05-06 2011-12-11 Syntonix Pharmaceuticals Inc Immunoglobulin chimeric monomer-dimer hybrids
JP2007525188A (en) 2003-05-16 2007-09-06 インターミューン インコーポレイテッド Synthetic chemokine receptor ligands and methods of use thereof
ES2398912T3 (en) 2003-10-14 2013-03-22 F. Hoffmann-La Roche Ltd. Macrocyclic carboxylic acid and acylsulfonamide compound as an inhibitor of hepatitis C virus replication
US7407973B2 (en) * 2003-10-24 2008-08-05 Intermune, Inc. Use of pirfenidone in therapeutic regimens
NZ550518A (en) 2004-03-23 2009-11-27 Biogen Idec Inc Agents that cross link TNF receptors for treating cancer
KR20070085227A (en) * 2004-08-09 2007-08-27 앨리오스 바이오파마 인크. Synthetic hyperglycosylated, protease-resistant polypeptide variants, oral formulations and methods of using the same
US7597884B2 (en) 2004-08-09 2009-10-06 Alios Biopharma, Inc. Hyperglycosylated polypeptide variants and methods of use
TWI384069B (en) 2004-08-27 2013-02-01 Pfizer Ireland Pharmaceuticals Production of polypeptides
TWI364458B (en) * 2004-08-27 2012-05-21 Wyeth Res Ireland Ltd Production of tnfr-lg
US7335491B2 (en) 2004-08-27 2008-02-26 Wyeth Research Ireland Limited Production of anti-abeta
US7504106B2 (en) * 2006-03-14 2009-03-17 Boris Skurkovich Method and composition for treatment of renal failure with antibodies and their equivalents as partial or complete replacement for dialysis
WO2007149115A1 (en) * 2006-06-15 2007-12-27 Targeted Genetics Corporation Methods for treating target joints in inflammatory arthritis using aav vectors encoding a tnf antagonist
US7833527B2 (en) 2006-10-02 2010-11-16 Amgen Inc. Methods of treating psoriasis using IL-17 Receptor A antibodies
WO2008055260A2 (en) 2006-11-03 2008-05-08 Wyeth Glycolysis-inhibiting substances in cell culture
DK2115126T3 (en) 2007-03-02 2015-05-04 Wyeth Llc Use of copper and glutamate in cell culture for the preparation of polypeptides
EP2283043B1 (en) 2008-04-07 2014-08-13 Bayer HealthCare, LLC Methods of recombinant production of glycoproteins
TW201117824A (en) 2009-10-12 2011-06-01 Amgen Inc Use of IL-17 receptor a antigen binding proteins
ES2652637T3 (en) 2010-01-15 2018-02-05 Kirin-Amgen, Inc. Antibody formulation and therapeutic regimens
WO2012006635A1 (en) 2010-07-09 2012-01-12 Biogen Idec Hemophilia Inc. Processable single chain molecules and polypeptides made using same
US9012178B2 (en) 2010-08-05 2015-04-21 Amgen Inc. Dipeptides to enhance yield and viability from cell cultures
WO2012145682A1 (en) 2011-04-21 2012-10-26 Amgen Inc. A method for culturing mammalian cells to improve recombinant protein production
CN107988166B (en) 2011-07-01 2022-03-15 美国安进公司 Mammalian cell culture
US9738707B2 (en) 2011-07-15 2017-08-22 Biogen Ma Inc. Heterodimeric Fc regions, binding molecules comprising same, and methods relating thereto
US20140234330A1 (en) 2011-07-22 2014-08-21 Amgen Inc. Il-17 receptor a is required for il-17c biology
CN103917458A (en) 2011-09-02 2014-07-09 安姆根有限公司 Pharmaceutical product and method of analysing light exposure of pharmaceutical product
AR089231A1 (en) 2011-12-15 2014-08-06 Amgen Inc FLOCULATION METHOD
WO2014109858A1 (en) 2013-01-14 2014-07-17 Amgen Inc. Methods of using cell-cycle inhibitors to modulate one or more properties of a cell culture
EP4026596A1 (en) 2013-03-14 2022-07-13 Amgen, Inc Removal of leaked affinity purification ligand
