Anti-family having sequence similarity 19 member a5 antibody, and method for using the same
Deimmunized anti-FAM19A5 antibodies with specific CDR sequences address the need for reduced immunogenicity and modulate FAM19A5 activity, offering therapeutic benefits for central nervous system injuries and tumors by inhibiting reactive gliosis and promoting neuronal regrowth.
Patent Information
- Application Number
- JP2025132298
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-04-24
- Filing Date
- 2025-08-07
- Publication Date
- 2025-11-05
AI Technical Summary
There is a need for antibodies that can specifically bind to FAM19A5 to modulate its activity and reduce immunogenicity in humans, as existing antibodies may trigger an immune response.
Development of deimmunized anti-FAM19A5 antibodies with specific CDR sequences and reduced immunogenicity, capable of binding to FAM19A5 protein and exhibiting properties such as inhibiting excessive astrocyte proliferation and promoting neuronal regrowth.
The anti-FAM19A5 antibodies effectively reduce immunogenicity, inhibit reactive gliosis, promote axon regrowth, and enhance immune cell infiltration into tumors, thereby providing therapeutic benefits for central nervous system injuries and tumors.
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Figure 2025166089000001_ABST
Abstract
Description
[Technical Field]
[0001] The contents of the sequence listing submitted electronically in an ASCII text file submitted with this application (Filename: 3763_011PC02_SeqListing_ST25.txt; Size: 34,309 bytes; and Creation Date: May 10, 2019) are hereby incorporated by reference in their entirety.
[0002] The present invention provides (e.g., deimmunized) antibodies that specifically bind to a family with sequence similarity 19, member A5 (FAM19A5), compositions comprising the antibodies, and methods of using the antibodies in a subject to prevent or treat disorders or diseases resulting from, for example, central nervous system injury. [Background technology]
[0003] FAM19A5 is a member of the TAFA subfamily of proteins, which consists of five highly homologous small proteins. (Tang TY et al., Genomics 83(4):727-34(2004)) These proteins contain a conserved cysteine residue at a fixed position and are distantly related to macrophage inflammatory protein 1-alpha (MIP-1-alpha), a member of the CC-chemokine family. TAFA proteins are primarily expressed in specific regions of the brain and spinal cord. These proteins are thought to be produced and secreted by adult neural stem cells during neurogenesis.
[0004] FAM19A5 is primarily expressed in the vertebrate brain, and is believed to be important for the development, differentiation, and formation of the intact central nervous system, and may be useful for the prevention or treatment of central nervous system injuries and / or diseases. U.S. Patent Publication No. 2015 / 0118230
[0005] Although inhibiting FAM19A5 may play an important role in treating the central nervous system, there remains a need to develop antibodies that can specifically bind to FAM19A5 and modulate FAM19A5 activity. Summary of the Invention
[0006] The present invention provides antibodies or antigen-binding portions thereof ("anti-FAM19A5 antibodies") that specifically bind to a human family member having sequence similarity 19, member A5 (FAM19A5) protein. In some embodiments, the anti-FAM19A5 antibodies comprise heavy chain CDR1, CDR2, and CDR3, and light chain CDR1, CDR2, and CDR3, wherein the heavy chain CDR1, CDR2, and CDR3 comprise the amino acid sequences set forth in SEQ ID NOs: 5, 6, and 7, respectively, each optionally with one, two, or three mutations; wherein the light chain CDR1, CDR2, and CDR3 comprise the amino acid sequences set forth in SEQ ID NOs: 8, 9, and 10, respectively; at least one of the light chain CDR1, CDR2, and CDR3 comprises one, two, or three mutations; and wherein the antibody has reduced immunogenicity in humans compared to a reference antibody comprising the VH set forth as SEQ ID NO: 11 and the VL set forth as SEQ ID NO: 12. In some embodiments, the heavy chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:7 (GSASYITAATIDA). In some embodiments, the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5 (SYQMG), optionally with one, two, or three mutations. In some embodiments, the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:6 (VINKSGSDTS), optionally with one, two, or three mutations.
[0007] In some embodiments, the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:10 (GNDDYSSDSGYVGV), optionally with 1, 2, or 3 mutations.
[0008] In some embodiments, the light chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:8 (SGGGSSGYGYG) with one, two, or three mutations. In some embodiments, the mutation comprises a substitution of an aliphatic amino acid for glycine at amino acid 4 of SEQ ID NO:8. In certain embodiments, the aliphatic amino acid comprises alanine, valine, leucine, or isoleucine.
[0009] In some embodiments, the light chain CDR2 has one, two, or three mutations in SEQ The amino acid sequence set forth in SEQ ID NO:9 (WNDKRPS) is included. In some embodiments, the mutation comprises a tryptophan substitution with a basic amino acid at amino acid 1 of SEQ ID NO:9. In certain embodiments, the basic amino acid comprises arginine, histidine, or lysine. In some embodiments, the mutation comprises an asparagine substitution with an acidic amino acid at amino acid 2 of SEQ ID NO:9. In some embodiments, the acidic amino acid comprises aspartic acid or glutamic acid. In some embodiments, the mutation comprises a lysine substitution with an acidic amino acid at amino acid 4 of SEQ ID NO:9. In certain embodiments, the acidic amino acid comprises aspartic acid or glutamic acid.
[0010] In some embodiments, the anti-FAM19A5 antibodies disclosed herein comprise heavy chain CDR1, CDR2, and CDR3, and light chain CDR1, CDR2, and CDR3, wherein (i) the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5, and (ii) the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:6. (iii) the heavy chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:7; (iv) the light chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:13; (v) the light chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:14; and (vi) the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:10.
[0011] In some embodiments, the anti-FAM19A5 antibody comprises a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:11; and / or wherein the VL comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:12.
[0012] In some embodiments, an anti-FAM19A5 antibody disclosed herein cross-competes with a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO:11, and the VL comprises the amino acid sequence set forth in SEQ ID NO:12. In certain embodiments, an anti-FAM19A5 antibody cross-competes with a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO:30, and the VL comprises the amino acid sequence set forth in SEQ ID NO:32. In other embodiments, an anti-FAM19A5 antibody cross-competes with a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO:31, and the VL comprises the amino acid sequence set forth in SEQ ID NO:32. In a further embodiment, the anti-FAM19A5 antibodies disclosed herein cross-compete with a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO:31 and the VL comprises the amino acid sequence set forth in SEQ ID NO:32.
[0013] In some embodiments, the anti-FAM19A5 antibody disclosed herein is selected from the group consisting of IgG1, IgG2, IgG3, IgG4, variants thereof, and any combination thereof. In some embodiments, the anti-FAM19A5 antibody is a chimeric antibody, a human antibody, or a humanized antibody.
[0014] In some embodiments, the anti-FAM19A5 antibodies disclosed herein comprise a Fab, a Fab', a F(ab')2, an Fv, or a single-chain Fv (scFv). In some embodiments, the anti-FAM19A5 antibody is an scFv. In certain embodiments, the scFv comprises a VH and a VL, wherein the VH comprises the amino acid sequence set forth in SEQ ID NO: 17, and the VL comprises the amino acid sequence set forth in SEQ ID NO: 18.
[0015] In some embodiments, the anti-FAM19A5 antibodies disclosed herein exhibit any one or more of the following properties: (a) bind to soluble human FAM19A5 with a KD of 10 nM or less as measured by enzyme-linked immunosorbent assay (ELISA); (b) bind to membrane-bound human FAM19A5 with a KD of 10 nM or less as measured by ELISA; (c) reduce, reverse, delay, and / or prevent the onset of reactive gliosis; (d) inhibit the excessive proliferation of reactive astrocytes; (e) bind to neurocan and neu glia; (f) decreasing the expression of chondroitin sulfate proteoglycans, including ron-glial antigen 2 (NG2); (g) increasing the expression of c-fos and pERK in neuronal nuclei; (h) increasing the expression of GAP43 in neurons; (i) promoting axon regrowth; (j) inducing vascular normalization, for example, in tumors; (k) suppressing tumor growth; (l) improving immune cell infiltration into tumors; (m) improving neuronal cell infiltration into tumors; (n) promoting macrophage or microglia phagocytic activity. (o) increasing mitochondrial membrane potential in macrophages or microglia; (p) decreasing myeloid-derived suppressor cell (MDSC) recruitment to tumors; (q) decreasing necrosis and edema in tumors; (r) decreasing tumor tissue permeability; and (s) increasing blood flow in tumors.
[0016] The present invention also provides nucleic acids encoding the anti-FAM19A5 antibodies disclosed herein, vectors containing the nucleic acids, cells containing the vectors, and immunoconjugates comprising the anti-FAM19A5 antibodies disclosed herein. Also disclosed herein are compositions and carriers comprising the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates disclosed herein. The present invention also provides kits and instructions for use comprising the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates of the invention disclosed herein.
[0017] The present invention also provides a method for producing an antibody that specifically binds to human FAM19A5 protein, comprising culturing the cells disclosed herein under appropriate conditions and isolating the antibody.
[0018] The present invention further provides methods of treating a disease or condition in a subject in need thereof, comprising administering an anti-FAM19A5 antibody, nucleic acid, vector, cell, or immunoconjugate disclosed herein. In some embodiments, the disease or condition comprises a tumor, fibrosis, glaucoma, mood disorder, neurodegenerative disease (e.g., Alzheimer's disease), stroke, or neuropathic pain. In certain embodiments, the disease or condition is a tumor.
[0019] In some embodiments, the tumor comprises melanoma, pancreatic cancer, glioma, breast cancer, lymphoma, lung cancer, kidney cancer, prostate cancer, fibrosarcoma, colon adenocarcinoma, liver cancer, or ovarian cancer. In certain embodiments, the glioma is glioblastoma multiforme (GBM).
[0020] In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates disclosed herein induce vascular normalization. In certain embodiments, vascular normalization is accompanied by changes in vascular properties, including increased connectivity, increased wall thickness, decreased vessel diameter, more regular vascular orientation and distribution pattern, increased vessel number, decreased leakage and permeability, increased pericyte coverage and proximity to vessels, increased oxygenation, or a combination thereof.
[0021] In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells or immunoconjugates herein inhibit tumor growth.
[0022] In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates disclosed herein enhance immune cell infiltration into tumors. In certain embodiments, the immune cells comprise macrophages, dendritic cells, T lymphocytes, B lymphocytes, natural killer (NK) cells, or a combination thereof. In some embodiments, the immune cells further exhibit hypertrophy. In some embodiments, the enhanced immune cell infiltration into tumors is accompanied by increased infiltration of neuronal cells into the tumor. In certain embodiments, the neuronal cells comprise astrocytes, glial cells, or a combination thereof.
[0023] In some embodiments, the anti-FAM19A5 antibody, nucleic acid, vector, cell or immunoconjugate enhances phagocytosis of macrophages or microglial cells, hi some embodiments, the anti-FAM19A5 antibody, nucleic acid, vector, cell or immunoconjugate increases the mitochondrial membrane potential of macrophages or microglial cells.
[0024] In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates disclosed herein reduce the recruitment of myeloid-derived suppressor cells (MDSCs) to tumors. In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates reduce tumor necrosis and edema. In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates reduce tumor tissue permeability. In some embodiments, the anti-FAM19A5 antibodies, nucleic acids, vectors, cells, or immunoconjugates increase blood flow rate in tumors.
[0025] In some embodiments, the method of treating a disease or disorder further comprises administering an additional therapeutic agent, hi certain embodiments, the method of treatment comprises chemotherapy, immunotherapy, radiation therapy, or a combination thereof. [Brief explanation of the drawings]
[0026] [Figure 1A]Figures 1A and 1B provide sequence alignments of the heavy chain variable region (Figure 1A) and light chain variable region (Figure 1B) of the 1-65 antibody to the following deimmunized 1-65 antibodies: (i) SS01-13; (ii) SS01-13-s5; and (iii) S5-SG (also referred to herein as S5-2.GKNG antibody or 1-65-S53G antibody). The heavy and light chain CDRs and FRs are labeled in Figures 1A and 1B. [Figure 1B] Figures 1A and 1B provide sequence alignments of the heavy chain variable region (Figure 1A) and light chain variable region (Figure 1B) of the 1-65 antibody to the following deimmunized 1-65 antibodies: (i) SS01-13; (ii) SS01-13-s5; and (iii) S5-SG (also referred to herein as S5-2.GKNG antibody or 1-65-S53G antibody). The heavy and light chain CDRs and FRs are labeled in Figures 1A and 1B. [Figure 2]Figure 2 identifies potential immunogenic sites in the light chain variable region (VL) (top three rows) and heavy chain variable region (VH) (bottom three rows) of the 1-65 antibody, where VL corresponds to SEQ ID NO:12 and VH corresponds to SEQ ID NO:11. The sequences for the human germlines used for the framework regions of the 1-65 antibody are also presented: VL = immunoglobulin lambda variable 3-25 (IGLV3-25*02) and immunoglobulin lambda binding 2 (IGLJ2*01); VH = immunoglobulin heavy chain variable 3-23 (IGHV3-23*02) and immunoglobulin heavy chain binding 1 (IGHJ1*01). The human germlines used were the most homologous human germlines to the 1-65 clone (IgBLAST, NCBI). Promiscuous MHC class II-binding peptides with high and intermediate immunogenic potential, as determined by ITOPE™ analysis, are presented. Specifically, MHC II-binding peptides with high immunogenic potential are as follows: (i) peptide #2: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (ii) peptide #8: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (iii) peptide #9: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (iv) peptide #10: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (v) peptide #11: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (vi) peptide #12: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (vi) peptide #13: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (vi) peptide #14: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (v) peptide #15: residues 46-54 of SEQ ID NO:12 (IYWNDKRPS), (vi) peptide #16: residues 46-54 of SEQ ID NO:12 (iii) Peptide #10: residues 79-87 of SEQ ID NO:11 (VRLQLNNLR); and (iv) Peptide #13: residues 103-111 of SEQ ID NO:11 (YITAATIDA).MHCII-binding peptides with suitable immunogenic potential are as follows: (i) peptide #1: residues 16-24 of SEQ ID NO:12 (VKITCSGGG); (ii) peptide #3: residues 71-79 of SEQ ID NO:12 (LTITGVQAE); (iii) peptide #4: residues 18-26 of SEQ ID NO:11 (LSLVCKASG); (iv) peptide #5: residues 20-28 of SEQ ID NO:11 (LVCKASGFT); (v) peptide #6: residues 32-40 of SEQ ID NO:11 (YQMGWVRQA); (vi) peptide #7: residues 45-53 of SEQ ID NO:11 (LEWVGVINK); (vii) peptide #9: residues 64-72 of SEQ ID NO:11 (VKGRATISR); (viii) peptide #11: residues 18-26 of SEQ ID NO:11 (LSLVCKASG); (iv) peptide #5: residues 20-28 of SEQ ID NO:11 (LVCKASGFT); (v) peptide #6: residues 32-40 of SEQ ID NO:11 (YQMGWVRQA); (vii) peptide #7: residues 45-53 of SEQ ID NO:11 (LEWVGVINK); (vii) peptide #9: residues 64-72 of SEQ ID NO:11 (VKGRATISR); (viii) peptide #11: residues 18-26 of SEQ ID NO:11 (LSLVCKASG ... (ix) Peptide #12: residues 81-87 of SEQ ID NO:11 (LQLNNLR); (ix) Peptide #12: residues 86-94 of SEQ ID NO:11 (LRAEDTGTY). Homologous peptides from the T cell epitope database are as follows: peptide #5, peptide #6, peptide #9, and peptide #12. A total of 13 binding peptides were identified, designated peptides #1 to #13. For each binding peptide, "P1" indicates the first anchor position. [Figure 3A]Figures 3A and 3B provide binding analysis of the deimmunized 1-65 antibody. To deimmunize the antibody, non-identical amino acid residues in the MHC class II binding region of clone 1-65 were replaced with the corresponding amino acid in the human germline sequence. Figure 3A provides a sequence comparison of the light chain variable region (VL) and heavy chain variable region (VH) of: (i) normal 1-65 antibody ("clone 1-65"), (ii) fully deimmunized 1-65 antibody ("fully deimmunized clone 1-65"), and (iii) two amino acids (residue 23 (FR1 region) and residue 54 (HCDR2 region) and VH (SEQ ID NO: 1). The "deimmunized clone 3-2" antibody is also referred to herein as the "SS01-13-s5" antibody (see, e.g., Figures 1A and 1B). Amino acid residues with high and intermediate immunogenic potential, as determined by ITOPE™ analysis, are boxed and labeled "1" and "2," respectively. Figure 3B shows the antibody responses to the FAM19A5 protein measured by ELISA for (i) normal 1-65 antibody, (ii) fully deimmunized 1-65 antibody, and (iii) heavy chain CDR2 ("deimmunized clone-1-65") except for one amino acid. (iii) Binding comparison of a single amino acid deimmunized ("deimmunized clone-1-65") heavy chain CDR2 antibody to the FAM19A5 protein, as measured by ELISA. Each single-chain variable fragment (scFv) displaying phage was added to wells of a microtiter plate coated with FAM19A5 (black squares) or anti-HA antibody (□). Background signal was measured in control wells coated with BSA. Wells were probed with HRP-conjugated anti-M13 antibody. Absorbance at 405 nm was measured. Results are presented as the mean ± SD from four experiments. [Figure 3B]Figures 3A and 3B provide binding analysis of the deimmunized 1-65 antibody. To deimmunize the antibody, non-identical amino acid residues in the MHC class II binding region of clone 1-65 were replaced with the corresponding amino acid in the human germline sequence. Figure 3A provides a sequence comparison of the light chain variable region (VL) and heavy chain variable region (VH) of: (i) normal 1-65 antibody ("clone 1-65"), (ii) fully deimmunized 1-65 antibody ("fully deimmunized clone 1-65"), and (iii) two amino acids (residue 23 (FR1 region) and residue 54 (HCDR2 region) and VH (SEQ ID NO: 1). The "deimmunized clone 3-2" antibody is also referred to herein as the "SS01-13-s5" antibody (see, e.g., Figures 1A and 1B). Amino acid residues with high and intermediate immunogenic potential, as determined by ITOPE™ analysis, are boxed and labeled "1" and "2," respectively. Figure 3B shows the antibody responses to the FAM19A5 protein measured by ELISA for (i) normal 1-65 antibody, (ii) fully deimmunized 1-65 antibody, and (iii) heavy chain CDR2 ("deimmunized clone-1-65") except for one amino acid. (iii) Binding comparison of a single amino acid deimmunized ("deimmunized clone-1-65") heavy chain CDR2 antibody to the FAM19A5 protein, as measured by ELISA. Each single-chain variable fragment (scFv) displaying phage was added to wells of a microtiter plate coated with FAM19A5 (black squares) or anti-HA antibody (□). Background signal was measured in control wells coated with BSA. Wells were probed with HRP-conjugated anti-M13 antibody. Absorbance at 405 nm was measured. Results are presented as the mean ± SD from four experiments. [Figure 4A]Figures 4A, 4B, 4C, and 4D provide analyses of two different deimmunized 1-65 antibodies: (i) "deimmunized clone 1-65," the same deimmunized antibody shown in Figures 3A and 3B; and (ii) "deimmunized clone S5-SG" ("S5-SG"), the same as "deimmunized clone 1-65" except modified to remove a potential N-glycosylation site in HCDR2 (S to G at amino acid 5 of HCDR2 (i.e., residue 54 of SEQ ID NO:11), identified with an "*"). Figures 4A and 4B show the size and expression levels of the antibodies as determined using SDS-PAGE. In Figure 4A, lanes "1" and "2" correspond to antibodies SS01-13-S5 and S5-SG, respectively. Within lanes "1" and "2," "A" and "B" correspond to before and after centrifugation, respectively. In Figure 4B, the left panel shows reducing SDS-PAGE, and the right panel shows non-reducing SDS-PAGE. Figure 4C provides a sequence comparison of the antibody light chain variable region (VL) and heavy chain variable region (VH). Figure 4D shows a comparison of binding of (i) normal 1-65 antibody ("clone 1-65"), (ii) deimmunized 1-65 antibody (also referred to herein as SS01-13-S5 antibody), and (iii) deimmunized clone S5-SG antibody to FAM19A5 protein, as measured by ELISA. Each single-chain variable fragment (scFv) representing a phage was added to wells of a microtiter plate coated with FAM19A5 (black squares) or anti-HA antibody (□). Background signal was measured in control wells coated with BSA. Wells were probed with HRP-conjugated anti-M13 antibody. Absorbance was measured at 405 nm. Results are presented as the mean ± SD from four experiments. [Figure 4B]Figures 4A, 4B, 4C, and 4D provide analyses of two different deimmunized 1-65 antibodies: (i) "deimmunized clone 1-65," the same deimmunized antibody shown in Figures 3A and 3B; and (ii) "deimmunized clone S5-SG" ("S5-SG"), the same as "deimmunized clone 1-65" except modified to remove a potential N-glycosylation site in HCDR2 (S to G at amino acid 5 of HCDR2 (i.e., residue 54 of SEQ ID NO:11), identified with an "*"). Figures 4A and 4B show the size and expression levels of the antibodies as determined using SDS-PAGE. In Figure 4A, lanes "1" and "2" correspond to antibodies SS01-13-S5 and S5-SG, respectively. Within lanes "1" and "2," "A" and "B" correspond to before and after centrifugation, respectively. In Figure 4B, the left panel shows reducing SDS-PAGE, and the right panel shows non-reducing SDS-PAGE. Figure 4C provides a sequence comparison of the antibody light chain variable region (VL) and heavy chain variable region (VH). Figure 4D shows a comparison of binding of (i) normal 1-65 antibody ("clone 1-65"), (ii) deimmunized 1-65 antibody (also referred to herein as SS01-13-S5 antibody), and (iii) deimmunized clone S5-SG antibody to FAM19A5 protein, as measured by ELISA. Each single-chain variable fragment (scFv) representing a phage was added to wells of a microtiter plate coated with FAM19A5 (black squares) or anti-HA antibody (□). Background signal was measured in control wells coated with BSA. Wells were probed with HRP-conjugated anti-M13 antibody. Absorbance was measured at 405 nm. Results are presented as the mean ± SD from four experiments. [Figure 4C]Figures 4A, 4B, 4C, and 4D provide analyses of two different deimmunized 1-65 antibodies: (i) "deimmunized clone 1-65," the same deimmunized antibody shown in Figures 3A and 3B; and (ii) "deimmunized clone S5-SG" ("S5-SG"), the same as "deimmunized clone 1-65" except modified to remove a potential N-glycosylation site in HCDR2 (S to G at amino acid 5 of HCDR2 (i.e., residue 54 of SEQ ID NO:11), identified with an "*"). Figures 4A and 4B show the size and expression levels of the antibodies as determined using SDS-PAGE. In Figure 4A, lanes "1" and "2" correspond to antibodies SS01-13-S5 and S5-SG, respectively. Within lanes "1" and "2," "A" and "B" correspond to before and after centrifugation, respectively. In Figure 4B, the left panel shows reducing SDS-PAGE, and the right panel shows non-reducing SDS-PAGE. Figure 4C provides a sequence comparison of the antibody light chain variable region (VL) and heavy chain variable region (VH). Figure 4D shows a comparison of binding of (i) normal 1-65 antibody ("clone 1-65"), (ii) deimmunized 1-65 antibody (also referred to herein as SS01-13-S5 antibody), and (iii) deimmunized clone S5-SG antibody to FAM19A5 protein, as measured by ELISA. Each single-chain variable fragment (scFv) representing a phage was added to wells of a microtiter plate coated with FAM19A5 (black squares) or anti-HA antibody (□). Background signal was measured in control wells coated with BSA. Wells were probed with HRP-conjugated anti-M13 antibody. Absorbance was measured at 405 nm. Results are presented as the mean ± SD from four experiments. [Figure 4D]Figures 4A, 4B, 4C, and 4D provide analyses of two different deimmunized 1-65 antibodies: (i) "deimmunized clone 1-65," the same deimmunized antibody shown in Figures 3A and 3B; and (ii) "deimmunized clone S5-SG" ("S5-SG"), the same as "deimmunized clone 1-65" except modified to remove a potential N-glycosylation site in HCDR2 (S to G at amino acid 5 of HCDR2 (i.e., residue 54 of SEQ ID NO:11), identified with an "*"). Figures 4A and 4B show the size and expression levels of the antibodies as determined using SDS-PAGE. In Figure 4A, lanes "1" and "2" correspond to antibodies SS01-13-S5 and S5-SG, respectively. Within lanes "1" and "2," "A" and "B" correspond to before and after centrifugation, respectively. In Figure 4B, the left panel shows reducing SDS-PAGE, and the right panel shows non-reducing SDS-PAGE. Figure 4C provides a sequence comparison of the antibody light chain variable region (VL) and heavy chain variable region (VH). Figure 4D shows a comparison of binding of (i) normal 1-65 antibody ("clone 1-65"), (ii) deimmunized 1-65 antibody (also referred to herein as SS01-13-S5 antibody), and (iii) deimmunized clone S5-SG antibody to FAM19A5 protein, as measured by ELISA. Each single-chain variable fragment (scFv) representing a phage was added to wells of a microtiter plate coated with FAM19A5 (black squares) or anti-HA antibody (□). Background signal was measured in control wells coated with BSA. Wells were probed with HRP-conjugated anti-M13 antibody. Absorbance was measured at 405 nm. Results are presented as the mean ± SD from four experiments. [Figure 5A] Figures 5A, 5B, and 5C provide SPR test results for the binding of antibodies 1-65 (Figure 5A), SS01-13-S5 (Figure 5B), and S5-SG (Figure 5C) to the FAM19A5 protein. In each of Figures 5A to 5C, the sensorgram is provided in the upper panel, and the quantitative values of the binding affinity of the antibodies (k, k, K, and R) are provided in the table below. [Figure 5B]Figures 5A, 5B, and 5C provide SPR test results for the binding of antibodies 1-65 (Figure 5A), SS01-13-S5 (Figure 5B), and S5-SG (Figure 5C) to the FAM19A5 protein. In each of Figures 5A to 5C, the sensorgram is provided in the upper panel, and the quantitative values of the binding affinity of the antibodies (k, k, K, and R) are provided in the table below. [Figure 5C] Figures 5A, 5B, and 5C provide SPR test results for the binding of antibodies 1-65 (Figure 5A), SS01-13-S5 (Figure 5B), and S5-SG (Figure 5C) to the FAM19A5 protein. In each of Figures 5A to 5C, the sensorgram is provided in the upper panel, and the quantitative values of the binding affinity of the antibodies (k, k, K, and R) are provided in the table below. [Figure 6A] Figures 6A, 6B, 6C, and 6D provide ELISA results for binding of the 1-65, SS01-13-S5, and S5-SG antibodies to the FAM19A5 protein. Figures 6A, 6B, and 6C are bar graphs showing results for antibodies 1-65, SS01-13-S5, and S5-SG at various antibody concentrations, respectively. Figure 6D provides a table containing EC50 values for the antibodies. [Figure 6B] Figures 6A, 6B, 6C, and 6D provide ELISA results for binding of the 1-65, SS01-13-S5, and S5-SG antibodies to the FAM19A5 protein. Figures 6A, 6B, and 6C are bar graphs showing results for antibodies 1-65, SS01-13-S5, and S5-SG at various antibody concentrations, respectively. Figure 6D provides a table containing EC50 values for the antibodies. [Figure 6C] Figures 6A, 6B, 6C, and 6D provide ELISA results for binding of the 1-65, SS01-13-S5, and S5-SG antibodies to the FAM19A5 protein. Figures 6A, 6B, and 6C are bar graphs showing results for antibodies 1-65, SS01-13-S5, and S5-SG at various antibody concentrations, respectively. Figure 6D provides a table containing EC50 values for the antibodies. [Figure 6D]Figures 6A, 6B, 6C, and 6D provide ELISA results for binding of the 1-65, SS01-13-S5, and S5-SG antibodies to the FAM19A5 protein. Figures 6A, 6B, and 6C are bar graphs showing results for antibodies 1-65, SS01-13-S5, and S5-SG at various antibody concentrations, respectively. Figure 6D provides a table containing EC50 values for the antibodies. [Figure 7A] Figures 7A, 7B, and 7C provide a comparison of phagocytic uptake of PHRODO™ Green E. coli BioParticles by BV2 cells after treatment. BV2 cells were treated with either (i) PBS, (ii) human FAM19A5-Fc protein alone (0 μg / mL group), or (iii) human FAM19A5-Fc protein combined with various concentrations of 1-65 (Figure 7A), SS01-13-S5 (Figure 7B), or S5-SG (Figure 7C) antibodies (3.125 μg / mL, 6.25 μg / mL, 12.5 μg / mL, or 25 μg / mL). Data are presented as mean ± SD. [Figure 7B] Figures 7A, 7B, and 7C provide a comparison of phagocytic uptake of PHRODO™ Green E. coli BioParticles by BV2 cells after treatment. BV2 cells were treated with either (i) PBS, (ii) human FAM19A5-Fc protein alone (0 μg / mL group), or (iii) human FAM19A5-Fc protein combined with various concentrations of 1-65 (Figure 7A), SS01-13-S5 (Figure 7B), or S5-SG (Figure 7C) antibodies (3.125 μg / mL, 6.25 μg / mL, 12.5 μg / mL, or 25 μg / mL). Data are presented as mean ± SD. [Figure 7C]Figures 7A, 7B, and 7C provide a comparison of phagocytic uptake of PHRODO™ Green E. coli BioParticles by BV2 cells after treatment. BV2 cells were treated with either (i) PBS, (ii) human FAM19A5-Fc protein alone (0 μg / mL group), or (iii) human FAM19A5-Fc protein combined with various concentrations of 1-65 (Figure 7A), SS01-13-S5 (Figure 7B), or S5-SG (Figure 7C) antibodies (3.125 μg / mL, 6.25 μg / mL, 12.5 μg / mL, or 25 μg / mL). Data are presented as mean ± SD. DETAILED DESCRIPTION OF THE INVENTION
[0027] Disclosed herein is an isolated monoclonal antibody, or antigen-binding portion thereof ("anti-FAM19A5 antibody"), that specifically binds to a human family member with sequence similarity 19, member A5 (FAM19A5) protein, and exhibits one or more properties disclosed herein. Specifically, the anti-FAM19A5 antibody has been deimmunized to reduce immunogenicity in human subjects.
