Fully human antibody against human CD 137
10875926 ยท 2020-12-29
Assignee
Inventors
- Ting Xu (Jiangsu, CN)
- Yan Luan (Jiangsu, CN)
- Xiaoxiao Wang (Jiangsu, CN)
- Jianjian Peng (Jiangsu, CN)
- Shuli Ma (Jiangsu, CN)
- Hui Ma (Jiangsu, CN)
- Xiaolong Pan (Jiangsu, CN)
- Shilong Fu (Jiangsu, CN)
- Shanshan Ning (Jiangsu, CN)
- Yeqiong Fei (Jiangsu, CN)
- Meng Zhao (Jiangsu, CN)
Cpc classification
A61K39/395
HUMAN NECESSITIES
A61P35/00
HUMAN NECESSITIES
C07K16/28
CHEMISTRY; METALLURGY
A61K45/06
HUMAN NECESSITIES
C07K2317/92
CHEMISTRY; METALLURGY
C07K2317/33
CHEMISTRY; METALLURGY
C07K16/2878
CHEMISTRY; METALLURGY
International classification
A61K39/395
HUMAN NECESSITIES
C07K16/28
CHEMISTRY; METALLURGY
A61K45/06
HUMAN NECESSITIES
Abstract
Disclosed are a fully human monoclonal antibody specifically binding to a CD137 or an antigen binding portion thereof. On one hand, provided are a CDR/variable region sequence of the antibody and an encoding nucleic acid sequence thereof; on the other hand, provided is a method for treating diseases using the antibody or the antigen binding portion thereof. a fully human monoclonal antibody specifically binding to a CD137 or an antigen binding portion thereof. On one hand, provided are a CDR/variable region sequence of the antibody and an encoding nucleic acid sequence thereof; on the other hand, provided is a method for treating diseases using the antibody or the antigen binding portion thereof.
Claims
1. An antibody specifically binding to CD137 or an antigen-binding portion thereof, comprising a heavy chain variable region and a light chain variable region, wherein: said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.5, a CDR2 having a sequence as set forth in SEQ ID NO.6, and a CDR3 having a sequence as set forth in SEQ ID NO.7; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.10, a CDR2 having a sequence as set forth in SEQ ID NO.11, and a CDR3 having a sequence as set forth in SEQ ID NO.12; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.15, a CDR2 having a sequence as set forth in SEQ ID NO.16, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.21, and a CDR3 having a sequence as set forth in SEQ ID NO.22; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.15, a CDR2 having a sequence as set forth in SEQ ID NO.29, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.21, and a CDR3 having a sequence as set forth in SEQ ID NO.22; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.32, a CDR2 having a sequence as set forth in SEQ ID NO.16, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.21, and a CDR3 having a sequence as set forth in SEQ ID NO.22; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.15, a CDR2 having a sequence as set forth in SEQ ID NO.16, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.35, and a CDR3 having a sequence as set forth in SEQ ID NO.22; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.15, a CDR2 having a sequence as set forth in SEQ ID NO.16, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.21, and a CDR3 having a sequence as set forth in SEQ ID NO.38; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.15, a CDR2 having a sequence as set forth in SEQ ID NO.16, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.21, and a CDR3 having a sequence as set forth in SEQ ID NO.41; or said heavy chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.15, a CDR2 having a sequence as set forth in SEQ ID NO.16, and a CDR3 having a sequence as set forth in SEQ ID NO.17; and said light chain variable region comprises a CDR1 having a sequence as set forth in SEQ ID NO.20, a CDR2 having a sequence as set forth in SEQ ID NO.35, and a CDR3 having a sequence as set forth in SEQ ID NO.41.
2. The antibody or an antigen-binding portion thereof according to claim 1, wherein: said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.4; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.9; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.14; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.19; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.28; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.19; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.31; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.19; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.14; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.34; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.14; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.37; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.14; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.40; or said heavy chain comprises a variable region having a sequence as set forth in SEQ ID NO.14; and said light chain comprises a variable region having a sequence as set forth in SEQ ID NO.43.
3. The antibody or an antigen-binding portion thereof according to claim 1, wherein said antibody or said antigen-binding portion thereof is a complete antibody, a bispecific antibody, scFv, Fab, Fab, F(ab).sub.2 or Fv.
4. A single-chain antibody, comprising a VH, a VL and a linker peptide, wherein the VH has a sequence as set forth in SEQ ID NO.4, the VL has a sequence as set forth in SEQ ID NO.9, and the linker peptide has a sequence as set forth in SEQ ID NO.1 or the VH has a sequence as set forth in SEQ ID NO.14, the VL has a sequence as set forth in SEQ ID NO.19 and the linker peptide has a sequence as set forth in SEQ ID NO.1.
5. A pharmaceutical composition, comprising: the antibody or an antigen-binding portion thereof of claim 1; and a pharmaceutically acceptable carrier.
6. An isolated polynucleotide, comprising a nucleotide sequence encoding an amino acid sequence as set forth in SEQ ID NO.4, SEQ ID NO.14, SEQ ID NO.28, SEQ ID NO.31.
7. The polynucleotide according to claim 6, comprising a nucleotide sequence as set forth in SEQ ID NO.8, SEQ ID NO.18, SEQ ID NO.30, or SEQ ID NO.33.
8. An isolated polynucleotide, comprising a nucleotide sequence encoding an amino acid sequence as set forth in SEQ ID NO.9, SEQ ID NO.19, SEQ ID NO.34, SEQ ID NO.37, SEQ ID NO.40, or SEQ ID NO.43.
9. The polynucleotide according to claim 8, comprising a nucleotide sequence as set forth in SEQ ID NO.13, SEQ ID NO.23, SEQ ID NO.36, SEQ ID NO.39, SEQ ID NO.42, or SEQ ID NO.44.
10. A vector, containing a nucleotide sequence as set forth in SEQ ID NO.8, SEQ ID NO.18, SEQ ID NO. 30, or SEQ ID NO.33.
11. A vector, containing a nucleotide sequence as set forth in SEQ ID NO.13, SEQ ID NO.23, SEQ ID NO.36, SEQ ID NO.39, SEQ ID NO.42, or SEQ ID NO.44.
12. A cell, containing a nucleotide sequence as set forth in SEQ ID NO.8, SEQ ID NO.18, SEQ ID NO.30, or SEQ ID NO.33.
13. A cell, containing a nucleotide sequence as set forth in SEQ ID NO.13, SEQ ID NO.23, SEQ ID NO.36, SEQ ID NO.39, SEQ ID NO.42, or SEQ ID NO.44.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF SEQUENCES
(14) Sequences involved in the present invention include nucleotide sequences and amino acid sequences and have been summarized into a sequence list, attached followed by the specification, and meanwhile, the inventor has submitted the sequence list in a computer readable form.