TWI625390B (en) 2013-03-14 2018-06-01 安美基公司 Methods for increasing mannose content of recombinant proteins
CA2899089C (en) 2013-03-15 2021-10-26 Biogen Ma Inc. Factor ix polypeptide formulations
US9481901B2 (en) 2013-05-30 2016-11-01 Amgen Inc. Methods for increasing mannose content of recombinant proteins
US11130980B2 (en) 2013-10-31 2021-09-28 Amgen Inc. Use of monensin to regulate glycosylation of recombinant proteins
EA039141B1 (en) 2014-01-13 2021-12-09 Эмджен Инк. Recombinant protein with reduced high mannose glycoform content, method of production and use thereof
IL282517B (en) 2014-01-29 2022-07-01 Amgen Inc Overexpression of n-glycosylation pathway regulators to modulate glycosylation of recombinant proteins
US10106829B2 (en) 2014-01-29 2018-10-23 Amgen Inc. Overexpression of N-glycosylation pathway regulators to modulate glycosylation of recombinant proteins
JP6596014B2 (en) 2014-03-31 2019-10-23 アムジェン ケー・エー,インコーポレイテッド How to treat nail and scalp psoriasis
EP3152317B1 (en) 2014-06-04 2019-01-02 Amgen Inc. Methods for harvesting mammalian cell cultures
JP2018502287A (en) 2014-11-19 2018-01-25 アムジエン・インコーポレーテツド Quantification of sugar chain in recombinant glycoprotein
CN107109455B (en) 2014-12-01 2022-02-18 美国安进公司 Methods for manipulating glycan content levels of glycoproteins
WO2023129974A1 (en) 2021-12-29 2023-07-06 Bristol-Myers Squibb Company Generation of landing pad cell lines

Citations (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS61293924A (en) * 1985-06-23 1986-12-24 Asahi Chem Ind Co Ltd Receptor protein for physiologically active substance
US4675285A (en) * 1984-09-19 1987-06-23 Genetics Institute, Inc. Method for identification and isolation of DNA encoding a desired protein
WO1989002922A1 (en) * 1987-10-02 1989-04-06 Genentech, Inc. Adheson variants
EP0325224A2 (en) * 1988-01-22 1989-07-26 ZymoGenetics, Inc. Methods of producing secreted receptor analogs and biologically active peptide dimers.
GB2218101A (en) * 1988-03-31 1989-11-08 Glaxo Group Ltd TNF-alpha inhibitors
US4935233A (en) * 1985-12-02 1990-06-19 G. D. Searle And Company Covalently linked polypeptide cell modulators
EP0394827A1 (en) * 1989-04-26 1990-10-31 F. Hoffmann-La Roche Ag Chimaeric CD4-immunoglobulin polypeptides
WO1990013575A1 (en) * 1989-05-09 1990-11-15 Basf Aktiengesellschaft Novel tnf-inhibit proteins and their preparation
EP0417563A2 (en) * 1989-09-12 1991-03-20 F. Hoffmann-La Roche Ag TNF-binding proteins
EP0418014A1 (en) * 1989-09-11 1991-03-20 Immunex Corporation Tumor necrosis factor-alpha and -beta receptors
EP0422339A1 (en) * 1989-07-18 1991-04-17 Amgen Boulder Inc. Tumor necrosis factor (TNF) inhibitor and method for obtaining the same
WO1991008298A2 (en) * 1989-11-22 1991-06-13 Genentech, Inc. Fusion proteins consisting of a ligand binding protein and a stable plasma protein
EP0464533A1 (en) * 1990-06-28 1992-01-08 BEHRINGWERKE Aktiengesellschaft Fusionproteins with parts of immunoglobulins, their production and use
EP0308378B1 (en) * 1987-09-13 1994-11-30 Yeda Research And Development Company Limited Tumor necrosis factor (TNF)inhibitory protein and its purification
EP0398327B1 (en) * 1989-05-18 1995-03-15 Yeda Research And Development Company Limited Tumor necrosis factor binding protein II, its purification and antibodies thereto
US5447851A (en) * 1992-04-02 1995-09-05 Board Of Regents, The University Of Texas System DNA encoding a chimeric polypeptide comprising the extracellular domain of TNF receptor fused to IgG, vectors, and host cells