[0028] To facilitate understanding of the disclosure set forth herein, a number of terms and phrases are defined. Additional definitions are provided throughout the detailed description.
[0029] I. Definition Throughout this specification, the term "single" means one or more. For example, "an antibody" is understood to refer to one or more antibodies. Thus, the terms "one or more" and "at least one" can be used interchangeably herein.
[0030] Also, "and / or" should be construed as specifically disclosing each of the two specified features or components either together with the other or alone. Thus, "A and / or B" is intended to include "A and B," "A or B," "A" (alone), and "B" (alone). Also, "A, B and / or C" is intended to include the following embodiments, respectively: A, B and C; A, B or C; A or C; A or B; B or C; A and C; A and B; B and C; A (alone); B (alone); and C (alone).
[0031] When an embodiment is described as "comprising," it is understood that other similar embodiments described as "consisting of" and / or "consisting essentially of" are also provided.
[0032] Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art of the present invention. For example, references such as "The Concise Dictionary of Biomedicine and Molecular Biology, Juo, Pei-Show, 2nd ed., 2002, CRC Press; The Dictionary of Cell and Molecular Biology, 3rd ed., 1999, Academic Press; and the Oxford Dictionary of Biochemistry and Molecular Biology, Revised, 2000, Oxford University Press) provide those skilled in the art with the common dictionary meanings for most of the terms used herein.
[0033] Units, prefixes, and symbols are denoted in the form accepted by the Systeme International de Unites (SI). Numerical ranges are inclusive of the numbers limiting that range. Unless otherwise specified, amino acid sequences are written from left to right in amino to carboxy orientation. The headings disclosed are not limitations on the various aspects of the invention, which may be incorporated by reference to the specification as a whole. Accordingly, the terms defined below are described in more detail by reference to the specification in its entirety.
[0034] As used herein, the term "about" means approximately, roughly, around, or within the vicinity. When the term "about" is used in conjunction with a numerical range, it modifies that range by extending the boundaries above and below the stated numerical values. In general, the term "about" can modify a numerical value above and below the stated value, for example, by up to 10 percent above or below (higher or lower).
[0035] The term "family with sequence similarity 19, member A5" or "FAM19A5" refers to a protein that belongs to the TAFA family of five highly homologous proteins (also known as the "FAM19 family") and is expressed predominantly in the brain and spinal cord. FAM19A5 is also known as TAFA5 or chemokine-like protein TAFA-5.
[0036] In humans, the gene encoding FAM19A5 is located on chromosome 22. There are multiple human FAM19A5 (UniProt: Q7Z5A7) isotypes, which are predicted to be generated by alternative splicing: isotype 1 (UniProt: Q7Z5A7-1), which consists of 132 amino acids; isotype 2 (UniProt: Q7Z5A7-2), which consists of 125 amino acids; and isotype 3 (UniProt: Q7Z5A7-3), which consists of 53 amino acids. Human FAM19A5 protein is predicted to exist in membrane-bound and soluble (secreted) forms. Isotype 1 is predicted to be a membrane protein with a single membrane domain. Isotype 2, reported by Tang TY et al., Genomics 83(4):727-34 (2004), is a secreted (soluble) protein and contains a signal peptide at amino acid positions 1-25. Isotype 1 is predicted to be a membrane protein. The following are the amino acid sequences of the three known human FAM19A5 isotypes:
[0037] (I) Isotype 1 (UniProt: Q7Z5A7-1, hard membrane protein): This isotype was selected as the standard sequence. MAPSPRTGSR QDATALPSMS STFWAFMILA SLLIAYCSQL AAGTCEIVTL DRDSSQPRRT IARQTARCAC RKGQIAGTTR ARPACVDARI IKTKQWCDML PCLEGEGCDL LINRSGWTCT QPGGRIKTTT VS(SEQ ID NO:1) (II) Isotype 2 (UniProt: Q7Z5A7-2, soluble protein): MQLLKALWAL AGAALCCFLV LVIHAQFLKE GQLAAGTCEI VTLDRDSSQP RRTIARQTAR CACRKGQIAG TTRARPACVD ARIIKTKQWC DMLPCLEGEG CDLLINRSGW TCTQPGGRIK TTTVS (SEQ ID NO: 2) (III) Isotype 3 (UniProt: Q7Z5A7-3): MYHHREWPAR IIKTKQWCDM LPCLEGEGCD LLINRSGWTC TQPGGRIKTT TVS(SEQ ID NO:3) The term "FAM19A5" includes any variant or isotype of FAM19A5 that is naturally expressed by cells. Thus, the antibodies disclosed herein may cross-react with different isotypes of the same species (e.g., each isotype of human FAM19A5) or may cross-react with FAM19A5 of species other than human (e.g., murine FAM19A5). Alternatively, the antibody may be specific for human FAM19A5 and may not show cross-reactivity with other species. FAM19A5 or any variants and isotypes thereof may be isolated from cells or tissues that naturally express them or produced recombinantly. A polynucleotide encoding human FAM19A5 has GenBank accession number BC039396 and has the following sequence:
[0038] [Table 1]
[0039] The term "antagonist against FAM19A5 protein" refers to any antagonist that suppresses the expression of FAM19A5 protein. Such antagonists may be peptides, nucleic acids, or chemical compounds. More specifically, antagonists may be antisense oligonucleotides, siRNAs, shRNAs, miRNAs, dsRNAs, aptamers, FAM19A5-targeting PNAs (peptide nucleic acids), or vectors containing these. In some embodiments, the antagonist may be an antibody that specifically binds to FAM19A5 protein, or an antigen-binding portion thereof.
[0040] The terms "antibody" and "antibodies" are terms of the art, can be used interchangeably herein, and refer to a molecule having an antigen-binding site that specifically binds to an antigen. As used herein, the terms include whole antibodies and any antigen-binding fragment (i.e., "antigen-binding portion") or single chains thereof. In some embodiments, "antibody" refers to a glycoprotein comprising at least two heavy (H) chains and two light (L) chains interconnected by disulfide bonds, or an antigen-binding portion thereof. In other embodiments, "antibody" refers to a single-chain antibody comprising a single variable domain, e.g., a VHH domain. Each heavy chain consists of a heavy chain variable region (abbreviated as VH) and a heavy chain constant region. In certain naturally occurring antibodies, the heavy chain constant region consists of three domains, CH1, CH2, and CH3. In certain naturally occurring antibodies, each light chain consists of a light chain variable region (abbreviated as VL) and a light chain constant region. The light chain constant region consists of one domain, CL.
[0041] The VH and VL regions can be further subdivided into regions of hypervariability called complementarity-determining regions (CDRs), interspersed with more conserved regions called framework regions (FRs). Each VH and VL consists of three CDRs and four FRs, arranged from the amino terminus to the carboxy terminus in the order FR1, CDR1, FR2, CDR2, FR3, CDR3, and FR4. The variable regions of the heavy and light chains contain binding domains that interact with antigens. The constant regions of antibodies can mediate the binding of immunoglobulins to host tissues or factors, including various cells of the immune system (e.g., effector cells) and the first component (C1q) of the classical complement system.
[0042] The term "Kabat numbering" and similar terms are recognized in the art and refer to a system for numbering amino acid residues in the heavy and light chain variable regions of an antibody, or antigen-binding portion thereof. In certain embodiments, the CDRs of an antibody may be determined by the Kabat numbering system (see, e.g., Kabat EA & Wu TT (1971) Ann NY Acad Sci 190:382-391 and Kabat EA et al., (1991) Sequences of Proteins of Immunological Interest, Fifth Edition, US Department of Health and Human Services, NIH Publication No. 91-3242). Using the Kabat numbering system, the CDRs within an antibody heavy chain molecule are typically located at amino acid positions 31-35 (which may optionally include one or two additional amino acids beyond 35; referred to as 35A and 35B in the Kabat numbering system) (CDR1), amino acid positions 50-65 (CDR2), and amino acid positions 95-102 (CDR3). Using the Kabat numbering system, the CDRs within an antibody light chain molecule are typically located at amino acid positions 24-34 (CDR1), amino acid positions 50-56 (CDR2), and amino acid positions 89-97 (CDR3). In certain embodiments, the CDRs of the antibodies disclosed herein are determined according to the Kabat numbering system.
[0043] The terms "Kabat amino acid position numbering," "Kabat position," and variations thereof refer to the numbering system used for the heavy chain variable domain or light chain variable domain of an antibody edited in the literature (Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed. Public Health Service, National Institutes of Health, Bethesda, Md. (1991)). Using this numbering system, the actual linear amino acid sequence may contain fewer or additional amino acids, corresponding to a shortening of, or insertion into, the forward half or CDR of the variable domain. For example, a heavy chain variable domain may include a single amino acid insertion after residue 52 of H2 (residue 52a according to Kabat) and residues inserted after heavy chain forward half residue 82 (residues 82a, 82b, and 82c, etc., according to Kabat) (see Table 1B).
[0044] [Table 2]
[0045] Kabat numbering of residues can be determined for a given antibody by aligning regions of homology between the antibody sequence and the "standard" Kabat numbered sequence. Chothia refers instead to the location of the structural loops (Chothia and Lesk, J. Mol. Biol. 196:901-917 (1987)). The ends of the Chothia CDR-H1 loop, when numbered using the Kabat numbering convention, vary between H32 and H34 depending on the length of the loop (this is because the Kabat numbering system places insertions at H35A and H35B; if neither 35A nor 35B is present, the loop ends at 32; if only 35A is present, the loop ends at 33; if both 35A and 35B are present, the loop ends at 34). The AbM hypervariable regions represent the meeting points between the Kabat CDRs and the Chothia structural loops and are used by Oxford Molecular's AbM antibody modeling software.
[0046] IMGT (ImMunoGeneTics) also provides a numbering system for immunoglobulin variable regions, including CDRs. See, e.g., Lefranc, MP et al., Dev Comp Immunol. 27:55-77 (2003), which is incorporated herein by reference. The IMGT numbering system is based on alignments of over 5,000 sequences, structural data, and characterization of hypervariable loops, allowing for easy comparison of variable and CDR regions across all species. According to the IMGT numbering schema, VH-CDR1 is located at positions 26-35, VH-CDR2 is located at positions 51-57, VH-CDR3 is located at positions 93-102, VL-CDR1 is located at positions 27-32, VL-CDR2 is located at positions 50-52, and VL-CDR3 is located at positions 89-97.
[0047] For all heavy chain constant region amino acid positions disclosed herein, numbering follows the EU index first presented in the publication describing the amino acid sequence of the myeloma protein EU, the first sequenced human IgG1 (Edelman et al., 1969, Proc. Natl. Acad. Sci. USA 63(1):78-85). The EU index of Edelman et al. is also presented in Kabat et al., 1991, Sequences of Proteins of Immunological Interest, 5th Ed., United States Public Health Service, National Institutes of Health, Bethesda. Thus, the terms "EU index as presented in Kabat" or "Kabat's EU index" and "positions according to the EU index presented in Kabat..." and grammatical variations refer to the residue numbering system based on the human IgG1 EU antibody of Edelman et al. as presented in Kabat 1991.
[0048] The numbering system used for the variable domains (both heavy and light chain) and light chain constant region amino acid sequences is that presented in Kabat 1991.
[0049] An antibody can have any type (e.g., IgG, IgE, IgM, IgD, IgA, or IgY), any class (e.g., IgD, IgG2, IgG3, IgG4, IgA1, or IgA2), or any subtype (e.g., IgG1, IgG2, IgG3, and IgG4 in humans; and IgG1, IgG2a, IgG2b, and IgG3 in mice) of immunoglobulin molecule. Immunoglobulins, such as IgG1, exist in several allotypes, which differ from each other by up to a few amino acids. The antibodies disclosed herein can be derived from any of the commonly known isotypes, classes, subtypes, or allotypes. In certain embodiments, the antibodies disclosed herein are of the IgG1, IgG2, IgG3, or IgG4 subtype, or any hybrid thereof. In certain embodiments, the antibodies are of the human IgG1 subtype, human IgG2 subtype, human IgG4 subtype, or human IgG2 / IgG4 subtype.
[0050] "Antibody" includes, for example, naturally occurring and non-naturally occurring antibodies; monoclonal and polyclonal antibodies; chimeric and humanized antibodies; human and non-human antibodies, totally synthetic antibodies; single-chain antibodies; monospecific antibodies; multispecific antibodies (including bispecific antibodies); tetrameric antibodies comprising two heavy chain and two light chain molecules; antibody light chain monomers; antibody heavy chain monomers; antibody light chain dimers; antibody heavy chain dimers; antibody light chain-antibody heavy chain pairs; intrabodies; heteroconjugate antibodies; monovalent antibodies; single-chain antibodies; camelized antibodies; affibodies; anti-idiotypic (anti-Id) antibodies (including, for example, anti-anti-Id antibodies), and single domain antibodies (sdAbs), which include binding molecules composed of a single monomeric variable antibody domain (e.g., a VH domain or a VL domain) sufficient to bind to an antigen (Harmen M M and Haard H J Appl Microbiol Biotechnol. 77(1):13-22 (2007)).
[0051] As used herein, the terms "antigen-binding portion of an antibody" or "antigen-binding fragment of an antibody" refer to one or more fragments of an antibody that retain the ability to specifically bind to an antigen (e.g., human FAM19A5). Such "fragments" are, for example, about 8 to about 1,500 amino acids in length, preferably about 8 to about 745 amino acids in length, more preferably about 8 to about 300, about 8 to about 200, or about 10 to about 50, or 100 amino acids in length. It has been shown that the antigen-binding function of an antibody can be performed by fragments of a full-length antibody. Examples of binding fragments included in the "antigen-binding portion" of an antibody, for example, the anti-FAM19A5 antibody disclosed herein, include: (i) a Fab fragment, which is a monovalent fragment composed of the VL, VH, CL, and CH1 domains; (ii) a F(ab')2 fragment, which is a bivalent fragment comprising two Fab fragments linked by a disulfide bridge at the hinge region; (iii) a Fd fragment composed of the VH and CH1 domains; (iv) an Fv fragment composed of the VL and VH domains of a single arm of an antibody, and disulfide-linked Fvs (sdFv); (v) a dAb fragment composed of the VH domain (Ward et al., (1989) Nature 341:544-546); and (vi) an isolated complementarity-determining region (CDR) or (vii) a combination of two or more isolated CDRs that can optionally be linked by a synthetic linker. Alternatively, the two domains of an Fv fragment, VL and VH, are encoded by separate genes, but can be joined using a synthetic linker using recombinant methods to form a single protein chain in which the VL and VH domains pair to form a monovalent molecule (referred to as single-chain Fv (scFv)) (see, e.g., Bird et al., (1988) Science 242:423-426; and Huston et al., (1988) Proc. Natl. Acad. Sci. USA 85:5879-5883). Such single-chain antibodies are also included in the "antigen-binding portion" of an antibody. These antibody fragments are obtained by conventional techniques known to those skilled in the art, and the fragments are screened for utility in the same manner as intact antibodies. Antigen-binding portions can be produced by recombinant DNA techniques or by enzymatic or chemical cleavage of intact immunoglobulins.
[0052] As used herein, the terms "variable region" and "variable domain" are used interchangeably and are commonly used in the art. A variable region typically refers to a portion of an antibody, generally a portion of either the light or heavy chain, typically approximately the amino-terminal 110-120 amino acids in a mature heavy chain and approximately 90-115 amino acids in a mature light chain, which vary widely in sequence within antibodies and are used in connection with the binding and specificity of a particular antibody to a particular antigen. Sequence variability is concentrated in regions called complementarity-determining regions (CDRs), while the more highly conserved regions of a variable domain are called framework regions (FRs).
[0053] Regardless of the particular mechanism or theory, it is believed that the CDRs of the light and heavy chains are primarily responsible for antigen-antibody interaction and specificity. In certain embodiments, the variable regions are human variable regions. In certain embodiments, the variable regions comprise rodent or mouse CDRs and human framework regions (FRs). In certain embodiments, the variable regions are primate (e.g., non-human primate) variable regions. In certain embodiments, the variable regions comprise rodent or mouse CDRs and primate (e.g., non-human primate) framework regions (FRs).
[0054] As used herein, the term "heavy chain" (HC), when used in connection with an antibody, can refer to any of the different types, e.g., alpha (α), delta (δ), epsilon (ε), gamma (γ), and mu (μ), based on the amino acid sequence of the constant domain, which include IgG subtypes, e.g., IgG1, IgG2, IgG3, and IgG4, respectively, and give rise to the IgA, IgD, IgE, IgG, and IgM types of antibodies.
[0055] As used herein, the term "light chain" (LC), when used in reference to an antibody, can refer to any of the different types, such as kappa (κ) and lambda (λ), based on the amino acid sequence of the constant domain. Light chain amino acid sequences are known in the art. In certain embodiments, the light chain is a human light chain.
[0056] The terms "VL" and "VL domain" are used interchangeably to refer to the light chain variable region of an antibody.
[0057] The terms "VH" and "VH domain" are used interchangeably to refer to the heavy chain variable region of an antibody.