DETAILED DESCRIPTION OF THE EMBODIMENTS
(15) The present invention is not limited to specific methods, solutions, antibodies, or cell lines described herein because they may vary. In addition, the terms used herein are used only for the purpose of describing particular embodiments and are not intended to limit the scope of the present invention.
(16) Unless otherwise defined, all technical and scientific terms and any abbreviations herein all have the same meaning as commonly understood by a person skilled in the art. Although methods and materials similar or equivalent to those described herein may be used in the practice of the invention, illustrative methods, devices, and materials are described herein.
(17) Unless otherwise indicated, the terms in the present invention have the meanings commonly used in the art.
(18) The term antibody as used in the present invention refers to any immunoglobulin or complete molecule binding to specific epitope as well as portion thereof. The antibodies include, but not limited to, polyclonal antibody, monoclonal antibody, chimeric antibody, humanized antibody, single-chain antibody, and fragments and/or portions of the complete antibody, provided that these fragments or portions remain the antigen binding capabilities of parental antibodies. For example, in the present invention, anti-hCD137 antibody refers to a monoclonal antibody, a polyclonal antibody, a single-chain antibody and fragments or portions thereof or functional variants or functional fragments thereof with immune activities, which was capable of specifically binding to human CD137.
(19) The term the position of an antibody as used in the present invention is obtained according to the reference on a website, it does not refer to the actual positions of the amino acids in the sequence.
(20) The term binding or specifically binding as used in the present invention refers to with a purified wild-type antigen, the binding of an antibody with the antigen epitope in the in vitro determination process, preferably in the plasmon resonance determination process (BIAcore, GE-Healthcare, Uppsala, Sweden).
(21) The term human monoclonal antibody as used in the present invention refers to the antibody exhibiting a single binding specificity with variable and constant regions derived from human-type immunoglobulin sequences.
EXAMPLES
Example 1. Expression of Recombinant Human CD137 and Preparation of Related EGFP Cells
(22) The amino acid sequence (i.e., from the residue 1 to the residue 186 in Q07011) of the human CD137 extracellular domain was obtained according to the amino acid sequence of human CD137 in the Uniprot protein database; the amino acid sequence (i.e., from the residue 1 to the residue 186 in F6W5G6) of the monkey CD137 extracellular domain was obtained according to the amino acid sequence (F6W5G6) of rhesus monkey CD137 (RhCD137) in the Uniprot protein database; the amino acid sequence (i.e., from the residue 104 to the residue 330 in P01857) of the human IgG1-Fc domain was obtained according to the constant region amino acid sequence (P01857) of human immunoglobulin gamma (.gamma.)1 (IgG1) in the Uniprot protein database; the amino acid sequence (i.e., the residue 98 to the residue 324 in P01868) of mouse IgG1-Fc (muFc) domain was obtained according to the constant region amino acid sequence (P01868) of mouse immunoglobulin gamma (.gamma.)1 (IgG1) in the Uniprot protein database. The corresponding encoding DNA sequences were designed by using DNAworks online tool to obtain the genes of hCD137-Fc, hCD137-muFc and RhCD137-muFc fusion proteins. The amino acid sequence (C5MKY7) of enhanced green fluorescent protein (EGFP), the amino acid sequence (Q07011) of human CD137, the amino acid sequence (P20334) of mouse CD137, the amino acid sequence (P41274) of human CD137L, the amino acid sequence (P43489) of human OX40, the amino acid sequence (Q9Y5U5) of human GITR, the amino acid sequence (P26842) of human CD27 were obtained according to the information of the Uniprot protein database; the corresponding encoding DNA sequences were designed by using DNAworks online tool to obtain the above sequences and the genes of EGFP fusion proteins, including the genes of hCD137-EGFP, hCD137L-EGFP, mCD137-EGFP, hOX40-EGFP, hCD27-EGFP and hGITR-EGFP. Their DNA fragments were obtained by artificial synthesis. The synthesized gene sequences were double-digested with HindIII and EcoRI (Fermentas) respectively, and subcloned into the commercial vector pcDNA4/myc-HisA (Invitrogen, V863-20), and the accuracy of the constructed plasmids were verified by sequencing. The recombinant plasmid DNAs were obtained: pcDNA4-hCD137-hFc, pcDNA4-hCD137-muFc, pcDNA4-RhCD137-muFc, pcDNA4-hOX40-EGFP, pcDNA4-hCD137-EGFP, pcDNA4-mCD137-EGFP, pcDNA4-hCD137L-EGFP, pcDNA4-hCD27-EGFP and pcDNA4-hGITR-EGFP.
(23) The above EGFP recombinant plasmids were transfected into HEK293 (ATCC, CRL-1573) cells, and the expressions of hOX40, hCD137, mCD137, and hCD27 were confirmed by the fluorescence activated signal sorting (FACS) at 48 h after transfection.
(24) pcDNA4-hCD137-Fc, pcDNA4-hCD137-muFc and pcDNA4-RhCD137-muFc were transiently transfected into HEK293 cells for protein production. The recombinant expression plasmids were diluted with a FreeStyle293 medium and PEI (polyethylenimine) solution for transformation was added; each group of plasmid/PEI mixture was added into the cell suspension respectively and incubated at 37 C., 10% CO2 and 90 rpm; after 5-6 days, the transiently expressed culture supernatant was collected and purified by Protein A affinity chromatography to obtain hCD137-Fc, hCD137-muFc and RhCD137-muFc protein samples for the following examples. The obtained protein samples were subjected to preliminary detection by SDS-PAGE, and the target band can be seen clearly.
Example 2. Screening, Cloning, Expressing and Identification of Anti-hCD137 Antibody from Yeast Display Library
(25) Yeast display technology was used to screen for complete human antibodies against human CD137. The scFV yeast display library was constructed by cloning the VH and VL genes of the IgM and IgG cDNA from PBMCs of 150 healthy human beings (the linker sequence between the VH and the VL is GGGGSGGGGSGGGGS linker peptide (SEQ ID NO: 1)), with a library volume of 510.sup.8. The 10-fold volume of yeast library was resuscitated to induce the expression of the antibody on yeast surface; the yeasts were enriched twice with 100 nM biotinylated hCD137-Fc antigens by magnetic bead sorting, and then further enriched twice with biotinylated hCD137 by flow sorting. The enriched yeasts were plated, and monoclones were picked. After amplification and induction of expression, the monoclonal yeasts were analyzed by staining with biotinylated hCD137 or the control antigen hOX40, and the yeast with antigen positive/control yeast negative was regarded as a positive yeast.