US5478925A (en) * 1991-08-07 1995-12-26 Yeda Research And Development Co. Ltd. Multimers of the soluble forms of TNF receptors, their preparation and pharmaceutical compositions containing them
US5512544A (en) * 1987-09-13 1996-04-30 Yeda Research And Development Co. Ltd. Pharmaceutical compositions comprising an anticytokine
US5605690A (en) * 1989-09-05 1997-02-25 Immunex Corporation Methods of lowering active TNF-α levels in mammals using tumor necrosis factor receptor
US5712155A (en) * 1989-09-05 1998-01-27 Immunex Corporation DNA encoding tumor necrosis factor-α and -β receptors
US5863786A (en) * 1990-10-18 1999-01-26 The Mathilda And Terence Kennedy Institute Of Rheumatology Nucleic acid encoding modified human tnfα (tumor necrosis factor alpha) receptor

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB8806339D0 (en) * 1988-03-17 1988-04-13 Hoffmann La Roche Monoclonal antibodies

Patent Citations (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4675285A (en) * 1984-09-19 1987-06-23 Genetics Institute, Inc. Method for identification and isolation of DNA encoding a desired protein
JPS61293924A (en) * 1985-06-23 1986-12-24 Asahi Chem Ind Co Ltd Receptor protein for physiologically active substance
US4935233A (en) * 1985-12-02 1990-06-19 G. D. Searle And Company Covalently linked polypeptide cell modulators
EP0308378B1 (en) * 1987-09-13 1994-11-30 Yeda Research And Development Company Limited Tumor necrosis factor (TNF)inhibitory protein and its purification
US5512544A (en) * 1987-09-13 1996-04-30 Yeda Research And Development Co. Ltd. Pharmaceutical compositions comprising an anticytokine
US5695953A (en) * 1987-09-13 1997-12-09 Yeda Research And Development Co. Ltd. DNA that encodes a tumor necrosis factor inhibitory protein and a recombinant method of production
WO1989002922A1 (en) * 1987-10-02 1989-04-06 Genentech, Inc. Adheson variants
EP0325224A2 (en) * 1988-01-22 1989-07-26 ZymoGenetics, Inc. Methods of producing secreted receptor analogs and biologically active peptide dimers.
US5155027A (en) * 1988-01-22 1992-10-13 Zymogenetics, Inc. Method of producing secreted receptor analogs and biologically active peptide dimers
GB2218101A (en) * 1988-03-31 1989-11-08 Glaxo Group Ltd TNF-alpha inhibitors
US5116964A (en) * 1989-02-23 1992-05-26 Genentech, Inc. Hybrid immunoglobulins
EP0394827A1 (en) * 1989-04-26 1990-10-31 F. Hoffmann-La Roche Ag Chimaeric CD4-immunoglobulin polypeptides
WO1990013575A1 (en) * 1989-05-09 1990-11-15 Basf Aktiengesellschaft Novel tnf-inhibit proteins and their preparation
EP0398327B1 (en) * 1989-05-18 1995-03-15 Yeda Research And Development Company Limited Tumor necrosis factor binding protein II, its purification and antibodies thereto
EP0422339A1 (en) * 1989-07-18 1991-04-17 Amgen Boulder Inc. Tumor necrosis factor (TNF) inhibitor and method for obtaining the same
US5395760A (en) * 1989-09-05 1995-03-07 Immunex Corporation DNA encoding tumor necrosis factor-α and -β receptors
US5712155A (en) * 1989-09-05 1998-01-27 Immunex Corporation DNA encoding tumor necrosis factor-α and -β receptors
US5605690A (en) * 1989-09-05 1997-02-25 Immunex Corporation Methods of lowering active TNF-α levels in mammals using tumor necrosis factor receptor
EP0418014A1 (en) * 1989-09-11 1991-03-20 Immunex Corporation Tumor necrosis factor-alpha and -beta receptors