[0058] As used herein, the terms "constant region" or "constant domain" can be used interchangeably and have their usual meaning in the art. A constant domain is a portion of an antibody, e.g., the carboxy-terminal portion of the light and / or heavy chain, that is not directly involved in binding an antibody to an antigen, but that may exhibit various effector functions, such as interaction with Fc receptors. The constant regions of immunoglobulin molecules generally have more conserved amino acid sequences than immunoglobulin variable domains.
[0059] "Fc region" (Fragment Determinable Region) or "Fc domain" or "Fc" refers to the C-terminal region of an antibody heavy chain that mediates immunoglobulin binding to host tissues or factors, including binding to Fc receptors located on various cells of the immune system (e.g., effector cells) or the first component (C1q) of the classical complement system. Thus, the Fc region includes the constant region of an antibody other than the first constant region immunoglobulin domain (e.g., CH1 or CL). In IgG, IgA, and IgD antibody isotypes, the Fc region contains two identical protein fragments derived from the second (CH2) and third (CH3) constant domains of both antibody heavy chains; IgM and IgE Fc regions contain three heavy chain constant domains (CH domains 2-4) on each polypeptide chain. In the case of IgG, the Fc region includes immunoglobulin domains Cγ2 and Cγ3, as well as the hinge between Cγ1 and Cγ2. Although the boundaries of the Fc region of an immunoglobulin heavy chain vary, the human IgG heavy chain Fc region is generally defined as stretching from an amino acid residue at position C226 or P230 (or an amino acid between these two amino acids) to the carboxy terminus of the heavy chain, where numbering is according to the EU index as in Kabat. The CH2 domain of the human IgG Fc region extends from about amino acid 231 to about amino acid 340, and the CH3 domain, located C-terminal to the Cm domain in the Fc region, extends from about amino acid 341 to about amino acid 447 of IgG. The Fc region may be a native-sequence Fc, including any allotypic variants, or a variant Fc (e.g., a non-naturally occurring Fc). Fc may refer to the region in isolation or to the region in association with an Fc-containing protein polypeptide, such as an "Fc region-containing binding protein," also referred to as an "Fc fusion protein" (e.g., an antibody or immunoadhesion).
[0060] A "native-sequence Fc region" or "native-sequence Fc" comprises an amino acid sequence identical to the amino acid sequence of an F region found in nature. Native-sequence human Fc regions include native-sequence human IgG1 Fc regions; native-sequence human IgG2 Fc regions; native-sequence human IgG3 Fc regions; and native-sequence human IgG4 Fc regions, as well as naturally occurring variants thereof. Native-sequence Fc regions include various allotypes of Fc (e.g., Jefferis et al., (2009) mAbs 1:1; see Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014)) An "Fc receptor" or "FcR" is a receptor that binds to the Fc region of an immunoglobulin. FcRs that bind IgG antibodies include receptors of the FcγR family, including allelic variants and alternatively spliced forms of these receptors. The FcγR family consists of three activating receptors (FcγRI, FcγRIII, and FcγRIV in mice; FcγRIA, FcγRIIA, and FcγRIIIA in humans) and one inhibitory receptor (FcγRIIB). Human IgG1 binds to the majority of human Fc receptors and elicits the strongest Fc effector functions. Human IgG1 is considered equivalent to mouse IgG2a in terms of the types of activating Fc receptors it binds. Meanwhile, human IgG4 elicits minimal Fc effector functions (see Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014)).
[0061] The constant region can be engineered, for example, by recombinant techniques, to remove one or more effector functions. "Effector function" refers to the interaction of an antibody Fc region with an Fc receptor or ligand, or the biochemical event resulting therefrom. Exemplary "effector functions" include C1q binding, complement-dependent cytotoxicity (CDC), Fc receptor binding, FcγR-mediated effector functions, such as ADCC and antibody-dependent cell-mediated phagocytosis (ADCP), and down-regulation of cell surface receptors (e.g., B cell receptors; BCRs). Such effector functions generally require that the Fc region be combined with a binding domain (e.g., an antibody variable domain). Thus, the term "constant region without Fc function" includes a constant region with reduced or absent one or more effector functions mediated by the Fc region.
[0062] Antibody effector functions can be reduced or avoided by specific approaches. Antibody effector functions can be reduced or avoided by using antibody fragments lacking the Fc region (e.g., Fab, F(ab')2, single-chain Fv (scFv), or sdAbs composed of monomeric VH or VL domains). Alternatively, so-called aglycosylated antibodies can be generated by removing sugars linked to specific residues in the Fc region to reduce antibody effector functions while retaining other valuable attributes of the Fc region (e.g., extended half-life and heterodimerization). Aglycosylated antibodies can be generated, for example, by deleting or altering the sugar-attached residues, by enzymatically removing sugars, by producing the antibody in cells cultured in the presence of glycosylation inhibitors, or by expressing the antibody in cells (e.g., bacterial host cells) that cannot glycosylate proteins (see, e.g., U.S. Patent Publication No. 20120100140). Another approach is to utilize Fc regions from IgG subtypes with reduced effector function; for example, IgG2 and IgG4 antibodies are characterized by lower levels of Fc effector function compared to IgG1 and IgG3. Residues closest to the hinge region in the CH2 domain of the Fc portion are responsible for antibody effector function and contain closely overlapping binding sites for C1q (complement) and IgG-Fc receptors (FcγRs) on effector cells of the innate immune system (Vidarsson G et al., Front Immunol. 5:520 (Published online October 20, 2014)). Thus, antibodies with reduced or no Fc effector function can be produced, for example, by generating a chimeric Fc region comprising a CH2 domain from an IgG antibody of the IgG4 isotype and a CH3 domain from an IgG antibody of the IgG1 isotype, or a chimeric Fc region comprising a hinge region from IgG2 and a CH2 region from IgG4 (see, e.g., Lau C et al., J Immunol. 191:4769-4777 (2013)), or an Fc region with altered Fc effector function, e.g., a mutation that results in reduced or no Fc function. Such Fc regions with mutations are known in the art.See, for example, U.S. Patent Publication No. 20120100140 and the U.S. and PCT applications cited therein, and An et al., mAbs 1:6, 572-579 (2009), the disclosures of which are incorporated by reference in their entireties.
[0063] "Hinge," "hinge domain," or "hinge region" or "antibody hinge region" refers to the domain of the heavy chain constant region that connects the CH1 domain to the CH2 domain and includes the upper, middle, and lower portions of the hinge (Roux et al., J. Immunol 1998 161:4083). The hinge provides varying levels of flexibility between the binding and effector regions of an antibody and also provides a site for intermolecular disulfide bonding between the two heavy chain constant regions. The hinge disclosed herein begins at Glu216 and ends at Gly237 for all IgG isotypes (Roux et al., 1998 J Immunol 161:4083). The sequences of wild-type IgG1, IgG2, IgG3, and IgG4 hinges are known in the art (see, e.g., Kabat EA, et al., (1991) Sequences of Proteins of Immunological Interest, Fifth Edition, US Department of Health and Human Services, NIH Publication No. 91-3242; Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014)).
[0064] The term "CH1 domain" refers to the heavy chain constant region that connects the variable domain to the hinge in the heavy chain constant domain. The CH1 domain disclosed herein begins at A118 and ends at V215. The term "CH1 domain" encompasses wild-type CH1 domains as well as naturally occurring variants (e.g., allotypes) thereof. CH1 domain sequences of IgG1, IgG2, IgG3, and IgG4 (including wild-type and allotype variants) are known in the art (see, e.g., Kabat EA et al., (1991) (ibid.) and Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014)). Exemplary CH1 domains include CH1 domains with mutations that alter the biological activity, e.g., half-life, of the antibody, as disclosed, for example, in U.S. Patent Publication No. 20120100140 and the U.S. patents and publications and PCT publications cited therein.
[0065] The term "CH2 domain" refers to the heavy chain constant region that connects the hinge and CH3 domains in the heavy chain constant domain. The CH2 domain disclosed herein begins at P238 and ends at K340. The term "CH2 domain" includes wild-type CH2 domains as well as naturally occurring variants (e.g., allotypes) thereof. CH2 domain sequences of IgG1, IgG2, IgG3, and IgG4 (including wild-type and allotype variants) are known in the art (see, e.g., Kabat EA et al., (1991) (ibid.) and Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014)). Exemplary CH2 domains include CH2 domains with mutations that alter the biological activity of the antibody, e.g., half-life and / or reduced Fc effector function, as disclosed, for example, in U.S. Patent Publication No. 20120100140 and the U.S. patents and publications and PCT publications cited therein.
[0066] The term "CH3 domain" refers to the heavy chain constant region C-terminal to the CH2 domain in the heavy chain constant domain. The CH3 domain disclosed herein begins at G341 and ends at K447. The term "CH3 domain" includes wild-type CH3 domains as well as naturally occurring variants (e.g., allotypes) thereof. CH3 domain sequences of IgG1, IgG2, IgG3, and IgG4 (including wild-type and allotype variants) are known in the art (see, e.g., Kabat EA et al., (1991) (ibid.) and Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014)). Exemplary CH3 domains include CH3 domains with mutations that alter the biological activity, e.g., half-life, of the antibody, as disclosed, for example, in U.S. Patent Publication No. 20120100140 and the U.S. patents and publications and PCT publications cited therein.
[0067] As used herein, the term "isotype" refers to the antibody type (e.g., IgG1, IgG2, IgG3, IgG4, IgM, IgA1, IgA2, IgD, and IgE antibodies) encoded by heavy chain constant region genes.
[0068] The term "allotype" refers to naturally occurring variants within a particular isotype group that differ by several amino acids (see, e.g., Jefferis et al., (2009) mAbs 1:1). The antibodies disclosed herein can have any allotype. The allotypes of IgG1, IgG2, IgG3, and IgG4 are known in the art (see, e.g., Kabat EA et al., (1991) (ibid.); Vidarsson G et al., Front Immunol. 5:520 (published online October 20, 2014); and Lefranc MP, mAbs 1:4, 1-7 (2009)).
[0069] The terms "antibody that recognizes an antigen" and "antibody that is specific for an antigen" are used interchangeably herein, along with the term "antibody that specifically binds to an antigen."
[0070] As used herein, the term "isolated antibody" refers to an antibody that is substantially free of other antibodies with different antigen specificities. For example, an isolated antibody that specifically binds to FAM19A5 is substantially free of antibodies that specifically bind to antigens other than FAM19A5. However, an isolated antibody that specifically binds to an epitope of FAM19A5 may have cross-reactivity with other FAM19A5 proteins from different species.
[0071] "Binding affinity" generally refers to the total strength of all non-covalent interactions between a single binding site of a molecule (e.g., an antibody) and its binding partner (e.g., an antigen). Unless otherwise specified, the term "binding affinity" refers to the intrinsic binding affinity, which reflects a 1:1 interaction between members of a binding pair (e.g., an antibody and an antigen). The affinity of a molecule X for a partner Y is generally determined by the dissociation constant (K D Affinity can be expressed by, but not limited to, the equilibrium dissociation constant (K D ), and the equilibrium binding constant (K A ) can be measured and / or displayed in a number of ways known in the art. D is k off / k on It is calculated from the quotient of K A is k on / k off It is calculated from the quotient of k on refers to the binding rate constant of, for example, an antibody to an antigen, and k off k refers to the dissociation rate constant of an antibody against an antigen, for example. on and k off can be determined by techniques known to those skilled in the art, such as immunoassays (eg, enzyme-linked immunosorbent assays (ELISAs)), BIACORE®, or kinetic exclusion assays (KinExA).
[0072] As used herein, the terms "specifically bind," "specifically recognize," "specific binding," "selective binding," and "selectively bind" are similar terms in the context of antibodies and refer to a molecule (e.g., an antibody) that binds to an antigen (e.g., an epitope or immune complex), as such binding is understood by those of skill in the art. A molecule that specifically binds to an antigen may typically bind to other peptides or polypeptides with lower affinity, as determined, for example, by immunoassay, a BIACORE® KinExA 3000 instrument (Sapidyne Instruments, Boise, ID), or other assays known in the art. In certain embodiments, a molecule that specifically binds to an antigen has a K A at least 2 log, 2.5 log, 3 log, 4 log or more K compared to A and binds to the antigen.
[0073] Antibodies are typically 10 -5 ~10 -11 The dissociation constant (K D ) specifically binds to its cognate antigen with high affinity, reflected by approximately 10 -4 K exceeds M D An antibody that "specifically binds" to an antigen refers to an antibody that binds to the antigen with high affinity and substantially the same antigen, as determined, for example, by immunoassay (e.g., ELISA) or surface plasmon resonance (SPR) technology on a BIACORE 2000 instrument using a defined antigen, with a binding affinity of 10 or more. -7 M or less, preferably 10 -8 M or less, preferably 10 -9 M or less, and most preferably 10 -8 M~10 -10 K below M D which does not bind with high affinity to unrelated antigens.
[0074] As used herein, the term "antigen" refers to any natural or synthetic immunogenic substance, such as a protein, peptide, or hapten. The antigen may be FAM19A5 or a fragment thereof.
[0075] As used herein, "epitope" is a term of art that refers to a localized region of an antigen to which an antibody can specifically bind. An epitope can be, for example, contiguous amino acids of a polypeptide (a linear or continuous epitope), or an epitope can be, for example, a combination of two or more non-contiguous regions of a polypeptide or polypeptide (a conformational, non-linear, discontinuous, or discontinuous epitope). Epitopes formed from contiguous amino acids are typically, but not always, retained upon exposure to denaturing solvents, while epitopes formed by tertiary folding are typically lost upon treatment with denaturing solvents. An epitope typically comprises at least 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, or 20 amino acids in a unique spatial conformation. Methods for determining the epitope bound by a given antibody (i.e., epitope mapping) are known in the art and include, for example, immunoblot and immunoprecipitation analyses, in which overlapping or consecutive peptides from FAM19A5 are tested for reactivity with a given antibody (e.g., an anti-FAM19A5 antibody). Methods for determining the spatial conformation of an epitope include those known in the art and disclosed herein, including, for example, X-ray crystallography, two-dimensional nuclear magnetic resonance, and HDX-MS (see, e.g., Epitope Mapping Protocols in Methods in Molecular Biology, Vol. 66, GE Morris, Ed. (1996)).
[0076] In certain embodiments, the epitope bound by the antibody can be determined by, for example, NMR spectroscopy, X-ray diffraction crystallography, ELISA analysis, hydrogen / deuterium exchange coupled with mass spectroscopy (e.g., liquid chromatography electrospray mass spectroscopy), array-based oligo-peptide scanning analysis, and / or mutagenesis mapping (e.g., site-directed mutagenesis mapping). For X-ray crystallography, crystallization can be achieved using any method known in the art (e.g., Giege R et al., (1994) Acta Crystallogr D Biol Crystallogr 50(Pt4):339-350; McPherson A (1990) Eur J Biochem 189:1-23; Chayen NE (1997) Structure 5:1269-1274; McPherson A (1976) J Biol Chem 251:6300-6303). Antibody:antigen crystals can be studied using known X-ray diffraction techniques, such as X-PLOR (Yale University, 1992, distributed by Molecular Simulations, Inc.; see, e.g., Meth Enzymol (1985) volumes 114 & 115, eds. Wyckoff HW et al.; U.S. Patent Publication No. 2004 / 0014194), and BUSTER (Bricogne G (1993) Acta Crystallogr D Biol Crystallogr 49(Pt1):37-60; Bricogne G (1997) Meth Enzymol 276A:361-423, ed. Carter CW; Roversi P Mutagenesis mapping studies can be performed using computer software such as (e.g., Champa M et al., (2000) Acta Crystallogr D Biol Crystallogr 56(Pt 10):1316-1323). Mutagenesis mapping studies can be performed by any method known to those skilled in the art. For a description of mutagenesis techniques, including alanine scanning mutagenesis techniques, see, e.g., Champa M et al., (1995) J Biol Chem 270:1388-1394 and Cunningham BC & Wells JA (1989) Science 244:1081-1085.
[0077] The term "epitope mapping" refers to the process of identifying molecular determinants for antibody-antigen recognition.
[0078] The term "binds to the same epitope" in the context of two or more antibodies means that the antibodies bind to the same segment of amino acid residues as determined by a given method. Techniques for determining whether an antibody binds to the "same epitope on FAM19A5" as an antibody disclosed herein include epitope mapping methods, such as X-ray analysis of crystals of antigen:antibody complexes and hydrogen / deuterium exchange mass spectrometry (HDX-MS), which provide atomic resolution of the epitope. Other methods monitor the binding of antibodies to antigen fragments or mutated variants of the antigen, where loss of binding due to alterations in amino acid residues within the antigen sequence is considered primarily indicative of epitope components. In addition, combinatorial computer methods for epitope mapping may be used. These methods rely on the ability of the antibody of interest to affinity isolate specific short peptides from combinatorial phage display peptide libraries. Antibodies with the same VH and VL or the same CDR1, 2, and 3 sequences are predicted to bind to the same epitope.
[0079] An antibody that "competes with another antibody for binding to a target" refers to an antibody that inhibits (partially or completely) the binding of the remaining antibody to the target. Whether two antibodies compete with each other for binding to a target, i.e., whether and to what extent one antibody inhibits the binding of another antibody to the target, can be determined by known competition experiments. In certain embodiments, an antibody competes with another antibody for binding to a target and inhibits this binding by at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100%. The level of inhibition or competition can vary depending on whether the antibody is a "blocking antibody" (i.e., a cold antibody that is first incubated with the target). Competition assays can be performed, for example, as described in Ed Harlow and David Lane, Cold Spring Harb Protoc; 2006; doi:101101 / pdb.prot 4277 or "Using Antibodies" by Ed Harlow and David Lane (Cold Spring Harb Protoc; 2006; doi:101101 / pdb.prot 4277). Competing antibodies may bind to the same epitope, overlapping epitopes, or adjacent epitopes (e.g., as evidenced by steric hindrance).
[0080] Other competitive binding assays include solid-phase direct or indirect radioimmunoassays (RIA), solid-phase direct or indirect enzyme immunoassays (EIA), sandwich competitive assays (see Stahl et al., Methods in Enzymology 9:242 (1983)); solid-phase direct biotin-avidin EIA (see Kirkland et al., J. Immunol. 137:3614 (1986)); solid-phase direct labeled assays, solid-phase direct labeled sandwich assays (see Harlow and Lane, Antibodies: A Laboratory Manual, Cold Spring Harbor Press (1988)); solid-phase direct labeled RIA using 1-125 labels (see Morel et al., Mol. Immunol. 25(1):7 (1988)); solid-phase direct biotin-avidin EIA (see Cheung et al., Virology 176:546 (1990)); and direct labeling RIA (Moldenhauer et al., Scand J Immunol. 32:77 (1990)).
[0081] A "bispecific" or "bifunctional antibody" is an artificial hybrid antibody having two different heavy / light chain pairs and two different binding sites. Bispecific antibodies can be produced by a variety of methods, including fusion of hybridomas or linking of Fab' fragments (see, e.g., Songsivilai & Lachmann, Clin. Exp. Immunol. 79:315-321 (1990); Kostelny et al., J. Immunol. 148, 1547-1553 (1992)).
[0082] As used herein, the term "monoclonal antibody" refers to an antibody or composition of antibodies in which all of the antibodies exhibit a single binding specificity and affinity for a particular epitope. Accordingly, the term "human monoclonal antibody" refers to an antibody or antibody composition that exhibits a single binding specificity and has variable and optional constant regions derived from human germline immunoglobulin sequences. In some embodiments, human monoclonal antibodies are produced by hybridomas comprising B cells obtained from a transgenic non-human animal, e.g., a transgenic mouse whose genome comprises human heavy chain and light chain transgenes fused to an immortalized cell.
[0083] As used herein, the term "recombinant human antibody" includes all human antibodies produced, expressed, produced, or isolated by recombinant means, such as (a) antibodies isolated from animals (e.g., mice) that are transgenic or transchromosomal for human immunoglobulin genes, or hybridomas produced thereby; (b) antibodies isolated from host cells transformed to express the antibody, e.g., from transfectomas; (c) antibodies isolated from recombinant, combinatorial human antibody libraries; and (d) antibodies produced, expressed, produced, or isolated by any other means involving splicing human immunoglobulin gene sequences to other DNA sequences. Such recombinant human antibodies are encoded by germline genes but contain variable and constant regions that utilize specific human germline immunoglobulin sequences, including subsequent rearrangements and mutations that occur, for example, during antibody maturation. As known in the art (see, e.g., Lonberg (2005) Nature Biotech. 23(9):1117-1125), the variable region contains the antigen-binding domain encoded by various genes that rearrange to form antibodies specific to foreign antigens. In addition to rearrangement, the variable region can be further modified by multiple single amino acid changes (referred to as somatic mutation or hypermutation) to increase the affinity of the antibody for the foreign antigen. The constant region will change in additional response to the antigen (i.e., isotype switching). Thus, rearranged and somatically mutated nucleic acid molecules that encode light and heavy chain immunoglobulin polypeptides in response to an antigen may not have sequence identity to the original nucleic acid molecule, but will be substantially identical or similar (i.e., at least 80% identical).
[0084] The term "human antibody (HuMAb)" refers to an antibody having variable regions in which both the framework and CDR regions are derived from human germline immunoglobulin sequences. If the antibody contains a constant region, the constant region also is derived from human germline immunoglobulin sequences. The antibodies disclosed herein may contain amino acid residues not encoded by human germline immunoglobulin sequences (e.g., mutations introduced by random or site-directed mutagenesis in vitro or by somatic mutation in vivo). However, the term "human antibody" disclosed herein does not include antibodies in which CDR sequences derived from the germline of other mammalian species, such as a mouse, are ligated to human framework sequences. The terms "human antibody" and "fully human antibody" are used interchangeably.
[0085] The term "humanized antibody" refers to an antibody in which some, most, or all of the amino acids outside the CDR domains of a non-human antibody have been substituted with the corresponding amino acids derived from a human immunoglobulin. In some embodiments of humanized forms of antibodies, some, most, or all of the amino acids outside the CDR domains are substituted with amino acids from a human immunoglobulin, while some, most, or all of the amino acids within one or more CDR regions remain unchanged. Minor additions, deletions, insertions, substitutions, or modifications of amino acids are permissible as long as they do not eliminate the ability of the antibody to bind to a particular antigen. A "humanized antibody" retains antigen specificity similar to that of the original antibody.
[0086] As used herein, the term "deimmunized" or "deimmunization" refers to a process in which an antibody or its antigen-binding portion is modified to reduce its immunogenicity, e.g., in a human subject. For example, the heavy chain variable region (VH) and light chain variable region (VL) sequences from the original antibody can be analyzed, and a human T cell epitope "map" can be generated from each V region showing the location of the epitope in relation to the complementarity-determining regions (CDRs) and other key residues within the sequence. Individual T cell epitopes from the T cell epitope map are analyzed to identify alternative amino acid substitutions that pose a low risk of altering the activity of the final antibody. Various alternative VH and VL sequences containing combinations of amino acid substitutions are designed, and these sequences are incorporated into a range of FAM19A5-specific antibodies or their antigen-binding portions for use in the diagnostic and therapeutic methods described below, which are then tested for function. The complete heavy and light chain genes, including the modified VH and human C regions, are then cloned into expression vectors, and the plasmids are subsequently introduced into cell lines for the production of whole antibodies. The antibodies are then compared in appropriate biochemical and biological assays to identify the optimal variant. The antibodies can be deimmunized using the methods described herein or any other method known in the art, for example, WO 98 / 52976 or WO 00 / 34317.
[0087] "Chimeric antibody" refers to an antibody in which the variable region is derived from one species and the constant region is derived from another species, e.g., an antibody in which the variable region is derived from a murine antibody and the constant region is derived from a human antibody.