(26) The yeast clones confirmed by FACS were subjected to yeast colony PCR and sequencing. The PCR primers were: sequence-F: CGTAGAATCGAGACCGAGGAGA (SEQ ID NO.2); sequence-R: CTGGTGGTGGTGGTTCTGCTAGC (SEQ ID NO.3)); sequencing primers were sequence-R. After sequencing, the results were compared and analyzed using BioEdit software.
(27) The gene of the single-chain antibody scFv obtained above was fused with the above human IgG1-Fc gene, and then double-digested with HindIII and EcoRI (Fermentas) and cloned into the commercial vector pcDNA4/myc-HisA. The cloning and extraction in small amount of the plasmid were carried out according to the standard operation of Molecular Cloning. The extracted plasmid was transiently expressed in HEK 293 cells and purified through a Protein A column.
(28) The hCD137-EGFP cells were resuspended in 0.5% PBS-BSA Buffer, and 2 g of the above purified anti-hCD137 scFv antibody was added, and the relevant control was set at the same time. The negative control was 2 g of hIgG 1 protein. The secondary antibody was anti-hlg-PE. After staining, it was detected by flow cytometry. In this way, antibodies that bind to the hCD137 antigen on cell surface were identified.
(29) After screening and identification, two antibodies with better properties were obtained: C2scFv and C14scFv. As shown in
(30) The amino acid sequence of heavy chain variable region of C2 scFv is:
(31) TABLE-US-00001 (SEQIDNO.4) EVQLVESGGGLVQPGGSLRLSCAASGFTVSDYYMNWIRQAPGKGLEWVSY ISSSASGSTIYYADSVKGRFTISRDNANNSLYLHMDSLRAEDTAIYFCAR VVPAGSGWRWFDPWGQGTLVTVSS
(32) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.5), CDR2 (SEQ ID NO.6), and CDR3 (SEQ ID NO.7), respectively.
(33) The corresponding nucleic acid sequence thereof is:
(34) TABLE-US-00002 (SEQIDNO.8) GAGGTGCAGCTGGTGGAGTCTGGGGGAGGCTTGGTACAGCCTGGAGGGTC CCTGAGACTCTCCTGTGCAGCCTCTGGATTCACCGTCAGTGACTACTACA TGAACTGGATCCGCCAGGCTCCAGGGAAGGGCCTGGAGTGGGTTTCATAC ATTAGTAGTAGTGCTAGTGGTAGTACCATATACTACGCAGACTCTGTGAA GGGCCGATTCACCATCTCCAGGGACAACGCCAACAACTCACTGTATCTGC ACATGGACAGCCTGAGAGCCGAGGACACGGCCATATACTTCTGTGCGAGA GTCGTCCCAGCTGGAAGTGGGTGGAGGTGGTTCGACCCCTGGGGCCAGGG TACCCTGGTCACTGTCTCCTCA
(35) The amino acid sequence of light chain variable region of C2 scFv is:
(36) TABLE-US-00003 (SEQIDNO.9) QSVLIQPPSASGSPGQSVTISCTGISSDVGAYDYVSWYQQHPGKVPKLMI YEVSKRPSGVPDRFSGSKSGDTASLTVSGLQAEDEADYYCSSHAGSNNFY VFGTGTKLTVL
(37) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.10), CDR2 (SEQ ID NO.11), and CDR3 (SEQ ID NO.12), respectively.
(38) Its corresponding nucleic acid sequence is:
(39) TABLE-US-00004 (SEQIDNO.13) CAGTCTGTTCTGATTCAGCCTCCCTCCGCGTCCGGGTCTCCTGGACAGTC AGTCACCATCTCCTGCACTGGAATCAGCAGTGACGTTGGTGCTTATGACT ATGTCTCCTGGTACCAACAGCACCCAGGCAAAGTCCCCAAACTCATGATT TATGAGGTCAGTAAGCGGCCCTCAGGGGTCCCTGATCGCTTCTCTGGCTC CAAGTCTGGCGACACGGCCTCCCTGACCGTCTCTGGGCTCCAGGCTGAGG ATGAGGCTGATTACTACTGCAGCTCACATGCAGGCAGCAACAATTTTTAT GTCTTCGGAACTGGGACCAAGCTGACCGTCCTA
(40) The amino acid sequence of heavy chain variable region of C14 scFv is:
(41) TABLE-US-00005 (SEQIDNO.14) QVQLQQSGPGLVKPSQTLSLTCAISGDSVSSNSAAWNWIRQSPSRGLEW LGRTYYRSKWYNDYAPSVESRITINPDTSKNQFSLQLSSVTPEDTAVYY CARDPPYVLSTFDIWGQGTMVTVSS
(42) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.15), CDR2 (SEQ ID NO.16), and CDR3 (SEQ ID NO.17), respectively.
(43) Its corresponding nucleic acid sequence is:
(44) TABLE-US-00006 (SEQIDNO.18) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGAC CCTCTCACTCACCTGTGCCATCTCCGGGGACAGTGTTTCTAGCAACAGTG CTGCTTGGAACTGGATCAGGCAGTCCCCATCGAGGGGCCTTGAGTGGCTG GGAAGGACATACTACAGGTCCAAGTGGTATAATGATTATGCACCATCTGT GGAAAGTCGAATAACCATCAACCCAGACACATCCAAGAACCAGTTCTCCC TGCAGCTGAGCTCTGTGACTCCCGAGGACACGGCTGTGTACTACTGTGCA AGAGACCCTCCTTATGTGCTCAGTACTTTTGATATCTGGGGCCAAGGGAC AATGGTCACCGTCTCCTCA
(45) The amino acid sequence of light chain variable region of C14 scFv is:
(46) TABLE-US-00007 (SEQIDNO.19) NFMLTQPPSVSESPGKTVTISCTRSSGNIASFYVQWFQQRPGSSPTTVIY EDDQRPSGVPDRFSGSIDRSSNSASLTISGLTTDDEADYYCQSYDTNNVI FGGGTKLTVL
(47) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.21), and CDR3 (SEQ ID NO.22), respectively.