US5610279A (en) * 1989-09-12 1997-03-11 Hoffman-La Roche Inc. Human TNF receptor
EP0417563A2 (en) * 1989-09-12 1991-03-20 F. Hoffmann-La Roche Ag TNF-binding proteins
WO1991008298A2 (en) * 1989-11-22 1991-06-13 Genentech, Inc. Fusion proteins consisting of a ligand binding protein and a stable plasma protein
EP0464533A1 (en) * 1990-06-28 1992-01-08 BEHRINGWERKE Aktiengesellschaft Fusionproteins with parts of immunoglobulins, their production and use
US5863786A (en) * 1990-10-18 1999-01-26 The Mathilda And Terence Kennedy Institute Of Rheumatology Nucleic acid encoding modified human tnfα (tumor necrosis factor alpha) receptor
US5478925A (en) * 1991-08-07 1995-12-26 Yeda Research And Development Co. Ltd. Multimers of the soluble forms of TNF receptors, their preparation and pharmaceutical compositions containing them
US5447851A (en) * 1992-04-02 1995-09-05 Board Of Regents, The University Of Texas System DNA encoding a chimeric polypeptide comprising the extracellular domain of TNF receptor fused to IgG, vectors, and host cells
US5447851B1 (en) * 1992-04-02 1999-07-06 Univ Texas System Board Of Dna encoding a chimeric polypeptide comprising the extracellular domain of tnf receptor fused to igg vectors and host cells

Non-Patent Citations (69)

* Cited by examiner, † Cited by third party
Title
Aggarwal et al, J. Biol. Chem., 262:10000 (1987). *
Aggarwal et al, Nature, 318:665 (1985). *
Aruffo et al, Proc. Natl. Acad. Sci., USA, 84:8573. *
Ashkenazi et al, Proc. Natl. Acad. Sci., USA, 88:10535 10539 (1991). *
Ashkenazi et al, Proc. Natl. Acad. Sci., USA, 88:10535-10539 (1991).
Baglioni et al, J. Biol. Chem., 260:13395 (1985). *
Capon et al, Nature, 337:525 530 (1989). *
Capon et al, Nature, 337:525-530 (1989).
Creasley et al, Proc. Natl. Acad. Sci., USA, 84:3293 (1987). *
Dembic et al, Cytokine, 2:231 237 (1990). *
Dembic et al, Cytokine, 2:231-237 (1990).
Englemann et al, J. Biol. Chem., 264:11974 (1989). *
Evans et al, J. Exp. Med., 180:2173 2179 (1994). *
Evans et al, J. Exp. Med., 180:2173-2179 (1994).
Goodman, J. in Basic and Clinical Immunology, pp. 101 108, 7th ed., (Sites et al, eds.), Appleton & Lange, Norwalk, Conn. (1991). *
Goodman, J. in Basic and Clinical Immunology, pp. 101-108, 7th ed., (Sites et al, eds.), Appleton & Lange, Norwalk, Conn. (1991).
Goodman, J. in Basic and Clinical Immunology, pp. 24 25, Lange Medical Publications, Los Altos, California (1982). *
Goodman, J. in Basic and Clinical Immunology, pp. 24-25, Lange Medical Publications, Los Altos, California (1982).
Gray et al, Nature, 312:721 (1984). *
Holtmann et al, J. Immunol., 139:1161 (1987). *
Imamura et al, J. Immunol., 139:2989 2992 (1987). *
Imamura et al, J. Immunol., 139:2989-2992 (1987).
Ishikura et al, Blood, 73:419 424 (1989). *
Ishikura et al, Blood, 73:419-424 (1989).
Israel et al, Immunology Letters, 12:217 (1986). *
Jones et al, Nature, 338:225 228 (1989). *
Jones et al, Nature, 338:225-228 (1989).
Kohno et al, Proc. Natl. Acad. Sci., USA, 87:8331 8335 (1990). *
Kohno et al, Proc. Natl. Acad. Sci., USA, 87:8331-8335 (1990).
Kull et al, PNAS, 82:5756 5760 (1985). *
Kull et al, PNAS, 82:5756-5760 (1985).
Langer et al, In: New Advances on Cytokines, Eds. Romagnani et al, Raven Press, New York, pp. 349 354 (1992). *
Langer et al, In: New Advances on Cytokines, Eds. Romagnani et al, Raven Press, New York, pp. 349-354 (1992).