[0088] As used herein, the term "cross-reactive" refers to the ability of an antibody disclosed herein to bind to FAM19A5 from a different species. For example, an antibody disclosed herein that binds to human FAM19A5 can also bind to FAM19A5 from other species (e.g., murine FAM19A5). Cross-reactivity can be measured by detecting specific reactivity with purified antigen in a binding assay (e.g., SPR, ELISA) or by detecting binding or functional interaction with cells that physiologically express FAM19A5. Methods for determining cross-reactivity include standard binding assays disclosed herein, such as BIACORE® surface plasmon resonance (SPR) analysis using a BIACORE® 2000 SPR instrument (Biacore AB, Uppsala, Sweden), or flow cytometric techniques.
[0089] The term "naturally occurring" refers to something that can be found in nature. For example, a polypeptide or polynucleotide sequence that is present in an organism (including viruses) that can be isolated from a natural source and has not been intentionally modified by humans in a laboratory is naturally occurring.
[0090] The term "polypeptide" refers to a chain comprising at least two consecutively linked amino acid residues, with no upper limit to the length of the chain. One or more amino acid residues in the protein may contain modifications such as, but not limited to, glycosylation, phosphorylation, or disulfide bond formation. A "protein" can include one or more polypeptides.
[0091] As used herein, the term "nucleic acid molecule" includes DNA molecules and RNA molecules. A nucleic acid molecule can be single-stranded or double-stranded, and can be cDNA.
[0092] As used herein, the term "vector" refers to a nucleic acid molecule capable of transporting another nucleic acid to which it has been linked. One type of vector is a "plasmid," which refers to a circular double-stranded DNA loop into which additional DNA segments can be ligated. Another type of vector is a viral vector, into which additional DNA segments can be ligated. Certain vectors (e.g., bacterial vectors having a bacterial origin of replication and episomal mammalian vectors) are capable of autonomous replication in a host cell into which they are introduced. Other vectors (e.g., non-episomal mammalian vectors) can be integrated into the genome of a host cell upon introduction into the host cell, and thereby are replicated along with the host genome. Certain vectors are also capable of directing the expression of genes to which they are operably linked. Such vectors are referred to herein as "recombinant expression vectors" (or simply, "expression vectors"). In general, expression vectors useful in recombinant DNA technology are primarily in the form of plasmids. As used herein, "plasmid" and "vector" can be used interchangeably, as the plasmid is the most commonly used form of vector. However, other forms of expression vectors, such as viral (eg, replication-coupled retroviruses, adenoviruses and adeno-associated viruses) vectors, are included, which serve equivalent functions.
[0093] As used herein, the term "recombinant host cell" (or simply, "host cell") refers to a cell that contains nucleic acid that is not naturally present in that cell, such as a cell into which a recombinant expression vector has been introduced. Such terms should be understood to refer to the particular relevant cell as well as to the progeny of such a cell. Because certain variations may occur over successive generations due to mutation or environmental influences, such progeny may not actually be identical to the parent cell, but are still included within the term "host cell."
[0094] As used herein, the term "linked" refers to the association of two or more molecules. Linkage can be covalent or non-covalent. Linkage can also be genetic (i.e., recombinantly fused). Such linkage can be achieved using a variety of techniques known in the art, such as chemical conjugation and recombinant protein production.
[0095] As used herein, the term "administration" refers to the physical injection of a therapeutic agent or a composition containing a therapeutic agent into a subject using any of a variety of methods and delivery systems known to those skilled in the art. Preferred routes of administration of the antibodies disclosed herein include intravenous, intraperitoneal, intramuscular, subcutaneous, spinal, or other parenteral administration routes, e.g., by injection or infusion. As used herein, the term "parenteral administration" refers to any mode of administration other than enteral and topical administration, generally by injection, and includes, but is not limited to, intravenous, intraperitoneal, intramuscular, intraarterial, intraspinal, intralymphatic, intralesional, intracapsular, intraorbital, intracardiac, intradermal, transbronchial, subcutaneous, subcuticular, intraarticular, subcutaneous, intraspinal, epidural, and intrasternal injection and infusion, as well as in vivo electroporation. Alternatively, the antibodies disclosed herein can be administered via a non-parenteral route, such as via a topical, epithelial, or mucosal route of administration, such as via intranasal, oral, vaginal, rectal, sublingual, or topical routes, and administration can be, for example, one time, multiple times, and / or over one or more extended periods of time.
[0096] As used herein, the terms "treat," "treating," and "treatment" refer to any type of intervention or process performed on a subject, or the administration of an active agent to a subject, for the purpose of reversing, ameliorating, alleviating, inhibiting, or delaying the progression, occurrence, severity, or recurrence of symptoms, complications, pathologies, or biochemical indicators associated with a disease. Treatment can be performed on subjects with a disease or subjects without a disease (e.g., for prophylaxis).
[0097] As used herein, the term "subject" includes any human or non-human animal. The term "non-human animal" includes all vertebrates, e.g., mammals and non-mammals, such as non-human primates, goats, dogs, cows, chickens, amphibians, reptiles, etc.
[0098] As used herein, the terms "gliosis onset" or "reactive gliosis onset" include the beginning or initiation of gliosis. Gliosis is a nonspecific reactive change in glial cells in the central nervous system in response to damage or injury due to, for example, trauma, spinal cord injury, brain tumor, infection, ischemia, stroke, autoimmune response, and / or neurodegenerative disease, and includes proliferation or hypertrophy of various types of glial cells, including astrocytes, microglia, and oligodendrocytes. Gliosis onset can lead to scar formation, which inhibits axonal regeneration in injured or damaged parts of the CNS. Harmful effects of gliosis onset include irreversible or permanent damage to neurons and / or preventing the recovery of surrounding neurons. Thus, the terms "delayed onset of gliosis" and "delayed onset of reactive gliosis" include inhibiting, slowing, arresting or preventing the onset or initiation of gliosis and the deleterious CNS effects associated therewith.
[0099] As used herein, the term "excessive proliferation of reactive astrocytes" includes an abnormal increase in the number of astrocytes due to destruction of nearby neurons, e.g., from CNS injury, trauma, injury, cerebrospinal cord injury, brain tumor, infection, ischemia, stroke, autoimmune response, and / or neurodegenerative disease. Excessive proliferation of reactive astrocytes can have deleterious effects on the CNS, including scar formation, which inhibits axonal regeneration in parts of the injured or damaged CNS, exacerbated inflammation, production and release of neurotoxic levels of reactive oxygen species, potentially releasing excitotoxic glutamate, potentially contributing to seizure genesis, compromise of blood-brain barrier function, cytotoxic edema during trauma and stroke, chronic cytokine activation of astrocytes that may contribute to chronic pain, and secondary degeneration after CNS injury. Sofroniew, Michael V. (2009) Trends in Neurosciences, 32(12):638-47; McGraw, J. et al., (2001) Journal of Neuroscience Research 63(2):109-15; and Sofroniew, MV (2005) The Neuroscientist 11(5):400-7. Thus, the term "inhibiting excessive proliferation of reactive astrocytes" includes inhibiting, slowing, reducing, limiting, or preventing excessive or abnormal proliferation of reactive astrocytes and the deleterious CNS effects associated therewith.
[0100] As used herein, the term "chondroitin sulfate proteoglycan" includes proteoglycans composed of a protein core and chondroitin sulfate. Chondroitin sulfate proteoglycans, also known as CSPGs, are extracellular matrix molecules that are widely expressed throughout the developing and adult CNS. CSPGs play an important role in neuronal development and glial scar formation, and inhibit axonal regeneration after injury in the CNS. Known CSPGs include aggrecan (CSPG1), versican (CSPG2), neurocan (CSPG3), CSPG4 (or neuron-glial antigen 2 (NG2)), CSPG5, SMC3 (CSPG6, structural maintenance of chromosome 3), brevican (CSPG7), and CD44 (CSPG8, cluster of differentiation 44), phosphacan-neurocan (CSPG3). Rhodes, KE and Fawcett, JW (2004) Journal of Anatomy. 204(1):33-48. Thus, the term "reducing expression of chondroitin sulfate proteoglycans" includes reducing, inhibiting, or decreasing the level of one or more CSGPs, or reducing or inactivating the activity of one or more CSGPs. In certain embodiments, the term includes reducing, inhibiting, or decreasing the level of neurocan, NG2, or both, or reducing or inactivating the activity of neurocan, NG2, or both.
[0101] As used herein, the term "neuron" includes electrically excitable cells that process and transmit information through electrical and chemical signals. Neurons are the primary components of the brain and spinal cord of the CNS and the ganglia (spinal cord) of the peripheral nervous system (PNS), and can be connected to each other to form neural networks. A typical neuron is composed of a cell body (soma), dendrites, and an axon. The soma (cell body) of a neuron contains the nucleus. The dendrites of a neuron are cell extensions with many branches from which most input to the neuron occurs. The axon is a finer, cable-like projection extending from the soma that transmits neural signals from the soma and returns specific types of information to the soma. The term "promoting neuron regrowth" preferably includes stimulating, promoting, increasing, or activating neurons after injury or damage.
[0102] As used herein, the term "c-fos" includes prokaryotic c-fos, which is rapidly induced by neurotransmitter stimulation. c-fos is present in many species, including mice and humans. The c-fos gene and protein are known and characterized. See Curran, T., The c-fos proto-oncogene, pp. 307-327 (The Oncogene Handbook, Reddy EP et al., (eds.) Elsevier) (1988). c-fos expression can be determined by methods known in the art, such as Northern blot, quantitative PCR, or immunohistochemistry. The term "increased expression of c-fos" includes increasing the levels of c-fos mRNA, c-fos protein, or c-fos protein activity.
[0103] As used herein, the term "pERK" includes phosphorylated extracellular signal-regulated kinase. Extracellular signal-regulated kinase, or ERK, includes ERK1 and ERK2 and is a member of the mitogen-activated protein kinase (MAPK) family. ERK is activated by phosphorylation by its upstream kinase to form pERK, which then activates downstream targets. ERK is involved in neuronal and synaptic plasticity, underlying learning and memory and pain hypersensitivity. Ji RR et al., Nat Neurosci (1999) 2:1114-1119. ERK gene, protein, phosphorylation, and activation are known and characterized, and expression of ERK and pERK can be determined by methods known in the art (e.g., Northern blot, quantitative PCR, or immunohistochemistry). See Gao YJ and Ji RR, Open Pain J. (2009) 2:11-17. The term "increasing expression of pERK" includes increasing the levels of ERK mRNA, ERK protein, or pERK activity.
[0104] As used herein, the term "GAP43," also known as "growth-associated protein 43," is a neural tissue-specific protein that promotes neurite formation, regeneration, and plasticity. Benowitz, L. I. and Routtenberg, A. (1997) Trends in Neurosciences 20(2):84-91; Aarts, L. H. et al., (1998) Advances in Experimental Medicine and Biology 446:85-106. Human GAP43 is encoded by the GAP43 gene. The human GAP43 polypeptide sequence (UniProt:KB-P 17677) and the cDNA sequence encoding the polypeptide are known in the art. Kosik, K. S. et al., (1988) Neuron 1(2):127-32; Ng, S. C. et al., (1988) Neuron 1(2):133-9. GAP43 expression can be determined by methods known in the art (e.g., Northern blot, quantitative PCR, or immunohistochemistry). The term "increasing GAP43 in neurons" includes enhancing or increasing the level of GAP43 mRNA, GAP43 protein, or increasing the activity of GAP43 protein.
[0105] As used herein, the term "therapeutically effective amount" refers to an amount of a drug, alone or in combination with other therapeutic agents, that is effective to "treat" a disease or disorder in a subject or to reduce the risk, latency, likelihood, or occurrence of a disease or disorder (e.g., central nervous system injury). A "therapeutically effective amount" includes an amount of a drug or therapeutic agent that provides some improvement or benefit to a subject having or at risk of having a disease or disorder (e.g., central nervous system injury such as traumatic brain injury or other diseases disclosed herein). Thus, a "therapeutically effective amount" is an amount that reduces or partially alleviates or reduces the risk, latency, likelihood, or occurrence of a disease, and / or reduces at least one indicator (e.g., the onset of reactive gliosis), and / or reduces at least one clinical symptom of a disease or disorder.
[0106] II. Anti-FAM19A5 antibody The present invention discloses antibodies, e.g., monoclonal antibodies, characterized by specific functional characteristics or properties. For example, antibodies that specifically bind to human FAM19A5 have been mutated (e.g., substituted or removed) by removing and / or modifying regions or residues that are highly immunogenic in humans (i.e., deimmunized). Thus, the antibodies disclosed herein, i.e., anti-FAM19A5 antibodies, have reduced immunogenicity when administered to human subjects compared to a reference antibody (e.g., a corresponding antibody that has not been deimmunized, e.g., the 1-65 antibody).
[0107] The antibodies described herein also exhibit any one or more of the following functional properties: (a) K<10 nM D binds to soluble human FAM19A5 having (b) K of 10 nM or less D binds to membrane-bound human FAM19A5 with (c) reducing, reversing, delaying and / or preventing the onset of reactive gliosis; (d) inhibiting excessive proliferation of reactive astrocytes; (e) decreased expression of chondroitin sulfate proteoglycans, including neurocan and neuron-glial antigen 2 (NG2); (f) increased expression of c-fos and pERK in the neuronal nuclei; (g) promoting neuronal survival; (h) increasing the expression of GAP43 in neurons; and (i) Promotes axonal regrowth.
[0108] In some embodiments, the anti-FAM19A5 antibody has been immunized to render the antibody relatively less immunogenic when administered to a human subject, compared to a reference antibody (e.g., a non-immunized, corresponding antibody, e.g., antibody 1-65). In some embodiments, the immunogenicity of the antibody is reduced by at least 5%, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, or at least 100% compared to a reference antibody (e.g., a non-immunized, corresponding antibody, e.g., antibody 1-65). In some embodiments, the deimmunization process does not alter the binding affinity of the antibody.
[0109] In some embodiments, the anti-FAM19A5 antibody is, for example, 10 -7 M or less, 10 -8 M or less, 10 -9 M (1nM) or less, 10 -10 M(0.1nM) or less, 10 -11 M or less, or 10 -12 M or less, e.g. 10 -12 M~10 -7 M, 10 -11 M~10 -7 M, 10 -10 M~10 -7 M or 10 -9 M~10 -7 M, e.g. 10 -12 M, 5 x 10 -12 M, 10 -11 M, 5 x 10 -11 M, 10 -10 M, 5 x 10 -10 M, 10 -9 M, 5 x 10 -9 M, 10 -8 M, 5 x 10 -8 M, 10 -7 M, or 5 x 10 -7 K of M DThe antibodies specifically bind to soluble human FAM19A5 or membrane-bound human FAM19A5 with high affinity. Standard assays for assessing the binding ability of antibodies to human FAM19A5 of various species are known in the art and include, for example, ELISA, Western blot, and RIA. Suitable assays are described in detail in the Examples. The binding kinetics (e.g., binding affinity) of the antibodies can also be assessed by standard assays known in the art, such as ELISA, BIACORE® assay, or KinExA. Assays for assessing the effect of antibodies on the functional properties (e.g., ligand binding) of FAM19A5 are described in further detail below and in the Examples.
[0110] In some embodiments, anti-FAM19A5 antibodies have a titer of 10, as determined, for example, by ELISA. -7 M or less, 10 -8 M (10nM) or less, 10 -9 M (1nM) or less, 10 -10 M or less, 10 -12 M~10 -7 M, 10 -11 M~10 -7 M, 10 -10 M~10 -7 M, 10 -9 M~10 -7 M or 10 -8 M~10 -7 K of M D In some embodiments, the anti-FAM19A5 antibody specifically binds to soluble human FAM19A5 having a K of 10 nM or less, for example, 0.1 to 10 nM, 0.1 to 5 nM, 0.1 to 1 nM, 0.5 to 10 nM, 0.5 to 5 nM, 0.5 to 1 nM, 1 to 10 nM, 1 to 5 nM, or 5 to 10 nM. DIt specifically binds to soluble FAM19A5 having the formula: In some embodiments, the anti-FAM19A5 antibody has a K of about 1 pM, 2 pM, 3 pM, 4 pM, 5 pM, 6 pM, 7 pM, 8 pM, 9 pM, 10 pM, 20 pM, 30 pM, 40 pM, 50 pM, 60 pM, 70 pM, 80 pM, 90 pM, 100 pM, 200 pM, 300 pM, 400 pM, 500 pM, 600 pM, 700 pM, 800 pM, or 900 pM, or about 1 nM, 2 nM, 3 nM, 4 nM, 5 nM, 6 nM, 7 nM, 8 nM, or 9 nM, or about 10 nM, 20 nM, 30 nM, 40 nM, 50 nM, 60 nM, 70 nM, 80 nM, or 90 nM, as determined by ELISA. D It specifically binds to soluble human FAM19A5 having the formula:
[0111] In some embodiments, anti-FAM19A5 antibodies have a titer of 10, as determined, for example, by ELISA. -7 M or less, 10 -8 M (10nM) or less, 10 -9 M (1nM) or less, 10 -10 M or less, 10 -12 M~10 -7 M, 10 -11 M~10 -7 M, 10 -10 M~10 -7 M, 10 -9 M~10 -7 M or 10 -8 M~10 -7 K of M D In certain embodiments, the anti-FAM19A5 antibody specifically binds to membrane-bound human FAM19A5 having a K of 10 nM or less, e.g., 0.1 to 10 nM, 0.1 to 5 nM, 0.1 to 1 nM, 0.5 to 10 nM, 0.5 to 5 nM, 0.5 to 1 nM, 1 to 10 nM, 1 to 5 nM, or 5 to 10 nM, as determined by ELISA. DIt specifically binds to membrane-bound human FAM19A5, which has the structure In some embodiments, the anti-FAM19A5 antibody has a K of about 1 pM, 2 pM, 3 pM, 4 pM, 5 pM, 6 pM, 7 pM, 8 pM, 9 pM, 10 pM, 20 pM, 30 pM, 40 pM, 50 pM, 60 pM, 70 pM, 80 pM, 90 pM, 100 pM, 200 pM, 300 pM, 400 pM, 500 pM, 600 pM, 700 pM, 800 pM, or 900 pM, or about 1 nM, 2 nM, 3 nM, 4 nM, 5 nM, 6 nM, 7 nM, 8 nM, or 9 nM, or about 10 nM, 20 nM, 30 nM, 40 nM, 50 nM, 60 nM, 70 nM, 80 nM, or 90 nM, as determined by ELISA. D It specifically binds to membrane-bound human FAM19A5, which has the structure
[0112] The anti-FAM19A5 antibodies disclosed herein can delay or inhibit the development of gliomas, and can delay, slow, or limit the onset or development of non-specific reactive changes in glial cells in the central nervous system (CNS, e.g., brain and / or spinal cord) in response to injury or damage due to, for example, trauma, cerebrospinal cord injury, brain tumor, infection, ischemia, stroke, autoimmune response, and / or neurodegenerative disease.
[0113] The anti-FAM19A5 antibodies disclosed herein can delay, inhibit, slow, limit, reduce, or prevent excessive or abnormal proliferation of reactive astrocytes and the associated deleterious effects on the CNS. For example, the anti-FAM19A5 antibodies disclosed herein can inhibit or prevent the abnormal increase in astrocyte numbers due to destruction of neurons from, for example, CNS injury, trauma, injury, cerebrospinal cord injury, brain tumor, infection, ischemia, stroke, autoimmune response, and / or neurodegenerative disease; inhibit or prevent scar formation in the CNS; inhibit or reduce the release of neurotoxic levels of reactive oxygen species or potentially excitotoxic glutamate; and reduce or suppress seizures, pain, and / or secondary degeneration after CNS injury. The anti-FAM19A5 antibodies disclosed herein can preferably promote, stimulate, increase, or activate the regrowth of neurons and / or axons after CNS injury or injury.
[0114] The anti-FAM19A5 antibodies disclosed herein can inhibit the expression of chondroitin sulfate proteoglycans, including proteoglycans composed of a protein core and chondroitin sulfate (CSPG), such as aggrecan (CSPG1), versican (CSPG2), neurocan (CSPG3), CSPG4 (or neuron-glial antigen 2 (NG2)), CSPG5, SMC3 (CSPG6, structural maintenance of chromosome 3), brevican (CSPG7), CD44 (CSPG8, cluster of differentiation 44), and phosphacan-neurocan (CSPG3). In some embodiments, the anti-FAM19A5 antibodies disclosed herein inhibit, lower, or decrease the levels of neurocan and / or NG2, or the activity of neurocan and / or NG2.
[0115] The anti-FAM19A5 antibodies disclosed herein can increase the expression of c-fos and pERK in neuronal nuclei, e.g., can increase c-fos and pERK mRNA, protein, and / or protein activity. The anti-FAM19A5 antibodies disclosed herein can also increase or enhance the expression level of GAP43 mRNA, GAP43 protein, or increase or enhance GAP43 protein activity.
[0116] In some embodiments, an anti-FAM19A5 antibody of the present disclosure comprises a heavy chain CDR1, CDR2, and CDR3, and a light chain CDR1, CDR2, and CDR3, wherein the heavy chain CDR1, CDR2, and CDR3 comprise the CDR1, CDR2, and CDR3 sequences set forth in SEQ ID NOs:5, 6, and 7, respectively, each of which optionally comprises one, two, or three mutations; wherein the light chain CDR1, CDR2, and CDR3 comprise the CDR1, CDR2, and CDR3 sequences of SEQ ID NOs:8, 9, and 10, respectively, and at least one of the light chain CDR1, CDR2, and CDR3 comprises one, two, or three mutations; and wherein the antibody comprises a VH and SEQ ID NO:11. It has reduced immunogenicity in human subjects compared to a reference antibody comprising the VL presented in ID NO:12.
[0117] In some embodiments, the mutations contained in the antibody are substitutions, deletions, and / or insertions. In one embodiment, the mutations are substitutions, e.g., conservative substitutions. A "conservative substitution" (also called a conservative substitution) is a substitution of a given amino acid with a similar biochemical It refers to an amino acid substitution that results in a change to a different amino acid with properties (eg, charge, hydrophobicity, and size).
[0118] There are various ways to classify amino acids, but they are generally divided into six main groups based on the general chemical properties of their structure and R groups.
[0119] [Table 3]
[0120] Conversely, radical substitutions or radical replacements are amino acid substitutions that exchange an initial amino acid for a final amino acid with different physicochemical properties. In certain embodiments, the amino acid mutations in the FAM19A5 antibody are radical substitutions. In other embodiments, the amino acid mutations in the FAM19A5 antibody are a combination of conservative and radical substitutions.
[0121] In some embodiments, the heavy chain CDR3 of an anti-FAM19A5 antibody disclosed herein comprises the amino acid sequence set forth in SEQ ID NO:7 (GSASYITAATIDA). In certain embodiments, the heavy chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:7 with one, two, or three mutations. In some embodiments, the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5 (SYQMG). In certain embodiments, the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5 with one, two, or three mutations. In some embodiments, the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:6 (VINKSGSDTS). In certain embodiments, the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:6 with one, two, or three mutations. In certain embodiments, the mutation comprises a substitution of valine with an aliphatic amino acid at amino acid 1 of SEQ ID NO:6. In certain embodiments, the aliphatic amino acid comprises alanine. In some embodiments, the mutation comprises a substitution of an aliphatic amino acid for serine at amino acid 5 of SEQ ID NO: 6. In certain embodiments, the aliphatic amino acid comprises glycine.
[0122] In some embodiments, the light chain CDR1 of an anti-FAM19A5 antibody of the present disclosure comprises the amino acid sequence set forth in SEQ ID NO:8 (SGGGSSGYGYG). In specific embodiments, the light chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:8 with one, two, or three mutations. In some embodiments, the mutation comprises a substitution of glycine with an aliphatic amino acid at amino acid 4 of SEQ ID NO:8. In some embodiments, the aliphatic amino acid comprises alanine, valine, leucine, or isoleucine. In specific embodiments, the aliphatic amino acid is alanine.