(48) Its corresponding nucleic acid sequence is:
(49) TABLE-US-00008 (SEQIDNO.23) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGAC GGTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATG TGCAGTGGTTTCAACAGCGCCCGGGCAGTTCCCCCACCACTGTGATCTAT GAAGATGACCAAAGACCCTCTGGGGTCCCTGATCGGTTCTCTGGCTCCAT CGACAGATCGTCCAACTCTGCCTCCCTCACCATTTCTGGACTGACGACTG ACGACGAGGCTGACTACTACTGTCAGTCTTATGATACCAACAATGTCATA TTCGGCGGAGGGACCAAGCTGACCGTCCTA
Example 3. Identification of Anti-hCD137 scFv Characteristics
(50) 3.1 Identification of Specific Binding to hCD137 (FACS):
(51) HEK293 cells expressing hCD137-EGFP, hOX40-EGFP, hCD27-EGFP and hGITR-EGFP constructed in Example 1 were resuspended in 0.5% PBS-BSA Buffer and anti-hCD137 C2scFv and C14 scFv protein were added, the negative control was hIgG Fc protein, then the mixture was incubated on ice for 20 min. After washing, secondary antibody anti-hIg-PE (eBioscience) was added and was incubated on ice for 20 min. After washing, the cells were resuspended in 500 L of 0.5% PBS-BSA Buffer and detected by flow cytometry. As shown in
(52) 3.2 Detection on the Capacity of Binding to hCD137 Proteins (ELISA):
(53) hCD137-muFc was diluted to 2 g/mL, 100 L/well with coating buffer (50 mM Na.sub.2CO.sub.3, NaHCO.sub.3 pH 9.6), and then stands overnight at 4 C. After washing, the plates were blocked with 3% BSA-PBS for 1 h at 37 C. C2 scFv and C14 scFv antibodies were respectively diluted from 2000 ng/mL and were diluted 2-fold to a total of 11 concentrations, with the diluent (1% BSA-PBS) as a control, and incubated at 37 C. for 2h. Goat anti-hIgG-HRP (Goat anti-hIgG-HRP-conjugated) was added and incubated at 37 C. for 1 h. The soluble one-component TMB substrate developing solution was added, and the developing was performed in dark at room temperature for 5-10 min. 2N H.sub.2SO.sub.4 50 L/well was added to terminate the color development reaction. The OD.sub.450 nm-650 nm values were read on MD SpectraMax Plus 384 microplate Reader, and SoftMax Pro v5.4 was used for data processing and diagraph analysis, with the results shown in
(54) 3.3 Detection on the Capacity of Binding to hCD137 Proteins (SPR Process):
(55) The binding kinetics of anti-hCD137 C2scFv and C14 scFv antibodies against the recombinant human CD137 were measured by surface plasmon resonance (SPR) process using a BIAcore X100 instrument. Anti-hFc antibody (not cross-identifying mouse Fc) was conjugated on CM5 chip, C2 scFv or C14 scFv was diluted to 5 nM with running buffer and captured as a ligand by the antibody on the chip. CD137-muFc was diluted with running buffer to 1000-31.6 nM, diluted twice to a total of 6 concentrations. The injection time was 180 s, the dissociation time was 1800 s and the regeneration time was 60 s. The running buffer was HBS-EP+, and the regeneration buffer was 10 mM glycine-HCl (pH 2.0). The association rate (K.sub.on) and the dissociation rate (K.sub.off) were calculated using a simple one-to-one Languir binding model (BIAcore Evaluation Software version 3.2). The equilibrium dissociation constant (K.sub.D) was calculated as the ratio of K.sub.off/K.sub.on.
(56) The measured binding affinities of anti-hCD137 antibodies were seen in Table 1.
(57) TABLE-US-00009 TABLE 1 Detection of binding kinetics between anti-hCD137 antibody and hCD137 Name K.sub.on (1/Ms) K.sub.off (1/s) K.sub.D (M) C2ScFv 1.103E+4 1.281E4 1.161E8 C14 ScFv 1.117E+4 2.634E4 2.380E8
Example 4. Determination on the Activities of Anti-CD137 C2 scFv and C14 scFv Agonists
(58) Peripheral blood mononuclear cells (PBMCs) were isolated from peripheral blood concentrated leukocytes of healthy donors by the density gradient centrifugation using human lymphocyte separation fluid (Tianjin Hao Yang) and seeded into RPMI complete medium. 96-well plates were pre-coated with 50 L of 1 g/mL anti-CD3 overnight at 4 C. Experimental groups were coated with 50 L of 2 g/mL C2 scFv or C14 scFv for 2 h at 37 C., and meanwhile, soluble C2 scFv or C14 scFv with a final concentration of 2 g/mL and cross-link (Jackson ImmunoResearch Laboratories: 109-006-008) with a final concentration of 2 g/mL were added. The negative control was RPMI complete medium. The amount of PBMCs was 210.sup.5/well, the cells were cultured for five days and then the supernatant was taken. As shown in
(59) Peripheral blood mononuclear cells (PBMCs) were isolated from peripheral blood concentrated leukocytes of healthy donors (4# and 5#) by the density gradient centrifugation using human lymphocyte separation fluid (Tianjin Hao Yang) and seeded into RPMI complete medium. 96-well plates were pre-coated with 50 L of 1 g/mL anti-CD3 overnight at 4 C. Experimental groups were coated with 50 L of 2 g/mL C14 scFv and cross-link (Jackson ImmunoResearch Laboratories: 109-006-008) with a final concentration of 2 g/mL. The negative control was RPMI complete medium. The amount of PBMCs was 210.sup.5/well, the cells were cultured for five days and then the supernatant was taken. As shown in
Example 5. Antibody In Vitro Affinity Maturation
(60) 5.1 Construction of the Yeast Expression Library with Improved Affinity
(61) The standard PCR reaction was performed using the pcDNA4-CD137-14-Fc plasmid constructed in Embodiment 2 as a template, pcDNA4-F: TCTGGTGGTGGTGGTTCTGCTAGC
(62) (SEQ ID NO.24) and cMyc-BBXhoI: GCCAGATCTCGAGCTATTACAAGTCTTCTTCAGAAATAAGCTTTTGTTCTAGAATTCC G (SEQ ID NO.25) as primers. The resulting PCR products were digested with NheI and BglII (Fermentas) to construct a recombinant plasmid. Next, a random mutation PCR product of scFv was obtained by error prone PCR with reference to the method of Ginger et al. (2006) NatProtocl (2): 755-68. The primers used were ep-F: TAATACGACTCACTATAGGG (SEQ ID NO.26) and ep-R: GGCAGCCCCATAAACACACAGTAT (SEQ ID NO.27). The resulting PCR products were purified by the GeneJET DNA purification Kit from Fermentas and then precipitated in ethanol to a concentration greater than 1 g/L. The remaining operation steps refer to the method of Ginger et al. (2006) Nat Protocl (2): 755-68 to obtain a yeast library with mature affinities by virtue of yeast electrical conversion and in vivo recombination method.