Lesslauer et al, Eur. J. Immunol., 21:2883 2886 (1991). *
Lesslauer et al, Eur. J. Immunol., 21:2883-2886 (1991).
Loetscher et al, Cell, 61:351 359 (1990). *
Loetscher et al, Cell, 61:351-359 (1990).
Loetscher et al, J. Biol. Chem., 266(2):18324 18329 (1991). *
Loetscher et al, J. Biol. Chem., 266(2):18324-18329 (1991).
Mohler et al, J. Immunol., 151:1548 1561 (1993). *
Mohler et al, J. Immunol., 151:1548-1561 (1993).
Nophar et al, EMBO J., 9:3269 3278 (1990). *
Nophar et al, EMBO J., 9:3269-3278 (1990).
Okayama et al, Mol. Cell. Biol., 2:161 (1982). *
Okayama et al, Mol. Cell. Biol., 3:280 (1983). *
Peetre et al, Eur. J. Haematol., 41:414 (1988). *
Pennica et al, Nature, 312:724 (1984). *
Peppel et al, J. Cell. Biochem. Supp., 0(15 Part F):118 (1991). *
Peppel et al, J. Exp. Med., 174:1483 1489 (1991). *
Peppel et al, J. Exp. Med., 174:1483-1489 (1991).
Rutka et al, Int. J. Cancer Res., 41:573 582 (1988). *
Rutka et al, Int. J. Cancer Res., 41:573-582 (1988).
Shalaby et al, J. Leukocyte Biol., 41:196 (1987). *
Sims et al, Science, 241:585 (1988). *
Smith et al, J. Biol. Chem., 262:6951 6954 (1987). *
Smith et al, J. Biol. Chem., 262:6951-6954 (1987).
Smith et al, Science, 248:1019 1023 (1990). *
Smith et al, Science, 248:1019-1023 (1990).
Stauber et al, J. Biol. Chem., 263(35):19098 19104 (1988). *
Stauber et al, J. Biol. Chem., 263(35):19098-19104 (1988).
Suggs et al, PNAS, 78:6613 6617 (1981). *
Suggs et al, PNAS, 78:6613-6617 (1981).
Tsujimoto et al, Arch. Biochem. and Biophys., pp. 563 568 (1986). *
Tsujimoto et al, Arch. Biochem. and Biophys., pp. 563-568 (1986).
Tsujimoto et al, J. Immun., 136:2441 (1987). *
Unglaub et al, J. Exp. Med., 166:1788 (1987). *
Yamasaki et al, Science, 241:825 (1988). *
Yonehara et al, J. Exp. Med., 167:1511 (1988). *
Yoshie et al, J. Biochem., 100: 531 (1986). *

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7517963B2 (en) 1989-08-07 2009-04-14 Arana Therapeutics Limited Tumour necrosis factor binding ligands
US7528237B2 (en) 1989-08-07 2009-05-05 Arana Therapeutics Limited Tumour necrosis factor binding ligands
US7544782B2 (en) 1989-08-07 2009-06-09 Arana Therapeutics Limited Tumour necrosis factor binding ligands
US20070287177A1 (en) * 1989-08-07 2007-12-13 Rathjen Deborah A Tumour necrosis factor binding ligands
US7553641B2 (en) 1989-08-07 2009-06-30 Arana Therapeutics Limited Tumour necrosis factor binding ligands
US20060140951A1 (en) * 1989-08-07 2006-06-29 Rathjen Deborah A Tumour necrosis factor binding ligands
US7605233B2 (en) 1989-08-07 2009-10-20 Arana Therapeutics Limited Tumour necrosis factor binding ligands
US20060159677A1 (en) * 1989-08-07 2006-07-20 Peptech Limited Tumour necrosis factor peptide binding antibodies
US20060182746A1 (en) * 1989-08-07 2006-08-17 Rathjen Deborah A Tumour necrosis factor binding ligands
US20060204499A1 (en) * 1989-08-07 2006-09-14 Peptech Limited Tumour necrosis factor binding ligands
US20060233802A1 (en) * 1989-08-07 2006-10-19 Peptech Limited Tumour necrosis factor binding ligands
US20070077248A1 (en) * 1989-08-07 2007-04-05 Peptech Limited Tumour necrosis factor binding ligands
US20060275868A1 (en) * 1989-09-05 2006-12-07 Immunex Corporation Fusion proteins comprising tumor necrosis factor receptor
US20030082736A1 (en) * 1989-09-05 2003-05-01 Immunex Corporation Fusion proteins comprising tumor necrosis factor receptor
US8063182B1 (en) 1989-09-12 2011-11-22 Hoffman-Laroche Inc. Human TNF receptor fusion protein