[0123] In some embodiments, the light chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:9 (WNDKRPS). In certain embodiments, the light chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:9 with one, two, three, or four mutations. In some embodiments, the mutation comprises a tryptophan substitution at amino acid 1 of SEQ ID NO:9 with a basic amino acid. In some embodiments, the basic amino acid comprises arginine, histidine, or lysine. In certain embodiments, the basic amino acid is lysine. In some embodiments, the mutation comprises a tryptophan substitution at amino acid 1 of SEQ ID NO:9 with a basic amino acid. In some embodiments, the mutation comprises a substitution of an asparagine with an acidic amino acid at amino acid 2 of SEQ ID NO:9. In certain embodiments, the acidic amino acid comprises aspartic acid or glutamic acid. In some embodiments, the acidic amino acid is aspartic acid. In some embodiments, the mutation comprises a substitution of an aspartic acid with a hydroxyl or sulfur / selenium-containing amino acid at amino acid 3 of SEQ ID NO:9. In certain embodiments, the hydroxyl or sulfur / selenium-containing amino acid comprises serine. In some embodiments, the mutation comprises a substitution of a lysine with an acidic amino acid at amino acid 4 of SEQ ID NO:9. In some embodiments, the acidic amino acid comprises aspartic acid or glutamic acid. In some embodiments, the acidic amino acid is glutamic acid.
[0124] In some embodiments, the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO: 10 (GNDDYSSDSGYVGV). In certain embodiments, the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO: 10 with one, two, or three mutations.
[0125] In some embodiments, the anti-FAM19A5 antibody of the present disclosure is humanized. In other embodiments, the humanized anti-FAM19A5 antibody comprises framework regions of a human antibody. In specific embodiments, the anti-FAM19A5 antibody comprises one or more (e.g., 1, 2, 3, 4, 5, 6, 7 or more) mutations in the framework regions of the antibody (i.e., FR1, FR2, FR3, and FR4 of the VH and / or FR1, FR2, FR3, and FR4 of the VL). In some embodiments, the anti-FAM19A5 antibody comprises a mutation in FR1 of the VH. In specific embodiments, the mutation comprises an amino acid substitution at residue 21 of SEQ ID NO:11 (e.g., valine for an aliphatic amino acid, e.g., serine). In some embodiments, the mutation comprises an amino acid substitution at residue 19 of SEQ ID NO:11 (e.g., serine for a basic amino acid, e.g., arginine). In other embodiments, the anti-FAM19A5 antibody comprises one or more mutations in FR2 of the VH. In certain embodiments, the mutation comprises an amino acid substitution at residue 49 of SEQ ID NO:11 (e.g., glycine for a hydroxyl or sulfur / selenium-containing amino acid, e.g., serine). In some embodiments, the anti-FAM19A5 antibodies of the present disclosure comprise one or more mutations (e.g., 1, 2, 3, 4, 5, 6, or 7 mutations) within FR3 of VH. In certain embodiments, the mutation comprises an amino acid substitution at residue 79 of SEQ ID NO:11 (e.g., valine for a basic amino acid, e.g., lysine), residue 80 (e.g., arginine for an aromatic amino acid, e.g., tyrosine), residue 83 (e.g., lysine for a hydroxyl or sulfur / selenium-containing amino acid, e.g., methionine), residue 85 (e.g., asparagine for a hydroxyl or sulfur / selenium-containing amino acid, e.g., serine), residue 92 (e.g., glycine for an aliphatic amino acid, e.g., alanine), and / or residue 93 (e.g., threonine for an aliphatic amino acid, e.g., valine)
[0126] In some embodiments, an anti-FAM19A5 antibody of the present disclosure comprises a mutation (e.g., one or two mutations) in FR1 of VL. In certain embodiments, the mutation comprises an amino acid substitution at residue 16 (e.g., valine for an aliphatic amino acid, such as alanine). In certain embodiments, the mutation comprises an amino acid substitution at residue 17 of SEQ ID NO:12 (e.g., lysine for a basic amino acid, such as arginine). In some embodiments, an anti-FAM19A5 antibody disclosed herein comprises one or more mutations in FR2 of VL. In certain embodiments, the mutation comprises a deletion of amino acid residue 37 of SEQ ID NO:12. In some embodiments, an anti-FAM19A5 antibody comprises a mutation in FR3 of VL. In certain embodiments, the mutation comprises a deletion of amino acid residue 37 of SEQ ID NO:12. In some embodiments, the mutation comprises a substitution at amino acid residue 64 of SEQ ID NO: 12 (e.g., lysine for a hydroxyl or sulfur / selenium-containing amino acid, e.g., serine). In some embodiments, the mutation comprises a substitution at residue 73 of SEQ ID NO: 12 (e.g., threonine for a hydroxyl or sulfur / selenium-containing amino acid, e.g., serine).
[0127] In some embodiments, the anti-FAM19A5 antibodies disclosed herein comprise heavy chain CDR1, CDR2, and CDR3, and light chain CDR1, CDR2, and CDR3, wherein (i) the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5; (ii) the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:6; (iii) the heavy chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:7; (iv) the light chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:13; (v) the light chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:14; and (vi) the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:10.
[0128] In some embodiments, the anti-FAM19A5 antibodies disclosed herein comprise heavy chain CDR1, CDR2, and CDR3, and light chain CDR1, CDR2, and CDR3, wherein (i) the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5; (ii) the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:27; (iii) the heavy chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:7; (iv) the light chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:13; (v) the light chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:29; and (vi) the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:10.
[0129] In some embodiments, the anti-FAM19A5 antibodies disclosed herein comprise heavy chain CDR1, CDR2, and CDR3, and light chain CDR1, CDR2, and CDR3, wherein (i) the heavy chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:5; (ii) the heavy chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:28; (iii) the heavy chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:7; (iv) the light chain CDR1 comprises the amino acid sequence set forth in SEQ ID NO:13; (v) the light chain CDR2 comprises the amino acid sequence set forth in SEQ ID NO:29; and (vi) the light chain CDR3 comprises the amino acid sequence set forth in SEQ ID NO:10.
[0130] In some embodiments, the anti-FAM19A5 antibody comprises a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:11, and / or wherein the VL comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:12, wherein the antibody has reduced immunogenicity compared to a reference antibody comprising the VH set forth in SEQ ID NO:11 and the VL set forth in SEQ ID NO:12.
[0131] In some embodiments, the anti-FAM19A5 antibody comprises a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:17, and / or wherein the VL comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:17. The antibody comprises an amino acid sequence that is at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99% or about 100% identical to the amino acid sequence set forth in SEQ ID NO:18, wherein the antibody has reduced immunogenicity compared to a reference antibody comprising a VH set forth in SEQ ID NO:11 and a VL set forth in SEQ ID NO:12.
[0132] In some embodiments, the anti-FAM19A5 antibody comprises a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:30, and / or wherein the VL comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:32, wherein the antibody has reduced immunogenicity compared to a reference antibody comprising the VH set forth in SEQ ID NO:11 and the VL set forth in SEQ ID NO:12.
[0133] In some embodiments, the anti-FAM19A5 antibody comprises a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:31, and / or wherein the VL comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO:32, wherein the antibody has reduced immunogenicity compared to a reference antibody comprising the VH set forth in SEQ ID NO:11 and the VL set forth in SEQ ID NO:12.
[0134] In some embodiments, an anti-FAM19A5 antibody of the present disclosure cross-competes with a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH is selected from the group consisting of SEQ ID NO: and the VL comprises the amino acid sequence set forth in SEQ ID NO: 12. In some embodiments, the anti-FAM19A5 antibody binds to the same human FAM19A5 epitope as a reference antibody comprising a VH and a VL, wherein the VH comprises the amino acid sequence set forth in SEQ ID NO: 11 and the VL comprises the amino acid sequence set forth in SEQ ID NO: 12. In some embodiments, the human FAM19A5 epitope comprises the amino acid sequence set forth in SEQ ID NO: 12. In some embodiments, the human FAM19A5 epitope comprises the amino acid sequence set forth in SEQ ID NO: 15. In some embodiments, the human FAM19A5 epitope comprises the amino acid sequence set forth in SEQ ID NO: 16. ID NO:16).
[0135] In certain embodiments, an anti-FAM19A5 antibody of the present disclosure cross-competes for binding to (or inhibits binding of) a human FAM19A5 epitope with a reference antibody (eg, the 1-65 antibody).
[0136] In certain embodiments, the anti-FAM19A5 antibody inhibits the binding of the reference antibody (e.g., the 1-65 antibody) to human FAM19A5 by at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100%. Competing antibodies bind to the same epitope, overlapping epitopes, or adjacent epitopes (e.g., as evidenced by steric hindrance). Whether two antibodies compete with each other for binding to a target can be determined using competition experiments known in the art, such as RIA and EIA.
[0137] Techniques for determining whether two antibodies bind to the same epitope include, for example, epitope mapping methods, such as x-ray analysis of antigen:antibody complex crystals, which provide atomic resolution of the epitope, hydrogen / deuterium exchange mass spectrometry (HDX-MS), and methods that monitor antibody binding to antigen fragments or mutated variants of the antigen, where loss of binding due to variations in amino acid residues within the antigen sequence is often indicative of epitope components, and computational combinatorial methods for epitope mapping are contemplated.
[0138] Anti-FAM19A5 antibodies useful in the methods of the invention may bind to one or more epitopes of mature human FAM19A5, as determined, for example, by binding the antibody to a fragment of human FAM19A5. In some embodiments, the anti-FAM19A5 antibodies of the present disclosure have the amino acid sequence CDMLPCLEGEGCDLLINRSG (amino acids 90-109 of SEQ ID NO:15 or SEQ ID NO:2), e.g., SEQ ID NO: In certain embodiments, the anti-FAM19A5 antibody binds to a fragment of SEQ ID NO: 15 that maps to an epitope having at least 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 amino acids. In certain embodiments, the anti-FAM19A5 antibody binds to SEQ ID NO: 15 at one or more amino acid residues 99-107 (i.e., EGCDLLINR), such as amino acid residues 102, 103, 105, and 107 (i.e., DL-IR).
[0139] In some embodiments, at least one epitope has an amino acid sequence that is at least 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to SEQ ID NO: 15. In some embodiments, the anti-FAM19A5 antibodies of the present disclosure bind to SEQ ID NO: 15 or a fragment thereof in its native form (i.e., native). In some embodiments, the anti-FAM19A5 antibodies bind to both glycosylated and unglycosylated human FAM19A5.
[0140] In some embodiments, the invention provides antibodies or antigen-binding fragments thereof that bind to FAM19A5 (e.g., human FAM19A5) with 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or higher affinity relative to other proteins in the FAM19A5 family, as measured, for example, by immunoassay (e.g., ELISA), surface plasmon resonance, or kinetic exclusion assay. In certain embodiments, the anti-FAM19A5 antibody or antigen-binding fragment thereof binds to FAM19A5 (e.g., human FAM19A5) without cross-reactivity with other proteins in the FAM19A family, as measured, for example, by immunoassay.
[0141] In some embodiments, an anti-FAM19A5 antibody of the present disclosure is not a native or naturally occurring antibody. For example, in some embodiments, an anti-FAM19A5 antibody has post-translational modifications that differ from those of naturally occurring antibodies, such as by having more, fewer, or different types of post-translational modifications.
[0142] The amino acid sequences of the VH and VL CDRs of exemplary antibodies of the disclosure are provided in Tables 3 and 4, respectively. The VH and VL amino acid sequences are provided in Tables 5 and 6, respectively.
[0143] [Table 4]
[0144] [Table 5]
[0145] [Table 6]
[0146] [Table 7]
[0147] In some embodiments, an anti-FAM19A5 antibody of the present disclosure comprises heavy and light chain variable regions, wherein the heavy chain variable region (VH) comprises the heavy chain CDR1, CDR2, and CDR3 of SEQ ID NO: 17, and / or the light chain variable region (VL) comprises the light chain CDR1, CDR2, and CDR3 of SEQ ID NO: 18. In other embodiments, the anti-FAM19A5 antibody comprises the VH set forth in the amino acid sequence of SEQ ID NO: 17, and / or the VL comprises the amino acid sequence of SEQ ID NO: 18.
[0148] In some embodiments, an anti-FAM19A5 antibody of the present disclosure comprises heavy and light chain variable regions, wherein the heavy chain variable region (VH) comprises the heavy chain CDR1, CDR2, and CDR3 of SEQ ID NO: 30, and / or the light chain variable region (VL) comprises the light chain CDR1, CDR2, and CDR3 of SEQ ID NO: 32. In other embodiments, the anti-FAM19A5 antibody comprises the VH set forth in the amino acid sequence of SEQ ID NO: 30, and / or the VL comprises the amino acid sequence of SEQ ID NO: 32.
[0149] In some embodiments, an anti-FAM19A5 antibody of the present disclosure comprises heavy and light chain variable regions, wherein the heavy chain variable region (VH) comprises the heavy chain CDR1, CDR2, and CDR3 of SEQ ID NO: 31, and / or the light chain variable region (VL) comprises the light chain CDR1, CDR2, and CDR3 of SEQ ID NO: 32. In other embodiments, the anti-FAM19A5 antibody comprises the VH set forth in the amino acid sequence of SEQ ID NO: 31, and / or the VL comprises the amino acid sequence of SEQ ID NO: 32.
[0150] In some embodiments, the anti-FAM19A5 antibody comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO: 17, 30, or 31, and / or the light chain variable region comprises an amino acid sequence at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, at least about 99%, or about 100% identical to the amino acid sequence set forth in SEQ ID NO: 18 or 32, wherein VH comprises CDR1, CDR2, and CDR3 of SEQ ID NO: 17, 30, or 31, and VL comprises CDR1, CDR2, and CDR3 of SEQ ID NO: 17, 30, or 31. Contains CDR1, CDR2 and CDR3 of NO:18 or 32.
[0151] A VH domain described herein, or one or more CDRs thereof, may be linked to a constant domain to form a heavy chain, e.g., a full-length heavy chain. Similarly, a VL domain described herein, or one or more CDRs thereof, may be linked to a constant domain to form a light chain, e.g., a full-length light chain. The full-length heavy chain and full-length light chain combine to form a full-length antibody.
[0152] Thus, in certain embodiments, the present invention provides antibodies comprising an antibody light chain and a heavy chain, e.g., separate light and heavy chains. With respect to the light chain, in certain embodiments, the light chain of an antibody described herein is a kappa light chain. In other specific embodiments, the light chain of an antibody described herein is a lambda light chain. In yet other specific embodiments, the light chain of an antibody described herein is a human kappa light chain or a human lambda light chain. In certain embodiments, an antibody of the present invention that specifically binds to a FAM19A5 polypeptide (e.g., human FAM19A5) comprises a light chain comprising any of the VL or VL CDR amino acid sequences described herein, wherein the constant region of the light chain comprises the amino acid sequence of a human kappa light chain constant region. In certain embodiments, an antibody of the present invention that specifically binds to a FAM19A5 polypeptide (e.g., human FAM19A5) comprises a light chain comprising any of the VL or VL CDR amino acid sequences described herein, wherein the constant region of the light chain comprises the amino acid sequence of a human lambda light chain constant region. Non-limiting examples of human constant region sequences are described in the art, see, for example, Patent No. 5,693,780 and Kabat EA et al., (1991).
[0153] With respect to the heavy chain, in some embodiments, the heavy chain of the antibodies described herein can be an alpha (α), delta (δ), epsilon (ε), gamma (γ), or mu (μ) heavy chain. In other specific embodiments, the heavy chain of the antibodies described herein can comprise a human alpha (α), delta (δ), epsilon (ε), gamma (γ), or mu (μ) heavy chain. In one embodiment, an antibody described herein that specifically binds to FAM19A5 (e.g., human FAM19A5) comprises a heavy chain comprising a VH or VH CDR amino acid sequence described herein, wherein the constant region of the heavy chain comprises the amino acid sequence of a human gamma (γ) heavy chain constant region. In other embodiments, an antibody described herein that specifically binds to FAM19A5 (e.g., human FAM19A5) comprises a heavy chain comprising a VH or VH CDR amino acid sequence disclosed herein, wherein the constant region of the heavy chain comprises the amino acids of a human heavy chain described herein or known in the art. Non-limiting examples of human constant region sequences are described in the art, e.g., U.S. Pat. No. 5,693,780 and Kabat et al. See EA et al., (1991).
[0154] In some embodiments, antibodies described herein that specifically bind to FAM19A5 (e.g., human FAM19A5) comprise a VL domain and a VH domain comprising a VH or VH CDR and a VL and VL CDR, wherein the constant region comprises the amino acid sequence of an IgG, IgE, IgM, IgD, IgA, or IgY immunoglobulin molecule, or the constant region of a human IgG, IgE, IgM, IgD, IgA, or IgY immunoglobulin molecule. In other specific embodiments, antibodies of the invention that specifically bind to FAM19A5 (e.g., human FAM19A5) comprise a VL domain and a VH domain comprising any amino acid sequence described herein, wherein the constant region comprises the amino acid sequence of an IgG, IgE, IgM, IgD, IgA, or IgY immunoglobulin molecule, or the constant region of any subclass of immunoglobulin molecule (e.g., IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2). In some embodiments, the constant region comprises the amino acid sequence of the constant region of naturally occurring human IgG, including subclasses (e.g., IgG1, IgG2, IgG3, or IgG4) and allotypes (e.g., G1m, G2m, G3m, and nG4m), and variants thereof. See, e.g., Vidarsson G. et al., Front Immunol. 5:520 (posted online October 20, 2014) and Jefferis R. and Lefranc MP, mAbs 1:4, 1-7 (2009). In some embodiments, the constant region comprises the amino acid sequence of the constant region of human IgG1, IgG2, IgG3, or IgG4, or a variant thereof.
[0155] In certain embodiments, the anti-FAM19A5 antibodies disclosed herein do not have Fc effector functions, such as complement-dependent cytotoxicity (CDC) and / or antibody-dependent cellular phagocytosis (ADCP). Effector functions are mediated by the Fc region, and the residues closest to the hinge region in the CH2 domain of the Fc region contain highly overlapping binding sites for Clq (complement) and IgG-Fc receptors (FcγR) on effector cells of the innate immune system and are therefore responsible for the antibody's effector function. Furthermore, IgG2 and IgG4 antibodies have lower levels of Fc effector function than IgG1 and IgG3 antibodies. The effector functions of antibodies can be reduced or avoided by individual approaches known in the art, including: (1) the use of antibody fragments lacking an Fc region (e.g., Fab, F(ab')2, single-chain Fv (scFv), or sdAbs composed of monomeric VH or VL domains); (2) the generation of aglycosylated antibodies, which can be produced by deleting or altering carbohydrate attachment residues, enzymatically removing carbohydrates, producing antibodies in cells cultured in the presence of glycosylation inhibitors, or expressing antibodies in cells (e.g., bacterial host cells) that cannot glycosylate proteins (see, e.g., U.S. Patent Publication No. 20120100140); (3) the use of an Fc region from an IgG subtype with reduced effector function (e.g., an Fc region from an IgG2 or IgG4 antibody or a chimeric Fc region comprising a CH2 domain from an IgG2 or IgG4 antibody, see, e.g., U.S. Patent Publication No. 20120100140 and Lau C et al., J. Immunol. 191:4769-4777 (2013); and (4) generation of Fc regions with mutations that reduce or abolish Fc function (see U.S. Patent Publication No. 20120100140 and the U.S. and PCT applications cited therein and An et al., mAbs 1:6,572-579 (2009)).
[0156] Thus, in some embodiments, the anti-FAM19A5 antibodies disclosed herein are Fab, Fab', F(ab'), Fv, single-chain Fv (scFv), or sdAbs composed of monomeric VH or VL domains. Such antibody fragments are known in the art and described above.
[0157] In some embodiments, the anti-FAM19A5 antibody is a single-chain Fv. The amino acid sequences of exemplary anti-FAM19A5 scFvs are provided in Table 7 below.
[0158] [Table 8]
[0159] In some embodiments, the anti-FAM19A5 antibodies disclosed herein comprise an Fc region with reduced or absent Fc effector function. In some embodiments, the constant region comprises the amino acid sequence of an Fc region of human IgG2 or IgG4. In some embodiments, the anti-FAM19A5 antibody is of the IgG2 / IgG4 isotype. In some embodiments, the anti-FAM19A5 antibody comprises a chimeric Fc region comprising a CH2 domain from an IgG antibody of the IgG4 isotype and a CH3 domain from an IgG antibody of the IgG1 isotype, or a chimeric Fc region comprising a hinge region from IgG2 and a CH2 region from IgG4, or an Fc region with mutations that result in reduced or absent Fc function. Fc regions with reduced or absent Fc effector functions include those known in the art (see, e.g., Lau C et al., J Immunol. 191:4769-4777 (2013); An et al., mAbs 1:6, 572-579 (2009); and U.S. Patent Publication No. 20120100140 and the U.S. patents, patent publications, and PCT publications cited therein). In addition, Fc regions with reduced or absent Fc effector functions can be readily produced by one of skill in the art.
[0160] III. Nucleic acid molecules Another aspect of the present invention relates to one or more nucleic acid molecules encoding any one of the antibodies described herein. The nucleic acids may be present in whole cells, in a cell lysate, or in a partially purified or substantially pure form. A nucleic acid is "isolated" or "substantially pure" when it has been purified from other cellular components or other contaminants, such as other cellular nucleic acids (e.g., other chromosomal DNA, e.g., chromosomal DNA linked to the naturally isolated DNA) or proteins, by standard techniques, including alkaline / SDS treatment, CsCl banding, column chromatography, restriction enzyme analysis, agarose gel electrophoresis, and other techniques known in the art (see F. Ausubel, et al., ed. (1987) Current Protocols in Molecular Biology, Greene Publishing and Wiley Interscience, New York). The nucleic acids disclosed herein can be, for example, DNA or RNA, and may or may not contain intronic sequences. In certain embodiments, the nucleic acid is a cDNA molecule.
[0161] The nucleic acids disclosed herein can be obtained using standard molecular biology techniques. In the case of antibodies expressed by hybridomas (e.g., hybridomas produced from transgenic mice carrying human immunoglobulin genes, as described below), cDNAs encoding the light and heavy chains of the antibodies produced by the hybridomas can be obtained by standard PCR amplification or cDNA cloning techniques. In the case of antibodies obtained from an immunoglobulin gene library (e.g., using phage display technology), nucleic acids encoding the antibodies can be recovered from the library.
[0162] Specific nucleic acid molecules disclosed herein encode the VH, VL, and VL sequences of the anti-FAM19A5 antibodies of the invention. Exemplary DNA sequences encoding the VH, VL, and VL sequences of such antibodies are provided in Tables 8 and 9, respectively.
[0163] [Table 9]
[0164] [Table 10]
[0165] Methods for producing the anti-FAM19A5 antibodies disclosed herein include expressing the heavy and light chains in a cell line that contains nucleotide sequences encoding the heavy and light chains along with a signal peptide, e.g., SEQ ID NOs: 21 and 22, respectively. Host cells containing these nucleotide sequences are encompassed by the invention.
[0166] After the DNA fragments encoding the VH and VL segments are obtained, these DNA fragments can be further manipulated by standard recombinant DNA techniques, for example, to convert the variable region genes into full-length antibody chain genes, Fab fragment genes, or scFv genes. In these manipulations, the VL- or VH-encoding DNA fragment is operably linked to another DNA fragment encoding another protein, such as an antibody constant region or a flexible linker. As used herein, the term "operably linked" means that the two DNA fragments are joined such that the amino acid sequences encoded by the two DNA fragments remain in-frame.