(63) 5.2 Screening of Anti-CD137 C14# scFv of Yeasts with Improved Affinity
(64) The affinity-matured yeast library obtained above was subjected to two rounds of fluorescence-activated cell sorting with 10 nM and 1 nM hCD137-Fc protein, and the resulting yeast products were plated and subjected to monoclonal identification. Using the method of staining with a low concentration of antigen, with the previously obtained wild-type yeast as a control, the yeast monoclones with improved affinity were identified by flow staining, with the results of yeast staining shown in
(65) The yeast clones confirmed by FACS were subjected to yeast colony PCR and sequencing, the method as above. The results of sequence analysis were shown in the following table:
(66) TABLE-US-00010 TABLE 2 Results of sequence analysis of yeast monoclones with improved affinity Name Mutation Site CD137-14-1 Position H5: Q mutated to P; Position L93: T mutated to I; Position L95: N mutated to S CD137-14-2 Position L95: N mutated to K CD137-14-3 Position L50: E mutated to D CD137-14-4 Position H43: R mutated to G; Position H54: K mutated to R; Position L2: F mutated to S; Position L15: P mutated to S CD137-14-10 Position H61: P mutated to S; Position L2: F mutated to S CD137-14-13 Position H57: N mutated to S; Position H65: S mutated to G CD137-14-14 Position H32: N mutated to D; Position L95: N mutated to K
Example 6. scFv-Type Antibody Formatted to IgG-Type Antibody
(67) The amino acid sequence of the human IgG4 constant region was obtained based on the amino acid sequence (P01861) of the constant region of the human immunoglobulin gamma()4 (IgG4) in the Uniprot protein database. The corresponding encoding DNA sequence was designed by using DNAworks online tool to obtain the gene of the human IgG4 constant region. The VH sequence of the C14 heavy chain variable region obtained through screening was spliced with the gene sequence of the human IgG4 constant region, and the spliced genes were synthesized, and double-digested with HindIII and EcoRI (Fermentas) and subcloned into the vetor pcDNA4/myc-HisA, to obtain pcDNA4-C14HC.
(68) The amino acid sequence of the human lambda light chain constant region was obtained based on the amino acid sequence (AOM8Q6) of the constant region of the human immunoglobulin lambda () in the Uniprot protein database. The corresponding encoding DNA sequence was designed by using DNAworks online tool to obtain the gene of the human lambda () light chain constant region. The VL sequence of the C14 light chain variable region obtained through screening was spliced with the gene sequence of the human lambda () light chain constant region, and the spliced genes were synthesized, and double-digested with HindIII and EcoRI (Fermentas) and subcloned into the vetor pcDNA4/myc-HisA, to obtain pcDNA-C14LC.
(69) Plasmid extraction of the heavy and light chain plasmids obtained above was carried out using the plasmid extraction kit (PL14) supplied by AidLab. The recombinant constructed light chain and the heavy chain plasmids were co-transfected into HEK293 cells to carry out the antibody expression, transiently cultured for 5-6 days, and then the culturing supernatant was collected, and purified through a Protein A affinity chromatography method to obtain an anti-hCD137 antibody: C14mAb.
(70) The scFv-type antibody with matured affinity was formatted into an IgG-type antibody according to the same method, and a series of anti-CD137 14# mAb variants were obtained, as shown in the following table.
(71) TABLE-US-00011 Name Sequence Information anti-CD137 14#H54H57 mAb Light chain sequence unchanged; Heavy chain H54 Position: K mutated to R; H57 Position: N mutated to S; H61 Position: P mutated to S anti-CD137 14#H32 mAb Light chain sequence unchanged; Heavy chain H32 Position: N mutated to D anti-CD137 14#L50 mAb Heavy chain sequence unchanged; Light chain L50 Position: E mutated to D anti-CD137 14#L95mAb Heavy chain sequence unchanged; Light chain L95 Position: N mutated to K anti-CD137 14#L93L95mAb Heavy chain sequence unchanged; Light chain L95 Position: N mutated to K; L93 Position: T mutated to I anti-CD137 14#mAb new Heavy chain sequence unchanged; Light chain L95 Position: N mutated to K; L50 Position: E mutated to D; L93 Position: T mutated to I
(72) Their sequences were shown as below:
(73) The amino acid sequence of heavy chain variable region of anti-CD137 14# H54H57 mAb is:
(74) TABLE-US-00012 (SEQIDNO.28)
(75) The amino acids in frame were mutation sites, the amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.15), CDR2 (SEQ ID NO.29), and CDR3 (SEQ ID NO.17), respectively.
(76) The corresponding nucleic acid sequence thereof is:
(77) TABLE-US-00013 (SEQIDNO.30) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGACC CTCTCACTCACCTGTGCCATCTCCGGGGACAGTGTTTCTAGCAACAGTGCT GCTTGGAACTGGATCAGGCAGTCCCCATCGAGGGGCCTTGAGTGGCTGGGA
(78) The amino acid sequence of light chain variable region of anti-CD137 14# H54H57 mAb is:
(79) TABLE-US-00014 (SEQIDNO.19) NFMLTQPPSVSESPGKTVTISCTRSSGNIASFYVQWFQQRPGSSPTTVIY EDDQRPSGVPDRFSGSIDRSSNSASLTISGLTTDDEADYYCQSYDTNNVI FGGGTKLTVL
(80) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.21), and CDR3 (SEQ ID NO.22), respectively.
(81) The corresponding nucleic acid sequence thereof is:
(82) TABLE-US-00015 (SEQIDNO.23) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGAC GGTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATG TGCAGTGGTTTCAACAGCGCCCGGGCAGTTCCCCCACCACTGTGATCTAT GAAGATGACCAAAGACCCTCTGGGGTCCCTGATCGGTTCTCTGGCTCCAT CGACAGATCGTCCAACTCTGCCTCCCTCACCATTTCTGGACTGACGACTG ACGACGAGGCTGACTACTACTGTCAGTCTTATGATACCAACAATGTCATA TTCGGCGGAGGGACCAAGCTGACCGTCCTA
(83) The amino acid sequence of heavy chain variable region of anti-CD137 14# H32 mAb is:
(84) TABLE-US-00016 (SEQIDNO.31)
(85) The amino acids in frame were mutation sites, the amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.32), CDR2 (SEQ ID NO.16), CDR3 (SEQ ID NO.17), respectively.