US8163522B1 (en) 1989-09-12 2012-04-24 Hoffman-Laroche Inc. Human TNF receptor
US7070783B1 (en) 1995-05-09 2006-07-04 The Mathilda And Terence Kennedy Institute Of Rheumatology Small molecular weight TNF receptor multimeric molecule
US20100285044A1 (en) * 1998-05-22 2010-11-11 Lentz M Rigdon Method and compositions for treatment of cancers
US7854717B1 (en) 1998-05-22 2010-12-21 Biopheresis Technologies, Inc. Method and compositions for treatment of cancers
US8197430B1 (en) 1998-05-22 2012-06-12 Biopheresis Technologies, Inc. Method and system to remove cytokine inhibitor in patients
US8133490B2 (en) 1998-05-22 2012-03-13 Biopheresis Technologies, Inc. Method and system to remove cytokine inhibitors in patients
US20050244371A1 (en) * 1998-05-22 2005-11-03 Biopheresis Technologies, Llc Method and system to remove cytokine inhibitor in patients
US20080057060A1 (en) * 1998-05-22 2008-03-06 Biopheresis Technologies, Llc Method and system to remove cytokine inhibitor in patients
US20080145333A1 (en) * 1998-05-22 2008-06-19 Biopheresis Technologies, Inc. Method and system to remove soluble tnfr1, tnfr2, and il2 in patients
US7708995B2 (en) 1998-09-25 2010-05-04 Sciaticon Ab Use of TNF-alpha inhibitors for treating a nerve disorder mediated by nucleus pulposus
US20070104711A1 (en) * 1998-09-25 2007-05-10 Kjell Olmarker Use of certain drugs for treating nerve root injury
US8057792B2 (en) 1998-09-25 2011-11-15 Sciaticon Ab Use of an antibody that blocks TNF-alpha activity for treating a nerve disorder mediated by nucleus pulposus
US20100150922A1 (en) * 1998-09-25 2010-06-17 Sciaticon Ab Use of TNF-alpha Inhibitors for Treating a Nerve Disorder Mediated by Nucleus Pulposus
US20110201986A1 (en) * 1999-11-20 2011-08-18 Cytologic, Inc. Method for enhancing immune responses in mammals
US20020119147A1 (en) * 1999-11-20 2002-08-29 Cytologic, Llc Apparatus for enhancing immune responses in mammals
EP1998266A2 (en) 2001-02-19 2008-12-03 Merck Patent GmbH Method for identification of T-cell epitopes and use for preparing molecules with reduced immunogenicity
US11104714B2 (en) 2002-02-27 2021-08-31 Immunex Corporation Compositions comprising a P75 tumor necrosis factor receptor/Ig fusion protein
US7648702B2 (en) 2002-02-27 2010-01-19 Immunex Corporation Stable aqueous formulation of a soluble TNF receptor and arginine
US8828947B2 (en) 2002-02-27 2014-09-09 Immunex Corporation Polypeptide formulation
US8119604B2 (en) 2002-02-27 2012-02-21 Immunex Corporation Polypeptide formulation
US20100086559A1 (en) * 2002-02-27 2010-04-08 Immunex Corporation Polypeptide formulation
US20070243185A1 (en) * 2002-02-27 2007-10-18 Immunex Corporation Polypeptide formulation
US9518111B2 (en) 2002-02-27 2016-12-13 Immunex Corporation Compositions comprising a p75 tumor necrosis factor receptor/Ig fusion protein
US20060002935A1 (en) * 2002-06-28 2006-01-05 Domantis Limited Tumor Necrosis Factor Receptor 1 antagonists and methods of use therefor
US9028822B2 (en) 2002-06-28 2015-05-12 Domantis Limited Antagonists against TNFR1 and methods of use therefor
US20080008713A1 (en) * 2002-06-28 2008-01-10 Domantis Limited Single domain antibodies against tnfr1 and methods of use therefor
US7722886B2 (en) 2003-05-20 2010-05-25 Wyeth Compositions and methods for treatment of severe acute respiratory syndrome (SARS)