[0167] The isolated DNA encoding the VH region can be converted into a full-length heavy chain gene by operably linking the VH-encoding DNA to another DNA molecule encoding the heavy chain constant region (hinge, CH1, CH2, and / or CH3). The sequences of human heavy chain constant region genes are known in the art (see, e.g., Kabat, EA, et al., (1991) Sequences of Proteins of Immunological Interest, Fifth Edition, US Department of Health and Human Services, NIH Publication No. 91-3242), and DNA fragments containing these regions can be obtained by standard PCR amplification. The heavy chain constant region can be an IgG1, IgG2, IgG3, IgG4, IgA, IgE, IgM, or IgD constant region, e.g., an IgG2 and / or IgG4 constant region. In the case of a Fab fragment heavy chain gene, the VH-encoding DNA can be operably linked to another DNA molecule encoding only the heavy chain CH1 constant region.
[0168] The isolated DNA encoding the VL region can be converted to a full-length light chain gene (as well as a Fab light chain gene) by operably linking the VL-encoding DNA to another DNA molecule encoding the light chain constant region, C1. The sequences of human light chain constant region genes are known in the art (see, e.g., Kabat, EA, et al., (1991) Sequences of Human Light Chain Constant Region Genes, Vol. 1, No. 1, pp. 111-115, 1991). of Proteins of Immunological Interest, Fifth Edition, US Department of Health and (See, Human Services, NIH Publication No. 91-3242), DNA fragments containing these regions can be obtained by standard PCR amplification. The light chain constant region can be a kappa or lambda constant region.
[0169] To generate the scFv gene, the VH- and VL-encoding DNA fragments are operably linked to another fragment encoding a flexible linker, e.g., encoding the amino acid sequence (Gly4-Ser)3, so that the VH and VL sequences can be expressed as a contiguous single-chain protein with the VL and VH regions connected by the flexible linker (e.g., Bird et al., (1988) Science 242:423-426; Huston ...). (See McCafferty et al., (1988) Proc. Natl. Acad. Sci. USA 85:5879-5883; McCafferty et al., (1990) Nature 348:552-554.) The amino acid and nucleotide sequences of exemplary anti-FAM19A5 scFvs are provided in Table 7 (above) and Table 10, respectively.
[0170] [Table 11]
[0171] In some embodiments, the invention provides a vector comprising an isolated nucleic acid molecule comprising a nucleotide sequence encoding an antibody. In other embodiments, the vector can be used in gene therapy methods.
[0172] Vectors suitable for the present invention include expression vectors, viral vectors, and plasmid vectors. In one embodiment, the vector is a viral vector.
[0173] As used herein, an expression vector refers to any nucleic acid construct that, when introduced into an appropriate host cell, contains the necessary elements for transcription and genetic decoding of an inserted coding sequence, or, in the case of RNA viral vectors, the necessary elements for replication and genetic decoding. Expression vectors can include plasmids, phagemids, viruses, and derivatives thereof.
[0174] An expression vector of the present disclosure can include a polynucleotide encoding an antibody disclosed herein. In one embodiment, the coding sequence for the antibody is operably linked to an expression control sequence. As used herein, two nucleic acid sequences are operably linked when they are covalently linked in a manner that allows each component nucleic acid sequence to maintain its functionality. A coding sequence and a gene expression control sequence are operably linked when they are covalently linked in a manner that places the expression, transcription, and / or translation of the coding sequence under the influence or control of the gene expression control sequence. Two DNA sequences are operably linked if induction of a promoter in the 5' gene expression sequence results in transcription of the coding sequence and if the binding properties between the two DNA sequences (1) do not result in the introduction of frameshift mutations, (2) do not interfere with the ability of the promoter region to direct transcription of the coding sequence, or (3) do not interfere with the ability of the corresponding RNA transcript to be translated into protein. Thus, a gene expression sequence would be operably linked to a coding nucleic acid sequence if the gene expression sequence affects transcription of the coding nucleic acid sequence so that the resulting transcript can be translated into the desired antibody.
[0175] Viral vectors include, but are not limited to, nucleic acid sequences from the following viruses: retroviruses, such as Moloney murine leukemia virus, Harvey murine sarcoma virus, mouse mammary tumor virus, and Rous sarcoma virus; lentiviruses; adenoviruses; adeno-associated viruses; SV40-type viruses; polyomaviruses; Epstein-Barr viruses; papillomaviruses; herpes viruses; vaccinia viruses; infantile paralysis viruses; and RNA viruses, such as retroviruses. Other vectors known in the art can be readily used. Certain viral vectors are based on non-cytopathogenic eukaryotic viruses in which nonessential genes have been replaced with a gene of interest. Non-cytopathogenic viruses include retroviruses, whose life cycle involves reverse transcription of genomic viral RNA into DNA with subsequent viral integration into host cell DNA. Retroviruses have been approved for human gene therapy trials. Replication-deficient retroviruses (i.e., capable of directing the synthesis of desired proteins but unable to manufacture infectious particles) are most useful. Such genetically modified retroviral expression vectors have general utility for highly efficient transduction of genes in vivo. Standard protocols for generating replication-deficient retroviruses (including the steps of incorporating exogenous genetic material into a plasmid, transfecting a packaging cell line with the plasmid, generating recombinant retrovirus by the packaging cell line, collecting viral particles from tissue culture medium, and infecting target cells with the viral particles) are provided in Kriegler, M., Gene Transfer and Expression, A Laboratory Manual, W.H. Freeman Co., New York (1990) and Murry, E.J., Methods in Molecular Biology, Vol. 7, Humana Press, Inc., Cliffton, NJ (1991).
[0176] In one embodiment, the virus is a double-stranded DNA virus called adeno-associated virus. Adeno-associated viruses are replication-poorly operable and can infect a wide range of cell types and species. They also have advantages such as heat and lipid solvent stability; high transduction frequencies in cells of various lineages, including hematopoietic cells; and a high transduction capacity due to the lack of superinfection suppression. As reported, adeno-associated viruses can integrate into human cellular DNA in a site-specific manner, thereby minimizing the potential for insertional mutagenesis and the variability of inserted gene expression profiles following retroviral infection. Furthermore, wild-type adeno-associated virus infections can be tracked in tissues for over 100 times in the absence of selective pressure, suggesting that adeno-associated virus genome integration is relatively stable. Adeno-associated viruses can also function in an extrachromosomal manner.
[0177] In other embodiments, the vector is derived from a lentivirus. In certain embodiments, the vector is a recombinant lentiviral vector capable of infecting non-dividing cells.
[0178] Lentiviral genomes and proviral DNA typically contain three genes found in retroviruses: gag, pol, and env, flanked by two long terminal repeat (LTR) sequences. The gag gene encodes internal structural (matrix, capsid, and nucleocapsid) proteins; the pol gene encodes RNA-directed DNA polymerase (reverse transcriptase), protease, and integrase; and the env gene encodes viral envelope glycoproteins. The 5' and 3' LTRs are responsible for facilitating transcription and polyadenylation of virion RNAs. The LTRs contain all other cis-acting sequences required for viral replication. Lentiviruses possess additional genes, including vif, vpr, tat, rev, vpu, nef, and vpx (in HIV-1, HIV-2, and / or SIV).
[0179] Adjacent to the 5'LTR are sequences required for reverse transcription of the genome (tRNA primer binding site) and efficient encapsidation of viral RNA into particles (Psi site). When sequences required for encapsidation (or packaging of retroviral RNA into infectious virions) are missing from the viral genome, the cis defect prevents encapsidation of genomic RNA.
[0180] However, the resulting mutants remain capable of directing the synthesis of all virion proteins. The present invention provides a method for producing recombinant lentiviruses capable of infecting non-dividing cells, comprising transfecting suitable host cells with two or more vectors carrying packaging functions, i.e., gag, pol, and env, as well as rev and tat. As disclosed below, vectors lacking a functional tat gene are preferred for certain applications. Thus, for example, one vector can provide nucleic acid encoding viral gag and viral pol, while another vector can provide nucleic acid encoding viral env to generate packaging cells. Introducing a vector carrying a heterologous gene, identified herein as a transfer vector, into packaging cells generates producer cells that release infectious viral particles carrying the foreign gene of interest.
[0181] Using the vector and foreign gene configurations described above, a second vector can provide nucleic acid encoding a viral envelope (env) gene. The env gene can be derived from almost any suitable virus, including retroviruses. In some embodiments, the env protein is an amphoteric envelope protein that allows transduction of cells of both human and other species.
[0182] Examples of env genes derived from retroviruses include Moloney murine leukemia virus (MoMuLV or MMLV), Harvey murine sarcoma virus (HaMuSV or HSV), mouse mammary tumor virus (MuMTV or MMTV), gibbon ape leukemia virus (Gibbon leukemia virus), and the like. Genes that can be used include, but are not limited to, GalV or GALV, human immunodeficiency virus (HIV), and Rous sarcoma virus (RSV). Other env genes, such as vesicular stomatitis virus (VSV) protein G (VSV G), hepatitis virus, and influenza genes, can also be used.
[0183] The vector providing the viral env nucleic acid sequence is operably associated with the regulatory sequences described elsewhere herein.
[0184] In certain embodiments, the vector comprises a lentiviral vector in which the HIV virulence genes env, vif, vpr, vpu, and nef have been deleted without impairing the ability of the vector to transduce non-dividing cells.
[0185] In some embodiments, the vector comprises a lentiviral vector comprising a deletion of the U3 region of the 3'LTR. The deletion of the U3 region can be a full or partial deletion.
[0186] In some embodiments, a lentiviral vector of the present invention comprising a FVIII nucleotide sequence disclosed herein can be transfected in a cell with (a) a first nucleotide sequence comprising the gag, pol, or gag and pol genes, and (b) a second nucleotide sequence comprising a heterologous env gene; wherein the lentiviral vector lacks a functional tat gene. In other embodiments, the cell is further transfected with a fourth nucleotide sequence comprising the rev gene. In certain embodiments, the lentiviral vector lacks a functional gene selected from vif, vpr, vpu, vpx, and nef, or a combination thereof.
[0187] In certain embodiments, the lentiviral vector comprises one or more nucleotide sequences encoding a gag protein, a Rev response element, a central polypurine track (cPPT), or any combination thereof.
[0188] Examples of lentiviral vectors are disclosed in WO9931251, WO9712622, WO9817815, WO9817816 and WO9818934, which are incorporated herein by reference in their entireties.
[0189] Other vectors include plasmid vectors. Plasmid vectors have been described extensively in the art and are widely known to those of skill in the art. See, e.g., Sambrook et al., Molecular Cloning: A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press, 1989. Over the past few years, plasmid vectors have emerged as particularly advantageous for transferring genes to cells in vivo because they cannot replicate or integrate into the host genome. However, these plasmids, which contain a promoter compatible with the host cell, are capable of expressing peptides from genes operably encoded within the plasmid. Some commonly used plasmids available from commercial suppliers include pBR322, pUC18, pUC19, various pcDNA plasmids, pRC / CMV, various pCMV plasmids, pSV40, and pBlueScript. Additional examples of specific plasmids include pcDNA3.1, catalog number V79020; pcDNA3.1 / hygro, catalog number V87020; pcDNA4 / myc-His, catalog number V86320; and pBudCE4.1, catalog number V53220, all from Invitrogen (Carlsbad, CA). Other plasmids are well known to those of skill in the art. Plasmids can also be customized using standard molecular biology techniques to remove and / or add specific segments of DNA.
[0190] IV. Antibody generation Antibodies or fragments thereof that immunospecifically bind to FAM19A5 (e.g., human FAM19A5) can be produced by any method known in the art for synthesizing antibodies, such as chemical synthesis or recombinant expression techniques. The methods disclosed herein utilize, unless otherwise indicated, conventional techniques of molecular biology, microbiology, genetic analysis, recombinant DNA, organic chemistry, biochemistry, PCR, oligonucleotide synthesis and modification, nucleic acid hybridization, and related fields within the skill of the art. These techniques are described in detail, for example, in the references cited herein (e.g., Maniatis T et al., (1982) Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press; Sambrook J et al., (1989) Molecular Cloning: A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press; Sambrook J et al., (2001) Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY; Ausubel FM et al., Current Protocols in Molecular Biology, John Wiley & Sons (1987 and annual updates); Current Protocols in Immunology, John Wiley & Sons (1987 and annual updates); Gait (ed.) (1984) Oligonucleotide Synthesis: A Practical Approach, IRL Press; Eckstein (ed.) (1991) Oligonucleotides and Analogues: A Practical Approach, IRL Press;Birren B et al.,(eds.)(1999)Genome Analysis:A Laboratory Manual, Cold Spring Harbor Laboratory Press).
[0191] In certain embodiments, the antibodies disclosed herein are antibodies (e.g., recombinant antibodies) that are manufactured, expressed, produced, or isolated by any means involving, for example, synthesis, production using genetic engineering of DNA sequences. In certain embodiments, such antibodies comprise sequences (e.g., DNA sequences or amino acid sequences) that do not naturally occur within the antibody germline repertoire of an animal or mammal (e.g., a human) in vivo. In some embodiments, the anti-FAM19A5 antibodies disclosed herein are deimmunized.
[0192] As described in the Examples (e.g., Example 2), anti-FAM19A5 antibodies were initially generated by immunizing chickens with synthetic FAM19A5 peptides. Therefore, to minimize the risk of immunogenicity when administered to human subjects, anti-FAM19A5 antibodies (e.g., 1-65) were modified to be more similar to the immunogenic sequence of human antibodies. In some embodiments, the deimmunized anti-FAM19A5 antibodies disclosed herein have a similar binding affinity to human FAM19A5 compared to the corresponding non-deimmunized counterpart. Methods for deimmunizing antibodies are disclosed herein and known in the art.
[0193] In certain aspects, the present invention provides methods for producing an antibody or antigen-binding fragment thereof that immunospecifically binds to FAM19A5 (e.g., human FAM19A5), comprising culturing a cell or host cell disclosed herein. In certain aspects, the present invention provides methods for producing an antibody or antigen-binding fragment thereof that immunospecifically binds to FAM19A5 (e.g., human FAM19A5) by expressing (e.g., recombinantly expressing) the antibody or antigen-binding fragment thereof using a cell or host cell disclosed herein (e.g., a cell or host cell comprising a polynucleotide encoding an antibody disclosed herein). In certain embodiments, the cell is an isolated cell. In certain embodiments, an exogenous polynucleotide has been introduced into the cell. In certain embodiments, the methods of the present invention further comprise purifying the antibody or antigen-binding fragment thereof obtained from the cell or host cell.
[0194] Methods for generating polyclonal antibodies are known in the art (see, e.g., Chapter 11, in, Short Protocols in Molecular Biology, (2002) 5th Ed., Ausubel FM et al., eds., John Wiley and Sons, New York).
[0195] Monoclonal antibodies can be produced using a variety of techniques known in the art using hybridoma, recombinant, and phage display technologies, or a combination thereof. For example, monoclonal antibodies are known in the art and are disclosed, for example, in Harlow E & Lane, Monoclonal antibodies can be produced using hybridoma technology as disclosed in D, Antibodies: A Laboratory Manual, (Cold Spring Harbor Laboratory Press, 2nd ed. 1988); Hammerling GJ et al., in: Monoclonal Antibodies and T-Cell Hybridomas 563-681 (Elsevier, NY, 1981). As used herein, the term "monoclonal antibody" is not limited to antibodies produced by hybridoma technology. For example, monoclonal antibodies can be recombinantly produced from host cells exogenously expressing an antibody or fragment thereof disclosed herein, e.g., the light chain and / or heavy chain of the antibody.
[0196] In certain embodiments, a "monoclonal antibody," as used herein, refers to an antibody produced by a single cell (e.g., a hybridoma or a recombinant antibody-producing host cell), wherein the antibody immunospecifically binds to FAM19A5 (e.g., human FAM19A5), as determined, for example, by ELISA or other antigen-binding or competitive binding assays known in the art or described in the Examples herein. In certain embodiments, a monoclonal antibody may be a chimeric or humanized antibody. In certain embodiments, a monoclonal antibody is a monovalent or polyvalent (e.g., bivalent) antibody. In certain embodiments, a monoclonal antibody is a monospecific or multispecific antibody (e.g., bispecific antibody). The monoclonal antibodies disclosed herein may be produced, for example, by hybridoma methods described in Kohler G & Milstein (1975) Nature 256:495, or may be isolated from phage libraries using, for example, techniques as described herein. Other methods for producing clonal cell lines and the monoclonal antibodies expressed thereby are known in the art (see, e.g., Chapter 11). in: Short Protocols in Molecular Biology, (2002) 5th Ed., Ausubel FM et al., supra).
[0197] Methods for producing and screening for specific antibodies using hybridoma technology are routine and known in the art. For example, in the hybridoma method, mice or other suitable host animals, such as sheep, goats, rabbits, rats, hamsters, or macaques, are immunized to induce lymphocytes that produce or are capable of producing antibodies that specifically bind to the protein used for immunization (e.g., human FAM19A5). Alternatively, lymphocytes can be immunized in vitro. The lymphocytes are then fused with myeloma cells using a suitable fusing agent, such as polyethylene glycol, to form hybridoma cells (Goding JW (Ed.), Monoclonal Antibodies: Principles and Practice, pp. 59-103 (Academic Press, 1986)). Alternatively, animals can be immunized using the RIMMS (repeated immunization multiple site) technique (Kilpatrick KE et al., (1997) Hybridoma 16:381-9, the entire contents of which are incorporated by reference).
[0198] In some embodiments, a mouse (or other animal, e.g., chicken, rat, monkey, donkey, pig, sheep, hamster, or dog) may be immunized with an antigen (e.g., FAM19A5, e.g., human FAM19A5), an immune response is detected, e.g., antibodies specific to the antigen are detected in the mouse serum, and the mouse spleen is harvested and the spleen cells isolated. The spleen cells are then fused by known techniques to any suitable myeloma cells, e.g., cells of cell line SP20 available from the American Type Culture Collection (ATCC®) (Manassas, VA), to form hybridomas. Hybridomas are selected and cloned by limiting dilution. In certain embodiments, lymph nodes from the immunized mouse are harvested and fused with NSO myeloma cells.
[0199] The hybridoma cells thus produced are seeded and grown in a suitable culture medium that preferably contains one or more substances that inhibit the growth or survival of the unfused, parental myeloma cells. For example, if the parental myeloma cells lack the enzyme hypoxanthine guanine phosphoribosyl transferase (HGPRT or HPRT), the hybridoma culture medium will typically contain hypoxanthine, aminopterin, and thymidine (HAT medium), which will prevent the growth of HGPRT-deficient cells.
[0200] Certain embodiments use myeloma cells that fuse efficiently, support stable, high-level antibody production by selected antibody-producing cells, and are sensitive to media such as HAT medium. Among these, myeloma cell lines are those derived from mouse myeloma lines, such as the NSO cell line or MOPC-21 and MPC11 mouse tumors available from the Salk Institute Cell Distribution Center, San Diego, CA, USA, and SP-2 or X63-Ag8.653 cells available from the American Type Culture Collection, Rockville, MD, USA. Human myeloma and mouse-human heteromyeloma cell lines have also been described for the production of human monoclonal antibodies (Kozbor D (1984) J. Immunol. 1999, 123:1999-2000). Immunol 133:3001-5;Brodeur et al., Monoclonal Antibody Production Techniques and Applications, pp.51-63 (Marcel Dekker, Inc., New York, 1987)).
[0201] The culture medium in which the hybridoma cells are growing is analyzed for production of monoclonal antibodies against FAM19A5 (e.g., human FAM19A5). The binding specificity of the monoclonal antibodies produced by the hybridoma cells is determined by methods known in the art, such as immunoprecipitation or in vitro binding assays, such as radioimmunoassay (RIA) or enzyme-linked immunoabsorbent assay (ELISA).
[0202] After hybridoma cells producing antibodies of the desired specificity, affinity, and / or activity are identified, the clones can be subcloned by limiting dilution procedures and grown by standard methods (Goding JW (Ed.), Monoclonal Antibodies: Principles and Practice, supra). Suitable culture media for such purposes include, for example, D-MEM or RPMI 1640 medium. Hybridoma cells can also be grown in vivo as ascites tumors in animals.
[0203] The monoclonal antibodies secreted by the subclones are suitably separated from the culture medium, ascites fluid, or serum by conventional immunoglobulin purification procedures such as, for example, protein A-Sepharose, hydroxylapatite chromatography, gel electrophoresis, dialysis, or affinity chromatography.
[0204] The antibodies described herein recognize specific FAM19A5 (e.g., human FAM19A5) and include antibody fragments that can be produced by any technique known to those skilled in the art. For example, the Fab and F(ab')2 fragments disclosed herein can be produced by proteolytic cleavage of immunoglobulin molecules using enzymes such as papain (to produce Fab fragments) or pepsin (to produce F(ab')2 fragments). Fab fragments correspond to either of the two identical arms of an antibody molecule and contain an intact light chain paired with the VH and CH1 domains of the heavy chain. F(ab')2 fragments contain the two antigen-binding arms of an antibody molecule linked by disulfide bonds at the hinge region.
[0205] The antibodies or antigen-binding fragments thereof disclosed herein can also be generated using various phage display methods known in the art. In phage display methods, functional antibody domains are displayed on the surface of phage particles carrying the polynucleotide sequences encoding them. In particular, DNA sequences encoding VH and VL domains are amplified from animal cDNA libraries (e.g., human or non-human, such as mouse or chicken cDNA libraries of affected tissues). The DNA encoding the VH and VL domains is recombined with an scFv linker by PCR and cloned into a phagemid vector. The vector is electroporated in E. coli, and the E. coli is infected with helper phage. The phages used in these methods are typically filamentous phage, including fd and M13, and the VH and VL domains are generally recombinantly fused to phage gene III or gene VIII. Phage expressing antigen-binding domains that bind to a specific antigen can be selected or identified by antigen, for example, using labeled antigen or antigen bound or captured to a solid surface or bead. Examples of phage display methods that can be used to produce the antibodies disclosed herein are described in the following references: Brinkman U et al., (1995) J Immunol Methods 182:41-50; Ames RS et al., (1995) J Immunol Methods 182:41-50; Immunol Methods 184:177-186;Kettleborough CA et al.,(1994)Eur J Immunol 24:952-958;Persic L et al.,(1997)Gene 187:9-18;Burton DR & Barbas CF(1994)Advan Immunol 57:191-280; PCT Application No. PCT / GB91 / 001134; International Publication Nos. WO90 / 02809, WO91 / 10737, WO92 / 01047, WO92 / 18619, WO93 / 11236, WO95 / 15982, WO95 / 20401, and WO97 / 13844; and U.S. Patent No. 5,698,426. , Nos. 5,223,409, 5,403,484, 5,580,717, 5,427,908, 5,750,753, 5,821,047, 5,571,698, 5,427,908, 5,516,637, 5,780,225, 5,658,727, 5,733,743 and 5,969,108.
[0206] As described in the above references, after phage selection, the antibody coding regions from the phage can be isolated and used to generate whole antibodies, including human antibodies or any other desired antigen-binding fragment, and expressed in any desired host, including mammalian cells, insect cells, plant cells, yeast, and bacteria, for example, as described below. Techniques for recombinantly producing antibody fragments, such as Fab, Fab', and F(ab')2 fragments, can be carried out by known methods, such as those described in PCT Publication WO 92 / 22324; Mullinax RL et al., (1992) BioTechniques 12(6):864-9; Sawai H et al., (1995) Am J Reprod Immunol 34:26-34; and Better M et al., (1988) Science 240:1041-1043.
[0207] In one embodiment, to generate whole antibodies, VH or VL sequences, e.g., scFv clones, can be amplified from a template using PCR primers containing the VH or VL nucleotide sequence, restriction sites, and flanking sequences to protect the restriction sites. Using cloning techniques known to those of skill in the art, the PCR-amplified VH domain can be cloned into a vector expressing a VH constant region, and the PCR-amplified VL domain can be cloned into a vector expressing a VL constant region, e.g., a human kappa or lambda constant region. The VH and VL domains can also be cloned into a single vector expressing the necessary constant regions. The heavy chain conversion vector and the light chain conversion vector are then co-transfected into cell lines to generate stable or transient cell lines expressing full-length antibodies, e.g., IgG, using techniques known to those of skill in the art.