(86) The corresponding nucleic acid sequence thereof is:
(87) TABLE-US-00017 (SEQIDNO.33) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGACC
(88) The amino acid sequence of anti-CD137 14# H32 mAb light chain variable region is:
(89) TABLE-US-00018 (SEQIDNO.19) NFMLTQPPSVSESPGKTVTISCTRSSGNIASFYVQWFQQRPGSSPTTVIY EDDQRPSGVPDRFSGSIDRSSNSASLTISGLTTDDEADYYCQSYDTNNVI FGGGTKLTVL
(90) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.21), and CDR3 (SEQ ID NO.22), respectively.
(91) The corresponding nucleic acid sequence thereof is:
(92) TABLE-US-00019 (SEQIDNO.23) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGAC GGTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATG TGCAGTGGTTTCAACAGCGCCCGGGCAGTTCCCCCACCACTGTGATCTAT GAAGATGACCAAAGACCCTCTGGGGTCCCTGATCGGTTCTCTGGCTCCAT CGACAGATCGTCCAACTCTGCCTCCCTCACCATTTCTGGACTGACGACTG ACGACGAGGCTGACTACTACTGTCAGTCTTATGATACCAACAATGTCATA TTCGGCGGAGGGACCAAGCTGACCGTCCTA
(93) The amino acid sequence of heavy chain variable region of anti-CD137 14# L50 mAb is:
(94) TABLE-US-00020 (SEQIDNO.14) QVQLQQSGPGLVKPSQTLSLTCAISGDSVSSNSAAWNWIRQSPSRGLEWL GRTYYRSKWYNDYAPSVESRITINPDTSKNQFSLQLSSVTPEDTAVYYCA RDPPYVLSTFDIWGQGTMVTVSS
(95) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.15), CDR2 (SEQ ID NO.16), and CDR3 (SEQ ID NO.17), respectively.
(96) Its corresponding nucleic acid sequence is:
(97) TABLE-US-00021 (SEQIDNO.18) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGAC CCTCTCACTCACCTGTGCCATCTCCGGGGACAGTGTTTCTAGCAACAGTG CTGCTTGGAACTGGATCAGGCAGTCCCCATCGAGGGGCCTTGAGTGGCTG GGAAGGACATACTACAGGTCCAAGTGGTATAATGATTATGCACCATCTGT GGAAAGTCGAATAACCATCAACCCAGACACATCCAAGAACCAGTTCTCCC TGCAGCTGAGCTCTGTGACTCCCGAGGACACGGCTGTGTACTACTGTGCA AGAGACCCTCCTTATGTGCTCAGTACTTTTGATATCTGGGGCCAAGGGAC AATGGTCACCGTCTCCTCA
(98) The amino acid sequence of light chain variable region of anti-CD137 14# L50 mAb is:
(99) TABLE-US-00022 (SEQIDNO.34)
(100) The amino acids in frame were mutation sites, the amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.35), and CDR3 (SEQ ID NO.22), respectively.
(101) The corresponding nucleic acid sequence thereof is:
(102) TABLE-US-00023 (SEQIDNO.36) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGACG GTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATGTG
(103) The amino acid sequence of heavy chain variable region of anti-CD137 14# L95mAb is:
(104) TABLE-US-00024 (SEQIDNO.14) QVQLQQSGPGLVKPSQTLSLTCAISGDSVSSNSAAWNWIRQSPSRGLEWL GRTYYRSKWYNDYAPSVESRITINPDTSKNQFSLQLSSVTPEDTAVYYCA RDPPYVLSTFDIWGQGTMVTVSS
(105) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.15), CDR2 (SEQ ID NO.16), and CDR3 (SEQ ID NO.17), respectively.
(106) The corresponding nucleic acid sequence thereof is:
(107) TABLE-US-00025 (SEQIDNO.18) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGAC CCTCTCACTCACCTGTGCCATCTCGGGGACAGTGTTTCTAGCAACAGTGC TGCTTGGAACTGGATCAGGCAGTCCCCATCGAGGGGCCTTGAGTGGCTGG GAAGGACATACTACAGGTCCAAGTGGTATAATGATTATGCACCATCTGTG GAAAGTCGAATAACCATCAACCCAGACACATCCAAGAACCAGTTCTCCCT GCAGCTGAGCTCTGTGACTCCCGAGGACACGGCTGTGTACTACTGTGCAA GAGACCCTCCTTATGTGCTCAGTACTTTTGATATCTGGGGCCAAGGGACA ATGGTCACCGTCTCCTCA
(108) The amino acid sequence of light chain variable region of anti-CD137 14# L95mAb is:
(109) TABLE-US-00026 (SEQIDNO.37)
(110) The amino acids in frame were mutation sites, the amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.21), and CDR3 (SEQ ID NO.36), respectively.
(111) The corresponding nucleic acid sequence thereof is:
(112) TABLE-US-00027 (SEQIDNO.39) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGACG GTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATGTG CAGTGGTTTCAACAGCGCCCGGGCAGTTCCCCCACCACTGTGATCTATGAA GATGACCAAAGACCCTCTGGGGTCCCTGATCGGTTCTCTGGCTCCATCGAC AGATCGTCCAACTCTGCCTCCCTCACCATTTCTGGACTGACGACTGACGAC
(113) The amino acid sequence of heavy chain variable region of anti-CD137 14# L93L95mAb is:
(114) TABLE-US-00028 (SEQIDNO.14) QVQLQQSGPGLVKPSQTLSLTCAISGDSVSSNSAAWNWIRQSPSRGLEWL GRTYYRSKWYNDYAPSVESRITINPDTSKNQFSLQLSSVTPEDTAVYYCA RDPPYVLSTFDIWGQGTMVTVSS
(115) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.15), CDR2 (SEQ ID NO.16), and CDR3 (SEQ ID NO.17), respectively.