US20060263847A1 (en) * 2003-05-20 2006-11-23 Siber George R Compositions and methods for treatment of sever acute respiratory syndrome (sars)
US7892563B2 (en) 2003-05-20 2011-02-22 Wyeth Holdings Corporation Methods for treatment of severe acute respiratory syndrome (SARS)
US20050265996A1 (en) * 2004-04-30 2005-12-01 Biopheresis Technologies, Inc. Method and system to remove soluble TNFR1, TNFR2, and IL2 in patients
US11607451B2 (en) 2005-06-14 2023-03-21 Amgen Inc. Self-buffering antibody formulations
US20070065514A1 (en) * 2005-09-22 2007-03-22 Howell Mark D Method for enhancing immune responses in mammals
US8501918B2 (en) 2005-09-22 2013-08-06 Cytologic, Inc. Immobilized tumor necrosis factor-α muteins for enhancing immune response in mammals
US20090227750A1 (en) * 2005-09-22 2009-09-10 Mark Douglas Howell Mehod for enhancing immune response in mammals
US20110237521A1 (en) * 2005-11-10 2011-09-29 Sazani Peter L Splice switching oligomers for tnf superfamily receptors and their use in treatment of disease
US20070249538A1 (en) * 2005-11-10 2007-10-25 Sazani Peter L Soluble TNF receptors and their use in treatment of disease
US20070105807A1 (en) * 2005-11-10 2007-05-10 Sazani Peter L Splice switch oligomers for TNF superfamily receptors and their use in treatment of disease
US20110105740A1 (en) * 2005-11-10 2011-05-05 SANTARIS PHARMA A/S, a Denmark corporation Soluble tnf receptors and their use in treatment of disease
US7785834B2 (en) 2005-11-10 2010-08-31 Ercole Biotech, Inc. Soluble TNF receptors and their use in treatment of disease
US8007790B2 (en) 2006-04-03 2011-08-30 Stowers Institute For Medical Research Methods for treating polycystic kidney disease (PKD) or other cyst forming diseases
US20100047235A1 (en) * 2006-07-07 2010-02-25 Gorman James R Novel regimens for treating diseases and disorders
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US20080075690A1 (en) * 2006-09-22 2008-03-27 Mark Douglas Howell Method for enhancing immune responses in mammals
EP2979729A2 (en) 2007-02-05 2016-02-03 Apellis Pharmaceuticals, Inc. Compstatin analogues for use in the treatment of inflammatory conditions of the respiratory system
US20090264353A1 (en) * 2007-10-19 2009-10-22 Santaris Pharma A/S Splice Switching Oligomers for TNF Superfamily Receptors and their Use in Treatment of Disease
US8722615B2 (en) 2009-12-02 2014-05-13 Acceleron Pharma, Inc. Compositions and methods for increasing serum half-life
US20110171218A1 (en) * 2009-12-02 2011-07-14 Acceleron Pharma Inc. Compositions and methods for increasing serum half-life
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US8883982B2 (en) 2011-06-08 2014-11-11 Acceleron Pharma, Inc. Compositions and methods for increasing serum half-life
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WO2014043103A1 (en) 2012-09-11 2014-03-20 Coherus Biosciences, Inc. Correctly folded etanercept in high purity and excellent yield
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US9707153B2 (en) 2013-04-24 2017-07-18 Corning Incorporated Delamination resistant pharmaceutical glass containers containing active pharmaceutical ingredients
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US11491223B2 (en) 2016-10-21 2022-11-08 Amgen Inc. Pharmaceutical formulations and methods of making the same
US10307483B2 (en) 2016-10-21 2019-06-04 Amgen Inc. Pharmaceutical formulations and methods of making the same

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