[0208] A chimeric antibody is a molecule in which different portions of the antibody are derived from different immunoglobulin molecules. For example, a chimeric antibody may contain the variable region of a non-human animal (e.g., mouse, rat, or chicken) monoclonal antibody fused to the constant region of a human antibody. Methods for producing chimeric antibodies are known in the art. See, e.g., Morrison SL (1985) Science 229:1202-7; Oi VT & Morrison SL (1986) BioTechniques 4:214-221; Gillies SD et al., (1989) J Immunol Methods 125:191-202; and U.S. Patent Nos. 5,807,715, 4,816,567, 4,816,397, and 6,331,415.
[0209] A humanized antibody can bind to a predetermined antigen and comprises framework regions substantially having the amino acid sequence of a human immunoglobulin and CDRs substantially having the amino acid sequence of a non-human immunoglobulin (e.g., a mouse or chicken immunoglobulin). In certain embodiments, a humanized antibody also comprises at least a portion of an immunoglobulin constant region (Fc), typically that of a human immunoglobulin. The antibody may also comprise the CH1, hinge, CH2, CH3, and CH4 regions of the heavy chain. The humanized antibody may be selected from all classes of immunoglobulins, including IgM, IgG, IgD, IgA, and IgE, and any isotype, including IgG1, IgG2, IgG3, and IgG4.Humanized antibodies can be produced using various techniques known in the art, including, but not limited to, CDR-grafting (European Patent EP 239400; International Publication No. WO 91 / 09967; and U.S. Patent Nos. 5,225,539, 5,530,101, and 5,585,089), veneering, or resurfacing (European Patents EP 592106 and EP 519596; Padlan EA (1991) Mol Immunol 28(4 / 5):489-498; Studnicka GM et al., (1994) Prot Engineering 7(6):805-814; and Roguska MA et al., (1994) PNAS 91:969-973), chain shuffling (U.S. Pat. No. 5,565,332), and other techniques such as those described in, for example, U.S. Pat. No. 6,407,213, U.S. Pat. No. 5,766,886, and International Publication WO 93 / 17105; Tan P et al., (2002) J Immunol 169:1119-25; Caldas C et al., (2000) Protein Eng. 13(5):353-60; Morea V et al., (2000) Methods 20(3):267-79; Baca M et al., (1997) J Biol Chem 272(16):10678-84; Roguska MA et al., (1996) Protein Eng 9(10):895904; Couto JR et al. al., (1995) Cancer Res. 55(23 Supp):5973s-5977s; Couto JR et al., (1995) Cancer Res 55(8):1717-22; Sandhu JS (1994) Gene 150(2):409-10 and Pedersen JT et al., (1994) 7 Mol Biol 235(3):959-73. Also, U.S. Patent Application Publication US2005 / 0042664A1 (February 24, 2005) is incorporated herein by reference in its entirety.
[0210] Methods for producing multispecific (e.g., bispecific) antibodies are described, for example, in U.S. Patent Nos. 7,951,917; 7,183,076; 8,227,577; 5,837,242; 5,989,830; 5,869,620; 6,132,992 and 8,586,713.
[0211] Single domain antibodies, e.g., antibodies lacking light chains, can be produced by methods known in the art. Riechmann L & Muyldermans S (1999) J See Immunol 231:25-38; Nuttall SD et al., (2000) Curr Pharm Biotechnol 1(3):253-263; Muyldermans S, (2001) J Biotechnol 74(4):277-302; U.S. Patent No. 6,005,079; and International Publication Nos. WO94 / 04678, WO94 / 25591, and WO01 / 44301.
[0212] In addition, antibodies that immunospecifically bind to the FAM19A5 antigen can ultimately be used to generate anti-idiotypic antibodies that "mimicking" the antigen using techniques known to those skilled in the art (see, e.g., Greenspan NS & Bona CA (1989) FASEB J7(5):437-444; and Nissinoff A (1991) J Immunol 147(8):2429-2438).
[0213] In certain embodiments, an antibody disclosed herein that binds to the same epitope of FAM19A5 (e.g., human FAM19A5) as an anti-FAM19A5 antibody disclosed herein is a human antibody or antigen-binding fragment thereof. In certain embodiments, an antibody (e.g., 1-65) that competitively blocks (e.g., in a dose-dependent manner) the binding of an antibody disclosed herein to FAM19A5 (e.g., human FAM19A5) is a human antibody or antigen-binding fragment thereof.
[0214] Human antibodies can be produced using any method known in the art. For example, transgenic mice incapable of expressing functional endogenous immunoglobulins but capable of expressing human immunoglobulin genes can be used. In particular, human heavy and light chain immunoglobulin gene complexes can be introduced randomly or by homologous recombination into mouse embryonic stem cells. Alternatively, human variable, constant, and diversity regions can be introduced into mouse embryonic stem cells in addition to the human heavy and light chain genes. The mouse heavy and light chain immunoglobulin genes can be rendered non-functional individually or simultaneously with the introduction of human immunoglobulin loci by homologous recombination. In particular, homozygous deletion of the JH region prevents endogenous antibody production. The modified embryonic stem cells are expanded and microinjected into blastocysts to produce chimeric mice. The chimeric mice are then bred to produce homozygous offspring that express human antibodies. Transgenic mice are immunized in the normal manner with a selected antigen, e.g., all or part of an antigen (e.g., FAM19A5). Monoclonal antibodies directed against the antigen are obtained from the immunized transgenic mice using conventional hybridoma technology. The human immunoglobulin transfer genes incorporated by the transgenic mice rearrange during B-cell differentiation, subsequently undergoing class switching and somatic mutation. Thus, such technology can be used to generate therapeutically useful IgG, IgA, IgM, and IgE antibodies. An overview of this technology for generating human antibodies is provided by Lonberg N & Co., J. Immunol. 1999, 144:1111-1122, 1999, 144:1111-1122, 1999, 144:1111-1123, 1999, 144:1111-1124, 1999, 144:1111-1125, 1999, 144:1111-1126, 1999, 144:1111-1127, 1999, 144:1111-1128, 1999, 144:1111-1129 ... See Huszar D (1995) Int Rev Immunol 13:65-93. For a detailed discussion of the technology for producing human antibodies and human monoclonal antibodies and protocols for producing such antibodies, see, e.g., International Publication Nos. WO 98 / 24893, WO 96 / 34096, and WO 96 / 33735; and U.S. Patent Nos. 5,413,923, 5,625,126, 5,633,425, 5,569,825, 5,661,016, 5,545,806, 5,814,318, and 5,939,598. An example of a mouse capable of producing human antibodies is the XENOMOUSE. TM(Abgenix, Inc.; U.S. Patent Nos. 6,075,181 and 6,150,184), HUAB-MOUSE TM (Mederex, Inc. / Gen Pharm; U.S. Patent Nos. 5,545,806 and 5,569,825), TRANS CHROMO MOUSE TM (Kirin) and KM MOUSE TM (Medarex / Kirin).
[0215] Human antibodies (e.g., human FAM19A5) that specifically bind to FAM19A5 can be produced by various methods known in the art, including the phage display methods described above, using antibody libraries derived from human immunoglobulin sequences (see also U.S. Patent Nos. 4,444,887, 4,716,111, and 5,885,793; and International Publication Nos. WO98 / 46645, WO98 / 50433, WO98 / 24893, WO98 / 16654, WO96 / 34096, WO96 / 33735, and WO91 / 10741).
[0216] In some embodiments, human antibodies can be produced using mouse-human hybridomas. For example, Epstein-Barr virus (EBV)-transformed human peripheral blood lymphocytes can be fused with mouse myeloma cells to produce mouse-human hybridomas that secrete human monoclonal antibodies, and these mouse-human hybridomas can be screened to determine those that secrete human monoclonal antibodies that immunospecifically bind to the target antigen (e.g., FAM19A5, such as human FAM19A5). Such methods are known and described in the art. See, e.g., Shinmoto H et al., (2004) Cytotechnology 46:19-23; Naganawa Y See et al., (2005) Human Antibodies 14:27-31.
[0217] V. Antibody Engineering Methods As discussed above, anti-FAM19A5 antibodies having the VH and VL sequences disclosed herein can be used to generate new anti-FAM19A5 antibodies by modifying the VH and / or VL sequences or the constant regions attached thereto. Accordingly, in other embodiments disclosed herein, the structural features of the anti-FAM19A5 antibodies disclosed herein are used to generate structurally related anti-FAM19A5 antibodies that retain at least one functional property of the antibodies disclosed herein, e.g., binding to human FAM19A5. For example, the starting material for the engineering method is a VH and / or VL sequence provided herein, or one or more CDR regions thereof. To generate an engineered antibody, it is not necessary to actually produce (i.e., express as a protein) an antibody having one or more VH and / or VL sequences or one or more CDR regions thereof provided herein. Rather, the information contained in the sequence is used as a starting material to generate "second-generation" sequences derived from the original sequence, which are then produced and expressed as a protein.
[0218] Accordingly, the present invention provides a method for producing an anti-FAM19A5 antibody, comprising the steps of: (a) providing (i) a heavy chain variable region sequence comprising the CDR1, CDR2 and / or CDR3 sequences set out in Table 3, or the CDR1, CDR2 and / or CDR3 of a heavy chain variable region set out in Table 5; and (ii) a light chain variable region sequence comprising the CDR1, CDR2 and / or CDR3 sequences set out in Table 4, or the CDR1, CDR2 and / or CDR3 of a heavy chain variable region set out in Table 6; (b) altering at least one amino acid residue within the heavy chain variable region sequence and / or the light chain variable region sequence to generate at least one altered antibody sequence; and (c) expressing the altered antibody sequence as a protein.
[0219] Standard molecular biology techniques can be used to prepare and express the altered antibody sequence.
[0220] In some embodiments, the antibody encoded by the altered antibody sequence is an antibody that retains one, some, or all of the functional properties of the anti-FAM19A5 antibodies described herein, including: (1) reduced immunogenicity in human subjects; (2) For example, a K of 10 nM or less (e.g., 0.01 nM to 10 nM) when measured by Biacore D Binding to soluble human FAM19A5 with (3) a K of 10 nM or less (e.g., 0.01 nM to 1 nM) as measured, for example, by ELISA D binding to membrane-bound human FAM19A5 with (4) binding to membrane-bound human FAM19A5 with an EC50 of 1 nM or less (e.g., 0.01 nM to 1 nM), e.g., as measured by ELISA; (5) reducing, reversing, delaying, and / or preventing the onset of reactive gliosis; (6) excessive suppression of reactive astrocyte proliferation; (7) decreased expression of chondroitin sulfate proteoglycans, including neurocan and neuron-glial antigen 2 (NG2); (8) increased expression of c-fos and pERK in neuronal nuclei; (9) Promoting neuronal survival; (10) increased expression of GAP43 in neurons; (11) promoting axonal regrowth; and (12) Either unidirectional or bidirectional competition for binding to human FAM19A5 with the anti-FAM19A5 antibodies disclosed herein.
[0221] The modified antibody can exhibit one or more, two or more, three or more, four or more, five or more, six or more, seven or more, eight or more, nine or more, ten or more, eleven, or all of the functional properties listed in (1) through (12) above. The functional properties of the modified antibody can be assessed using standard assays available in the art and / or described herein, such as those described in the Examples (e.g., ELISA, FACS).
[0222] In certain embodiments of the antibody engineering methods provided herein, mutations can be introduced randomly or selectively along all or part of an anti-FAM19A5 antibody coding sequence, and the resulting modified anti-FAM19A5 antibodies can be screened for binding activity and / or other functional properties as provided herein. Mutation methods are described in the art. For example, PCT Publication WO 02 / 092780 to Short describes methods for generating and screening antibody mutations using saturation mutagenesis, synthetic ligation assembly, or a combination thereof. Alternatively, PCT Publication WO 03 / 074679 to Lazar et al. describes methods using computational screening methods to optimize the physicochemical properties of antibodies.
[0223] VI. Cells and Vectors In certain aspects, the invention provides cells (e.g., host cells) (or antigen-binding fragments thereof) that express (e.g., recombinantly) antibodies (or antigen-binding fragments thereof) described herein that specifically bind to FAM19A5 (e.g., human FAM19A5) and related polynucleotides and expression vectors. The invention provides vectors (e.g., expression vectors) comprising polynucleotides containing nucleotide sequences encoding anti-FAM19A5 antibodies or fragments for recombinant expression in host cells, e.g., mammalian cells. The invention also provides host cells comprising such vectors for recombinantly expressing anti-FAM19A5 antibodies (e.g., human or humanized antibodies) described herein. In certain aspects, the invention provides methods for producing the antibodies described herein, which express such antibodies from host cells.
[0224] Recombinant expression of an antibody described herein (e.g., a full-length antibody, a heavy and / or light chain of the antibody, or a single-chain antibody) that specifically binds to FAM19A5 (e.g., human FAM19A5) involves the construction of an expression vector containing a polynucleotide encoding the antibody. Once a polynucleotide encoding an antibody molecule, heavy and / or light chain, or fragment thereof (e.g., a heavy and / or light chain variable domain) described herein is obtained, vectors for producing the antibody molecule can be generated by recombinant DNA technology using techniques known in the art. Thus, methods for expressing polynucleotides containing antibody or antibody fragment (e.g., light or heavy chain) encoding nucleotide sequences to produce proteins are described herein. Methods known to those skilled in the art can be used to construct expression vectors containing antibody or antibody fragment (e.g., light or heavy chain) coding sequences and appropriate transcriptional and translational control signals. These methods include, for example, in vitro recombinant DNA techniques, synthetic techniques, and in vivo genetic recombination. The present invention also provides replicable vectors containing nucleotide sequences encoding the antibody molecules described herein, the antibody heavy or light chains, the heavy or light chain variable domains of the antibodies or fragments thereof, or the heavy or light chain CDRs operably linked to a promoter. The vectors may contain, for example, nucleotide sequences encoding the constant regions of antibody molecules (see, e.g., International Publication Nos. WO 86 / 05807 and WO 89 / 01036; and U.S. Patent No. 5,122,464), and antibody variable domains may be cloned into the vector for expression of the entire heavy chain, the entire light chain, or both the entire heavy and light chains.
[0225] The expression vector can be transferred to a cell (e.g., a host cell) by conventional techniques, and the resulting cells can then be cultured by conventional techniques to produce an antibody described herein (e.g., an antibody comprising any one or more of the VH and / or VL, or VH and / or VL CDRs, of an anti-FAM19A5 antibody of the invention) or fragment thereof. Accordingly, the invention provides a host cell containing a polynucleotide encoding an antibody or fragment thereof described herein, or a heavy or light chain thereof, or a fragment thereof, or a single-chain antibody of the invention operably linked to a promoter for expression of such sequences in a host cell. In certain embodiments, for expression of a double-chain linked antibody, vectors encoding both the heavy and light chains separately can be co-expressed in a host cell for expression of a whole immunoglobulin molecule, as described in more detail below. In certain embodiments, a host cell contains a vector comprising a polynucleotide encoding both the heavy and light chains of an antibody described herein, or fragments thereof. In certain embodiments, a host cell contains two different vectors, wherein a first vector comprises a polynucleotide or fragment thereof encoding a heavy chain or heavy chain variable region of an antibody described herein, and a second vector comprises a polynucleotide or fragment thereof encoding a light chain or light chain variable region of an antibody described herein. In other embodiments, a first host cell comprises a first vector or fragment thereof comprising a polynucleotide encoding a heavy chain or heavy chain variable region of an antibody described herein, and a second host cell comprises a second vector comprising a polynucleotide encoding a light chain or light chain variable region of an antibody described herein. In certain embodiments, the heavy chain / heavy chain variable region is expressed by the first cell in association with the light chain / light chain variable region of the second cell to form an anti-FAM19A5 antibody or antigen-binding fragment thereof described herein. In certain embodiments, the invention provides a population of host cells comprising the first host cell and the second host cell.
[0226] In certain embodiments, the invention provides a population of vectors comprising a first vector comprising a polynucleotide encoding the light chain / light chain variable region of an anti-FAM19A5 antibody described herein, and a second vector comprising a polynucleotide encoding the heavy chain / heavy chain variable region of an anti-FAM19A5 antibody described herein.
[0227] A variety of host-expression vector systems can be used to express the antibody molecules described herein. Such host-expression systems represent vehicles in which a coding sequence of interest may be produced and subsequently purified, and further represent cells which, when transformed or transfected with the appropriate nucleotide coding sequence, are capable of expressing the antibody molecules described herein in situ. These include, but are not limited to, microorganisms such as bacteria (e.g., Escherichia coli and B. subtilis) transformed with recombinant bacteriophage DNA, plasmid DNA, or cosmid DNA expression vectors containing antibody coding sequences; yeast (e.g., Saccharomyces picaria) transformed with recombinant yeast expression vectors containing antibody coding sequences; insect cell systems infected with recombinant viral expression vectors (e.g., baculovirus) containing antibody coding sequences; and recombinant plasmid expression vectors (e.g., T cell lysates) infected with recombinant viral expression vectors (e.g., cauliflower mosaic virus (CaMV); tobacco mosaic virus (TMV)) or containing antibody coding sequences. i plasmid); or mammalian cell systems (e.g., COS (e.g., COS1 or COS), CHO, BHK, MDCK, HEK293, NSO, PER.C6, VERO, CRL7030, HsS78Bst, HeLa, and NIH3T3, HEK-293T, HepG2, SP210, R1.1, BW, LM, BSC1, BSC40, YB / 20, and BMT10 cells) that obtain recombinant expression constructs containing promoters derived from the genomes of mammalian cells (e.g., metallothionein promoter) or mammalian viruses (e.g., adenovirus late promoter; vaccinia virus 7.5K promoter). In certain embodiments, cells for expressing the antibodies or antigen-binding fragments thereof described herein are CHO cells, e.g., CHO GS SYSTEM TM (Lonza) CHO cells. In certain embodiments, the cells for expressing the antibodies described herein are human cells, e.g., human cell lines. In certain embodiments, the mammalian expression vector is a POPTIVECTM or pcDNA3.3. In certain embodiments, bacterial cells such as Escherichia coli or eukaryotic cells (e.g., mammalian cells) are used for expression of a recombinant antibody molecule, particularly for expression of the whole recombinant antibody molecule. For example, mammalian cells such as Chinese hamster ovary (CHO) cells, together with vectors such as the major intermediate-early gene promoter element from human cytomegalovirus, are effective expression systems for antibodies (Foecking MK & Hofstetter H (1986) Gene 45:101-5; and Cockett MI et al., (1990) Biotechnology 8(7):662-7). In certain embodiments, the antibodies described herein are produced in CHO cells or NSO cells. In certain embodiments, expression of a nucleotide sequence encoding an antibody of the invention that immunospecifically binds to FAM19A5 (e.g., human FAM19A5) is regulated by a constitutive promoter, an inducible promoter, or a tissue-specific promoter.
[0228] In bacterial systems, a number of expression vectors may be advantageously selected depending on the use intended for the antibody molecule being expressed. For example, when large quantities of the antibody are to be produced, vectors which direct the expression of high levels of fusion protein products that are readily purified may be preferred for the generation of pharmaceutical compositions of the antibody molecule. Such vectors include the E. coli expression vector pUR278 (Ruether U & Mueller-Hill B (1983) EMBO). J2:1791-1794), in which the antibody coding sequence is in frame with the lacZ coding region to produce a fusion protein; pIN vectors (Inouye S & Inouye M (1985) Nuc Acids Res 13:3101-3109; Van Heeke G & Schuster SM (1989) J Biol Chem 24:5503-5509); etc. For example, pGEX vectors can be used to express foreign polypeptides as fusion proteins with glutathione 5-transferase (GST). Generally, such fusion proteins are soluble and can be easily purified from lysed cells by adsorption and binding to matrix glutathione agarose beads followed by elution in the presence of glass glutathione. pGEX vectors are designed to contain thrombin or factor Xa protease cleavage sites so that the cloned target gene product can be released from the GST moiety.
[0229] In an insect system, Autographa californica nuclear polyhedrin virus (AcNPV), for example, can be used as a vector to express foreign genes. The virus is grown in Spodoptera frugiperda cells. The antibody coding sequence can be cloned individually into non-essential regions (e.g., the polyhedrin gene) of the virus and placed under control of an AcNPV promoter (e.g., the polyhedrin promoter).
[0230] In mammalian host cells, a number of virus-based expression systems can be used. When adenovirus is used as an expression vector, the antibody coding sequence of interest can be ligated to an adenovirus transcription / translation control complex, e.g., the late promoter and triplicate leader sequence. This chimeric gene can then be inserted into the adenovirus genome by in vitro or in vivo recombination. Insertion in a non-essential region of the viral genome (e.g., region E1 or E3) will result in a viable recombinant virus capable of expressing the antibody molecule in infected hosts (see, e.g., Logan J & Shenk T (1984) PNAS 81(12):3655-9). Specific initiation signals may be required for efficient translation of inserted antibody coding sequences. These signals include the ATG initiation codon and adjacent sequences. Also, the initiation codon must be in phase with the reading frame of the desired coding sequence to ensure translation of the entire insert. These exogenous translational control signals and initiation codons can be of a variety of origins, both natural and synthetic. The efficiency of expression can be improved by the inclusion of appropriate transcription enhancer elements, transcription terminators, etc. (See, e.g., Bitter G et al., (1987) Methods Enzymol. 153:516-544).
[0231] In addition, a host cell strain can be chosen that modulates the expression of the inserted sequences, and modifies and processes the gene product in the specific fashion desired. Such modifications (e.g., glycosylation) and processing (e.g., cleavage) of protein products can be important for the function of the protein. Different host cells have characteristic and specific mechanisms for post-translational processing and modification of proteins and gene products. Appropriate cell lines or host systems can be selected to ensure the correct modification and processing of the expressed foreign protein. To this end, eukaryotic host cells that possess the cellular machinery for proper processing of the primary transcript, glycosylation, and phosphorylation of the gene product can be used. Such mammalian host cells include, but are not limited to, CHO, VERO, BHK, Hela, MDCK, HEK293, NIH3T3, W138, BT483, Hs578T, HTB2, BT20, and T47D, NSO (a murine myeloma cell line that does not endogenously produce any immunoglobulin chains), CRL7030, COS (e.g., COS1 or COS), PER.C6, VERO, HsS78Bst, HEK-293T, HepG2, SP210, R1.1, BW, LM, BSC1, BSC40, YB / 20, BMT10, and HsS78Bst cells. In certain embodiments, the anti-FAM19A5 antibodies described herein are produced in mammalian cells, such as CHO cells.
[0232] In certain embodiments, the antibodies or antigen-binding portions thereof described herein have reduced or no fucose content. Such antibodies can be produced using techniques known to those of skill in the art. For example, the antibodies can be expressed in cells that lack or lack fucosylation capacity. In certain instances, cell lines with knockouts of both alleles of 1,6-fucosyltransferase can be used to produce antibodies or antigen-binding portions thereof with reduced fucose content. The POTELLIGENT® system (Lonza) is an example of such a system that can be used to produce antibodies or antigen-binding portions thereof with reduced fucose content.
[0233] For long-term, high-yield production of recombinant proteins, stable expression cells can be generated. For example, cell lines stably expressing the anti-FAM19A5 antibodies described herein can be engineered to engineer their antigen-binding portions. In certain embodiments, the cells provided herein stably express the light chain / light chain variable domain and heavy chain / heavy chain variable domain associated to form the antibody or antigen-binding portion thereof described herein.