(116) The corresponding nucleic acid sequence thereof is:
(117) TABLE-US-00029 (SEQIDNO.18) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGAC CCTCTCACTCACCTGTGCCATCTCCGGGGACAGTGTTTCTAGCAACAGTG CTGCTTGGAACTGGATCAGGCAGTCCCCATCGAGGGGCCTTGAGTGGCTG GGAAGGACATACTACAGGTCCAAGTGGTATAATGATTATGCACCATCTGT GGAAAGTCGAATAACCATCAACCCAGACACATCCAAGAACCAGTTCTCCC TGCAGCTGAGCTCTGTGACTCCCGAGGACACGGTCTGTGTACTACTGTGC AAGAGACCCTCCTTATGTGCTCAGTACTTTTGATATCTGGGGCCAAGGGA CAATGGTCACCGTCTCCTCA
(118) The amino acid sequence of light chain variable region of anti-CD137 14# L93L95mAb is:
(119) TABLE-US-00030 (SEQIDNO.40)
(120) The amino acids in frame were mutation sites, the amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.21), and CDR3 (SEQ ID NO.41), respectively.
(121) The corresponding nucleic acid sequence thereof is:
(122) TABLE-US-00031 (SEQIDNO.42) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGACG GTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATGTG CAGTGGTTTCAACAGCGCCCGGGCAGTTCCCCCACCACTGTGATCTATGAA GATGACCAAAGACCCTCTGGGGTCCCTGATCGGTTCTCTGGCTCCATCGAC AGATCGTCCAACTCTGCCTCCCTCACCATTTCTGGACTGACGACTGACGAC
(123) The amino acid sequence of heavy chain variable region of anti-CD137 14# mAb new is:
(124) TABLE-US-00032 (SEQIDNO.14) QVQLQQSGPGLVKPSQTLSLTCAISGDSVSSNSAAWNWIRQSPSRGLEW LGRTYYRSKWYNDYAPSVESRITINPDTSKNQFSLQLSSVTPEDTAVYY CARDPPYVLSTFDIWGQGTMVTVSS
(125) The amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.15), CDR2 (SEQ ID NO.16), and CDR3 (SEQ ID NO.17), respectively.
(126) The corresponding nucleic acid sequence thereof is:
(127) TABLE-US-00033 (SEQIDNO.18) CAGGTACAGCTGCAGCAGTCAGGTCCAGGACTGGTGAAGCCCTCGCAGAC CCTCTCACTCACCTGTGCCATCTCCGGGGACAGTGTTTCTAGCAACAGTG CTGCTTGGAACTGGATCAGGCAGTCCCCATCGAGGGGCCTTGAGTGGCTG GGAAGGACATACTACAGGTCCAAGTGGTATAATGATTATGCACCATCTGT GGAAAGTCGAATAACCATCAACCCAGACACATCCAAGAACCAGTTCTCCC TGCAGCTGAGCTCTGTGACTCCCGAGGACACGGCTGTGTACTACTGTGCA AGAGACCCTCCTTATGTGCTCAGTACTTTTGATATCTGGGGCCAAGGGAC AATGGTCACCGTCTCCTCA
(128) The amino acid sequence of light chain variable region of anti-CD137 14# mAb new is:
(129) TABLE-US-00034 (SEQIDNO.43)
(130) The amino acids in frame were mutation sites, the amino acids corresponding to the underlined parts are CDR1 (SEQ ID NO.20), CDR2 (SEQ ID NO.35), and CDR3 (SEQ ID NO.41), respectively.
(131) The corresponding nucleic acid sequence thereof is:
(132) TABLE-US-00035 (SEQIDNO.44) AATTTTATGCTGACTCAGCCCCCCTCTGTGTCGGAGTCCCCGGGGAAGACG GTAACCATCTCCTGCACCCGCAGCAGTGGGAACATTGCCAGCTTCTATGTG
Example 7. Identification of Characteristics of Anti-hCD137 14# mAb and Variants Thereof
(133) 7.1 Identification of Specifically Binding to hCD137 (FACS):
(134) HEK293 cells expressing hCD137-EGFP, hOX40-EGFP, hCD27-EGFP and hGITR-EGFP constructed in Example 1 were resuspended in 0.5% PBS-BSA Buffer and anti-hCD137 C14 mAb protein was added, the negative control was hIgG Fc protein, then the mixture was incubated on ice for 20 min. After washing, a secondary antibody anti-hIg-PE (eBioscience) was added and incubated on ice for 20 min. After washing, the cells were resuspended in 500 L 0.5% PBS-BSA Buffer and detected by flow cytometry. Results were shown in the figure. As shown in
(135) 7.2 Detection on the Capacity of Binding to hCD137 Proteins (ELISA):
(136) hCD137-muFc was diluted to 2 g/mL with coating buffer (50 mM Na.sub.2CO.sub.3, NaHCO.sub.3 pH 9.6), 100 L/well, overnight at 4 C. After washing, the plates were blocked with 3% BSA-PBS for 1 h at 37 C. C14 mAb and variants thereof were respectively diluted from 2000 ng/mL and were diluted 2-fold to a total of 11 concentrations, with the diluent (1% BSA-PBS) as a control, and incubated for 2h at 37 C. Goat anti-hIgG-HRP (Goat anti-hIgG-HRP conjugated) was added and incubated for 1 h at 37 C. The soluble one-component TMB substrate developing solution was added, and the developing was performed in dark at room temperature for 5-10 min. 2N H.sub.2SO.sub.4 50 L/well was added to terminate the color development reaction. The OD.sub.450 nm-650 nm values were read on MD SpectraMax Plus 384 microplate Reader, and SoftMax Pro v5.4 was used for data processing and diagraph analysis, with the results shown in
(137) As shown in
(138) 7.3 Detection on the Capacity of Binding to hCD137 Proteins (SPR):
(139) The binding kinetics of anti-hCD137 antibody against the recombinant human CD137 were measured by surface plasmon resonance (SPR) process using a BIAcore X100 instrument. Anti-hFc antibody (not cross-identifying mouse Fc) was conjugated on CM5 chip, CD137-muFc was diluted to 5 nM with running buffer and captured as a ligand by the antibody on the chip. CD137-muFc was diluted with running buffer to 1000-31.6 nM (C14Mab) or 100-3.16 nM (C14 Mab new), diluted twice to a total of 6 concentrations. The injection time was 180s, the dissociation time was 1800s and the regeneration time was 60s. The running buffer was HBS-EP+, and the regeneration buffer was 10 mM glycine-HCl (pH 2.0). The association rate (K.sub.on) and the dissociation rate (K.sub.off) were calculated using a simple one-to-one one Languir binding model (BIAcore Evaluation Software version 3.2). The equilibrium dissociation constant (KD) was calculated as the ratio of K.sub.off/K.sub.on. The measured binding affinities of anti-hCD137 antibodies were seen in Table 3.
(140) TABLE-US-00036 TABLE 3 Detection of Binding Kinetics between Anti-hCD137 Antibody and hCD137 Name K.sub.on (1/Ms) K.sub.off (1/s) K.sub.D (M) C14 mAb 1.253E+4 1.741E4 2.992E8 C14 mAbnew 3.38E+05 9.07E04 2.68E09
(141) 7.4 Detection on the Capacity of Binding to Rhesus Monkey CD137 Proteins (ELISA):
(142) RhCD137-muFc was diluted to 5 g/mL 100 L/well, with coating buffer (50 mM Na.sub.2CO.sub.3, NaHCO.sub.3 pH 9.6), overnight at 4 C. After washing, the plates were blocked with 3% BSA-PBS for 1 h at 37 C. Anti-hCD137 14# mAbnew antibodies were respectively diluted from 2000 ng/mL and were diluted 3-fold, with the diluent (1% BSA-PBS) as a control, and incubated for 2 h at 37 C. Goat anti-hIgG-HRP conjugated was added and incubated for 1 h at 37 C. The soluble one-component TMB substrate developing solution was added, and the developing was performed in dark at room temperature for 5-10 min. 2N H.sub.2SO.sub.4 50 L/well was added to terminate the color development reaction. The OD.sub.450 nm-650 nm values were read on MD SpectraMax Plus 384 microplate Reader, and SoftMax Pro v5.4 was used for data processing and diagraph analysis, with the results shown in
(143) 7.5 Detection of CD137 Protein Binding in Competition with CD137L (FACS)
(144) It was detected whether anti-CD137 14# mAbnew can block the binding of CD137L and CD137 protein expressed on the cell surface. Taking 510.sup.5 CD137L-EGFP cells constructed in Example 1, to the reaction system were added 10 g/mL CD137-muFc protein and 20 g/mL anti-CD 137 C14# mAbnew antibody, which were incubated on ice for 20 min, washed twice, and then anti-mIg-PE secondary antibody was added to stain and incubated on ice for 20 min, washed twice and then the cells were stored in PBS containing 0.5% BSA, with the addition of CD137-muFc while no addition of antibodies as the control. The staining was detected by a flow cytometer, with results shown in
Example 8. Determination on the Activity of Anti-CD137 C14 mAb Agonist
(145) Peripheral blood mononuclear cells (PBMCs) were isolated from peripheral blood concentrated leukocytes of healthy donors by the density gradient centrifugation using human lymphocyte separation fluid (Tianjin Hao Yang) and seeded into RPMI complete medium. 96-well plates were pre-coated with 50 L of 10 g/mL anti-CD3 and 0.5 g/mL soluble anti-CD28 overnight at 4 C. Experimental groups were coated with 50 L of 2 g/mL C14 ScFv or C14 mAb and cross-link (Jackson ImmunoResearch Laboratories: 109-006-008) with a final concentration of 2 g/mL, the negative control was RPMI complete medium. The amount of PBMCs was 210.sup.5/well, the cells were cultured for five days and then the supernatant was taken. The level of IFN- in the supernatant of PBMC was detected by the IFN- ELISA detection kit (eBioscience) and the results were shown in
(146) Peripheral blood mononuclear cells (PBMCs) were isolated from peripheral blood concentrated leukocytes of healthy donors by the density gradient centrifugation using human lymphocyte separation fluid (Tianjin Hao Yang) and seeded into RPMI complete medium. CD8+ T cells were isolated from PBMC by using the magnetic bead separation kit (Miltenyi Biotec:130-096-533), according to the method in the specification. They were weighed and resuspended in RPMI complete medium, with a concentration of 2 million/mL. The isolated CD8+ T cells were stimulated with 1 g/mL anti-CD3 and 0.2 g/mL anti-CD28 to be activated. Into the experimental groups were added 2 g/mL C14ScFv or C14 mAb and cross-link (Jackson ImmunoResearch Laboratories: 109-006-008) with a final concentration of 2 g/mL, the negative control was RPMI complete medium. The cells were cultured for five days and then the supernatant was taken. The level of IFN- in the supernatant of CD8+ T cells was detected by the IFN- ELISA detection kit (eBioscience) and the results were shown in
Example 9. Inhibition of Tumor Growth by Anti-CD137 Antibody in Mice
(147) The NOD-SCID mouse tumor models implanted with tumor cells PC-3 and human PBMCs were used to evaluate the in vivo efficacy of anti-CD137 antibody. Mice were injected subcutaneously (SC) with PC-35106 (ATCCCRL-1435) and human peripheral blood mononuclear cells 2.510.sup.6 (PBMCs) on day 0 and injected intraperitoneally with 1 mg/kg C14 mAb on day 0 and day 7, PBS was used as the negative control. Tumor formation was observed twice a week and the length diameters and short diameters of the tumors were measured with a vernier caliper. The tumor volume was calculated and the tumor growth curve was plotted. The results were shown in
Example 10. Detection on the Stability of Anti-CD137 14# mAb
(148) 10.1 the Stability of Anti-CD137 14# mAb was Detected Using an Accelerated Stability Test at 45 C.
(149) An accelerated stability test at 45 C. was performed on anti-CD137 14# mAb, the specific experimental method was as follows: the anti-CD137 14# mAb purified with Protein A in one step was dissolved in PBS (pH7.4) and concentrated to 2 mg/ml, 100 g of antibody was placed in a 200 L PCR tube in 45 C. water bath, and sampled on day 0, day 10, day 20 and day 30 for A280 detection and SEC-HPLC analysis, with the results shown in
(150) 10.2 Detection on the Stability of Anti-CD137 14# mAb by Differential Scanning Calorimeter (DSC)
(151) The thermal stability of anti-CD137 14# mAb was detected by DSC method. In order to correctly complete the test by DSC, the scanning results of a single buffer solution and a buffer solution containing protein were collected.
(152) The anti-CD137 14# mAb protein was diluted to 1 mg/mL (PBS buffer). Data was collected under the following conditions: the DSC was set to scan at 10-110 C. at the scanning speed of 100 C./h, and there was equilibrium of 15 minutes before each scanning. The volume of DSC sample chamber was 0.5 mL. After collection of the scanning results of the buffer and the protein, the scanning result of the protein can be subtracted from the scanning result of the buffer. The concentration of protein in the sample was obtained to correct the concentration in each scanning, thus obtained the Tm value of anti-CD137 14# mAb, with the results shown in
(153) It should be appreciated by those skilled in the art that, the detailed description of the present invention has been described herein, but various modifications may be made thereto without departing from the spirit and scope of the invention. Hence, the detailed description and examples of the present invention should not be considered as limiting the scope of the present invention. The present invention is limited only by the claims appended hereto.