[0234] In certain embodiments, instead of using expression vectors containing viral origins of replication, host cells can be transformed with DNA controlled by appropriate expression control elements (e.g., promoter, enhancer, sequence, transcription terminator, polyadenylation site, etc.) and a selectable marker. After introduction of the foreign DNA / polynucleotide, engineered cells can be grown in an enriched medium for 1-2 days and then switched to a selective medium. The selectable marker on the recombinant plasmid confers resistance to selection, allowing cells to stably integrate the plasmid into their chromosomes and grow to form foci, which can then be cloned and expanded into cell lines. This method can be advantageously used to engineer cell lines expressing the anti-FAM19A5 antibodies or antibody-binding portions thereof described herein. Such engineered cell lines can be particularly useful in screening and evaluation of compositions that interact directly or indirectly with the antibody molecule.
[0235] Numerous selection systems can be used for tk-, hgprt-, or aprt- cells, including but not limited to the herpes simplex virus thymidine kinase (Wigler M et al., (1977) Cell 11(1):223-32), hypoxanthine guanine phosphoribosyltransferase (Szybalska EH & Szybalski W (1962) PNAS 48(12):2026-2034), and adenine phosphoribosyltransferase (Lowy I et al., (1980) Cell 22(3):817-23) genes, respectively. Additionally, antimetabolite resistance can be used as the basis for selection against the following genes: dhfir (Wigler M et al., (1977) Cell 11(1):223-32), which confers resistance to methotrexate; M et al., (1980) PNAS 77(6):3567-70; O'Hare K et al., (1981) PNAS 78:1527-31); gpt, which confers resistance to mycophenolic acid (Mulligan RC & Berg P (1981) PNAS 78(4):2072-6); neo, which confers resistance to the aminoglycoside G-418 (Wu GY & Wu CH (1991) Biotherapy 3:87-95; Tolstoshev P (1993) Ann Rev Pharmacol Toxicol 32:573-596; Mulligan RC (1993) Science 260:926-932; and Morgan RA & Anderson WF (1993) Ann Rev Biochem 62:191-217; Nabel GJ & Feigner PL (1993) Trends Biotechnol 11(5):211-5); and hygro, which confers resistance to hygromycin (Santerre RF et al., (1984) Gene 30(1-3):147-56). Conventional and well-known methods in the field of recombinant DNA technology can be routinely applied to select the desired recombinant clones, and such methods are described, for example, in the following documents, which are incorporated herein by reference in their entireties: Ausubel FM et al., (eds.), Current Protocols in Molecular Biology, John Wiley & Sons, NY (1993); Kriegler M, Gene Transfer and Expression, A Laboratory Manual, Stockton Press, NY (1990); and Chapters 12 and 13, Dracopoli NC et al., (eds.), Current Protocols in Human Genetics, John Wiley & Sons, NY (1994); Colbere-Garapin F et al., (1981) J Mol Biol 150:1-14.
[0236] The expression level of an antibody molecule can be increased by vector amplification (for a review see Bebbington CR & Hentschel CCG, In DNA Cloning: The Use of Gene Amplification-Based Vectors for the Expression of Cloned Genes in Mammalian Cells, Vol 3 (Academic Press, New York, 1987)). If the marker in the antibody-expressing vector system can be amplified, increasing the level of inhibitor present in the host cell culture will increase the number of copies of the marker gene. Since the amplified region is associated with the antibody gene, antibody production will also increase (Crouse GF et al. al., (1983) Mol Cell Biol 3:257-66).
[0237] Host cells can be co-transfected with two or more expression vectors described herein, i.e., a first vector encoding a heavy chain-derived polypeptide and a second vector encoding a light chain-derived polypeptide. The two vectors can contain identical selectable markers that allow for identical expression of heavy and light chain polypeptides. Host cells can be co-transfected with different amounts of the two or more expression vectors. For example, host cells can be transfected with any of the following ratios of the first expression vector to the second expression vector: 1:1, 1:2, 1:3, 1:4, 1:5, 1:6, 1:7, 1:8, 1:9, 1:10, 1:12, 1:15, 1:20, 1:25, 1:30, 1:35, 1:40, 1:45, or 1:50.
[0238] Alternatively, a single vector capable of encoding and expressing both heavy and light chain polypeptides can be used. In such a situation, the light chain should be located before the heavy chain to avoid excess non-toxic heavy chain (Proudfoot NJ (1986) Nature 322:562-565; and Kohler G (1980) PNAS 77:2197-2199). The coding sequences for the heavy and light chains can comprise cDNA or genomic DNA. Expression vectors can be monocistronic or multicistronic. Multicistronic nucleic acid constructs can encode 2, 3, 4, 5, 6, 7, 8, 9, 10 or more genes / nucleotide sequences, or a range of 2-5, 5-10, or 10-20 genes / nucleotide sequences. For example, a bicistronic nucleic acid construct can comprise, in the following order: promoter, first gene (e.g., the heavy chain of an antibody described herein), and second gene (e.g., the light chain of an antibody described herein). In such an expression vector, transcription of both genes may be driven by a promoter, but translation of mRNA from the first gene may be by a cap-dependent scanning mechanism, and translation of mRNA from the second gene may be by a cap-independent mechanism, e.g., via an IRES.
[0239] Once the antibody molecules described herein are produced by recombinant expression, they may be purified by any method known in the art for the purification of immunoglobulin molecules, such as chromatography (e.g., ion exchange, affinity, particularly affinity for a specific antigen following protein A, and sizing column chromatography), centrifugation, differential solubility, or any other standard technique for protein purification. The antibodies described herein may also be fused to heterologous polypeptide sequences described herein or known in the art to facilitate purification.
[0240] In certain embodiments, the antibodies, or antigen-binding portions thereof, described herein are isolated or purified. Generally, an isolated antibody is one that is substantially free of other antibodies having antigenic specificities different from that of the isolated antibody. For example, in certain embodiments, preparations of the antibodies described herein are substantially free of cellular material and / or chemical precursors. The phrase "substantially free of cellular material" is intended to include preparations of antibodies in which the antibody is separated from cellular components of the cells from which it is isolated or recombinantly produced. Thus, antibodies that are substantially free of cellular material include preparations of antibodies that have less than about 30%, 20%, 10%, 5%, 2%, 1%, 0.5%, or 0.1% (by dry weight) of heterologous proteins (also referred to herein as "contaminating proteins") and / or preparations of antibody variants, e.g., antibodies with different post-translationally modified forms or different versions of the antibody (or antibody-binding portion). When antibodies are recombinantly produced, they are also typically substantially free of culture medium, i.e., culture medium represents less than about 20%, 10%, 2%, 1%, 0.5%, or 0.1% of the volume of the protein preparation. When antibodies are produced by chemical synthesis, they are typically substantially free of chemical precursors or other chemicals, i.e., separated from chemical precursors or other chemicals involved in protein synthesis. Thus, such antibody preparations have less than about 30%, 20%, 10%, or 5% (by dry weight) of chemical precursors or compounds other than the antibody of interest. In certain embodiments, the antibodies described herein are isolated or purified.
[0241] VII.Analysis The antibodies described herein can be tested for binding to FAM19A5, for example, by standard ELISA. Briefly, microtiter plates were coated with 1-2 μg / ml purified FAM19A5 in PBS and then blocked with 5% bovine serum albumin in PBS. Dilutions of antibody (e.g., dilutions of plasma from FAM19A5-immunized mice) were added to each well and incubated for 1-2 hours at 37°C. Plates were washed with PBS / Tween and then incubated with a secondary reagent conjugated to horseradish peroxidase (HRP) (e.g., for human antibodies, goat-anti-human IgG Fc-specific polyclonal reagent) for 1 hour at 37°C. After washing, plates were developed with ABTS substrate (Moss Inc., Product: ABTS-1000) and analyzed spectrophotometrically at OD 415-495. Sera from immunized mice were then further screened by flow cytometry for binding to cell lines expressing human FAM19A5, but not to control cell lines not expressing FAM19A5. Briefly, binding of the anti-FAM19A5 antibody was assessed by incubating FAM19A5-expressing CHO cells with the anti-FAM19A5 antibody at a 1:20 dilution. The cells were washed, and binding was detected with a PE-labeled anti-human IgG Ab. Flow cytometric analysis was performed using a FACScan flow cytometer (Becton Dickinson, San Jose, CA). Preferably, mice generating the highest titers will be used for fusions.
[0242] ELISA assays such as those described above can be used to screen for antibodies and hybridomas that produce antibodies that exhibit positive reactivity with the FAM19A5 immunogen. Preferably, hybridomas that produce antibodies that bind with high affinity to FAM19A5 can be subcloned and further characterized. One clone from each hybridoma that maintains the reactivity of the parent cell (by ELISA) can be created into a cell bank and selected for antibody purification.
[0243] To purify anti-FAM19A5 antibodies, selected hybridomas can be grown in 2-liter spinner flasks for monoclonal antibody purification. The supernatant can be filtered and concentrated before affinity chromatography on Protein A Sepharose (Pharmacia, Piscataway, NJ). The eluted IgG can be checked by gel electrophoresis and high-performance liquid chromatography to ensure purity. The buffer solution can be exchanged into PBS, and the concentration can be determined by OD 280 using a 1.43 extinction coefficient. The monoclonal antibodies can be aliquoted and stored at -80°C.
[0244] To determine whether selected anti-FAM19A5 monoclonal antibodies bind to unique epitopes, each antibody can be biotinylated using commercially available reagents (Pierce, IL). Biotinylated MAb binding can be detected with a streptavidin-labeled probe. Competition studies using unlabeled and biotinylated monoclonal antibodies can be performed using the FAM19A5-coated ELISA plates described above.
[0245] To determine the isotype of purified antibodies, isotype ELISAs can be performed using reagents specific for antibodies of a particular isotype. For example, to determine the isotype of a human monoclonal antibody, the wells of a microtiter plate can be coated with 1 μg / ml anti-human immunoglobulin overnight at 4°C. After blocking with 1% BSA, the plate is reacted with 1 μg / ml or less of the test monoclonal antibody or purified isotype control for 1-2 hours at ambient temperature. The wells can then be reacted with human IgG1- or human IgM-specific alkaline phosphatase-conjugated probes. The plate is then developed and analyzed as described above.
[0246] To test the binding of monoclonal antibodies to living cells expressing FAM19A5, flow cytometry can be used as described in the Examples. Briefly, cell lines expressing membrane-bound FAM19A5 (grown under standard growth conditions) are mixed with various concentrations of monoclonal antibodies in PBS containing 0.1% BSA for 1 hour at 4°C. After washing, the cells are reacted with fluorescein-labeled anti-IgG antibodies under the same conditions as the primary antibody staining. Samples can be analyzed with a FACScan instrument using light and side scatter properties to gate on single cells, and the binding of the labeled antibody is determined. Other analytical methods using fluorescence microscopy can be used in addition to or as an alternative to flow cytometry. Cells can be stained exactly as described above and examined by fluorescence microscopy. While this method allows visualization of individual cells, sensitivity may be reduced depending on the density of the antigen.
[0247] Anti-FAM19A5 antibodies can be further tested for reactivity with the FAM19A5 antigen by Western blot. Briefly, cell extracts from cells expressing FAM19A5 can be prepared and subjected to sodium dodecyl sulfate polyacrylamide gel electrophoresis. After electrophoresis, the separated antigens are transferred to a nitrocellulose membrane, blocked with 20% mouse serum, and probed with the monoclonal antibody to be tested. IgG binding can be detected using anti-IgG alkaline phosphatase and developed with BCIP / NBT substrate tablets (Sigma Chem. Co., St. Louis, MO).
[0248] Methods for analyzing the binding affinity, cross-reactivity, and binding kinetics of various anti-FAM19A5 antibodies can be performed using standard assays known in the art, such as BIACORE. TM BIACORE using the 2000SPR instrument (Biacore AB, Uppsala, Sweden) TM Surface plasmon resonance (SPR) analysis is included.
[0249] In one embodiment, the antibody specifically binds to the soluble form of human FAM19A5. In one embodiment, the antibody specifically binds to the membrane-bound form of human FAM19A5. The antibody can specifically bind to a particular epitope of FAM19A5 (e.g., SEQ ID NO:15 or a fragment within SEQ ID NO:15). In certain embodiments, the antibody preferably binds to human FAM19A5 with high affinity and does not cross-react with other members of the FAM19 subfamily of proteins.
[0250] VIII. Bispecific molecules The antibodies described herein can be used to form bispecific molecules. Anti-FAM19A5 antibodies or antigen-binding portions thereof can be derivatized or linked to other functional molecules, such as other peptides or proteins (e.g., other antibodies or ligands for receptors), to generate bispecific molecules that bind to at least two distinct binding sites or target molecules. Cytokines such as IL-6, CNTF, LIF, EGF, and TGFα have been implicated as triggers of the pathogenesis of gliosis and / or reactive astrogliosis by activating the protein signal transducer and activator of transcription 3 (STAT3) (Balasingam et al., J. Neurosci. 14(2):846-56 (1994); Winter et al., Proc. Natl. Acad. Sci. USA 20;92(13):5865-9 (1995)), which mediates many aspects of reactive astrogliosis after CNS injury. Herrmann JE et al., J. Neurosci. 28(28):7231-7243(2008). For example, the absence or reduction of STAT3 leads to impaired upregulation of glial fibrillary acidic protein (GFAP), failure of astrocyte hypertrophy, and increased spread of inflammation, increased lesion volume, and partially impaired motor recovery after CNS injury. Herrmann JE et al., J. Neurosci. 28(28):7231-7243(2008). Thus, for example, an anti-FAM19A5 antibody can be linked to an antibody or scFv that specifically binds to any protein involved in the pathogenesis of gliosis and / or the excessive proliferation of reactive astrogliosis, such as an antibody against IL-6, CNTF, LIF, EGF, or TGFα, for combination therapy.
[0251] The anti-FAM19A5 antibody can also be linked to an antibody or scFv that treats a disease or disorder in a subject, including central nervous system injury (e.g., traumatic brain injury, cerebrospinal injury, stroke, or brain tumor), cerebrospinal system injury, degenerative brain disorder (e.g., Huntington's disease, Parkinson's disease, Alzheimer's disease, multiple sclerosis, ALS), degenerative cerebrospinal or neurological disorders, or neuropathic pain (see Section XII, "Diseases or Disorders"). For example, the anti-FAM19A5 antibody can be linked to an antibody or scFv that treats multiple sclerosis, such as Natalizumab (TYSABRI®) or Alemtuzumab (LEMTRADA®).
[0252] The antibodies described herein can be derivatized or linked to one or more other functional molecules to generate multispecific molecules that actually bind to two or more distinct binding sites and / or target molecules; such multispecific molecules are also intended to be encompassed by the term "bispecific molecule" as used herein. To generate the bispecific molecules described herein, the antibodies described herein can be operatively linked (e.g., by chemical conjugation, genetic fusion, noncovalent bonding, or other means) to one or more other binding molecules, such as yet another antibody, antibody-binding portion thereof, peptide, or binding mimetic. In one embodiment, the bispecific molecule binds to FAM19A5 and VEGF. In another embodiment, the bispecific molecule binds to FAM19A5 and EGF.
[0253] Thus, the present invention provides bispecific molecules comprising at least one first binding specificity for FAM19A5 and a second binding specificity for a second target epitope. In embodiments of the invention in which the bispecific molecule is multispecific, the molecule can further comprise a third binding specificity.
[0254] In one embodiment, the bispecific molecules described herein comprise as binding specificities one or more antibodies or antibody-binding portions thereof, including, for example, Fab, Fab', F(ab'), Fv, or single-chain Fv (scFv). The antibody can also be a light or heavy chain dimer, or any minimal fragment thereof, such as an Fv or single-chain construct as described in U.S. Patent No. 4,946,778 to Ladner et al., the contents of which are incorporated by reference.
[0255] Although human monoclonal antibodies are preferred, other antibodies that may be used in the bispecific molecules described herein are murine, chimeric, and humanized monoclonal antibodies.
[0256] The bispecific molecules described herein can be prepared by covalently linking the component binding specificities using methods known in the art. For example, each binding specificity of the bispecific molecule can be generated separately and then covalently linked to one another. When the binding specificities are proteins or peptides, a variety of coupling or cross-linking agents can be used for covalent linkage. Examples of cross-linking agents include protein A, carbodiimide, N-succinimidyl-S-acetyl-thioacetate (SATA), 5,5'-dithiobis(2-nitrobenzoic acid) (DTNB), o-phenylenedimaleimide (oPDM), N-succinimidyl-3-(2-pyridyldithio)propionate (SPDP), and sulfosuccinimidyl 4-(N-maleimidomethyl)cyclohexane-1-carboxylate (sulfo-SMCC) (see, e.g., Karpovsky et al., (1984) J. Exp. Med. 160:1686; Liu, MA et al., (1985) Proc. Natl. Acad. Sci. USA 82:8648). Other methods are described by Paulus (1985) Behring Ins. Mitt. 78, 118-132; Brennan et al. (1985) Science 229:81-83; and Glennie et al. (1987) J. Immunol. 139:2367-2375. Preferred conjugating agents are SATA and sulfo-SMCC, available from Pierce Chemical Co. (Rockford, IL).
[0257] When the binding specificities are antibodies, they can be covalently linked via sulfhydryl bonds in the C-terminal hinge regions of the two heavy chains. In a particularly preferred embodiment, the hinge region is modified to contain an odd number of sulfhydryl residues, preferably one, prior to covalent linkage.
[0258] Alternatively, both binding specificities can be encoded in the same vector and expressed and assembled in the same host cell. This method is particularly useful when the bispecific molecule is a mAb x mAb, mAb x Fab, mAb x (scFv)2, Fab x F(ab')2, or ligand x Fab fusion protein. Bispecific antibodies can include antibodies with an scFv at the C-terminus of each heavy chain. The bispecific molecules described herein can be single-chain molecules containing one single-chain antibody and a binding determinant, or single-chain bispecific molecules containing two binding determinants. Bispecific molecules can comprise at least two single-chain molecules. Methods for producing bispecific molecules are described, for example, in U.S. Patent No. 5,260,203; U.S. Patent No. 5,455,030; U.S. Patent No. 4,881,175; U.S. Patent No. 5,132,405; U.S. Patent No. 5,091,513; U.S. Patent No. 5,476,786; U.S. Patent No. 5,013,653; U.S. Patent No. 5,258,498; and U.S. Patent No. 5,482,858.
[0259] Binding of bispecific molecules to their specific targets can be confirmed using methods known in the art, such as enzyme-linked immunosorbent assay (ELISA), radioimmunoassay (RIA), FACS analysis, bioassay (e.g., growth inhibition), or Western blot analysis. Each of these assays generally detects the presence of a protein-antibody complex of particular interest by employing a labeled reagent (e.g., an antibody) specific for the complex of interest.
[0260] IX. Diagnosis In one embodiment, the moiety attached to the anti-FAM19A5 antibody is selected from the group consisting of a binding moiety, a labeling moiety, and a biologically active moiety.
[0261] The antibodies described herein can be used for diagnostic purposes, including sample testing and in vivo imaging, for which the antibodies (or binding moieties thereof) can be conjugated to a suitable detection agent to form an immunoconjugate. For diagnostic purposes, suitable agents are radioisotopes for whole-body imaging, and detectable labels including radioisotopes, enzymes, fluorescent labels, and other antibody tags suitable for sample testing.
[0262] The detectable label may be any of a variety of types currently used in the in vitro diagnostic field, examples of which include metal sols such as colloidal gold, I provided with peptide chelators of the N2S2, N3S or N4 type, 125 or Tc 99 These include particulate labels containing isotopes such as , chromophores including fluorescent markers, luminescent markers, phosphorescent markers, etc., enzyme labels that convert a given substance into a detectable marker, and polynucleotide tags that are revealed after amplification, e.g., by the polymerase chain reaction. Suitable enzyme labels include horseradish peroxidase, alkaline phosphatase, etc. For example, the label can be the enzyme alkaline phosphatase, which is detected by measuring the presence or formation of chemiluminescence following conversion of a 1,2-dioxetane substrate such as adamantyl methoxyphosphoryloxyphenyl dioxetane (AMPPD), disodium 3-(4-(methoxyspiro{1,2-dioxetane-3,2'-(5'-chloro)tricyclo{3.3.1,13,7}decan}-4-yl)phenyl phosphate (CSPD), as well as CDP and CDP-star® or other luminescent materials known in the art, e.g., chelates of suitable lanthanides such as terbium(III) and europium(III). The means of detection will be determined by the label selected. The appearance of the label or its reaction products, if the label is particulate and has accumulated to an appropriate level, can be discerned visually or using mechanisms such as spectrophotometers, luminometers, fluorometers, etc., according to standard practice.
[0263] The antibodies described herein can also be conjugated to a therapeutic agent to form an immunoconjugate, such as an antibody-drug conjugate (ADC). Suitable therapeutic agents include agents that modulate the pathogenesis of gliosis and / or reactive astrogliosis and / or agents that treat degenerative brain disorders, central nervous system injuries, or neuropathic pain. Therapeutic agents for treating degenerative brain disorders include drugs for treating Huntington's disease, Parkinson's disease, Alzheimer's disease, multiple sclerosis, and amyotrophic lateral sclerosis (ALS). This includes drugs commonly used to treat degenerative brain disorders, such as those described in Section XII.
[0264] Immunoconjugates can be prepared by methods known in the art. Preferably, the conjugation method results in substantially (or nearly) non-immunogenic linkages, such as peptide (i.e., amide), sulfide, (sterically hindered), disulfide, hydrazone, and ether linkages. These linkages are largely non-immunogenic and exhibit suitable stability in serum (see, e.g., Senter, PD, Curr. Opin. Chem. Biol. 13 (2009) 235-244; WO 2009 / 059278; WO 95 / 17886).
[0265] Depending on the biochemical properties of the moiety and the antibody, different conjugation strategies can be used. When the moiety is naturally occurring or recombinant, consisting of 50 to 500 amino acids, standard procedures exist in textbooks describing the chemistry for the synthesis of protein conjugates and can be easily followed by those skilled in the art (see, e.g., Hackenberger, CPR, and Schwarzer, D., Angew. Chem. Int. Ed. Engl. 47 (2008) 10030-10074). In one embodiment, reaction of a maleinimide moiety with a cysteine residue in the antibody or moiety is used. This is a particularly suitable coupling chemistry when, for example, Fab or Fab' fragments of an antibody are used. Alternatively, in one embodiment, conjugation to the C-terminus of the antibody or moiety is performed. C-terminal modifications of proteins, for example Fab-fragments, can be performed as described (Sunbul, M. and Yin, J., Org. Biomol. Chem. 7 (2009) 3361-3371).
[0266] Generally, site-specific reactions and covalent bonds are based on converting natural amino acids into amino acids with orthogonal reactivity to other functional groups present. For example, specific cysteines in rare sequence contexts can be enzymatically converted into aldehydes (see Frese, MA and Dierks, T., ChemBioChem. 10 (2009) 425-427). It is also possible to obtain desired amino acid modifications by utilizing the specific enzymatic reactivity of natural amino acids and specific enzymes in a given sequence context (see, e.g., Taki, M. el., Prot. Eng. Des. Sel. 17 (2004) 119-126; Gautier, A. et al., Chem. Biol. 15 (2008) 128-136). Protease-catalyzed C-N bond formation has been used by Bordusa, F., Highlights in Bioorganic Chemistry (2004) 389-403).
[0267] Site-specific reactions and covalent bonds can also be achieved by selective reaction of terminal amino acids with appropriate modification reagents. The reactivity of N-terminal cysteines with benzonitrile (see Ren, H. et al., Angew. Chem. Int. Ed. Engl. 48 (2009) 9658-9662) can be used to achieve site-specific covalent bonds. Native chemical ligation can also rely on C-terminal cysteine residues (Taylor, E. Vogel; Imperiali, B., Nucleic Acids and Molecular Biology (2009), 22 (Protein Engineering), 65-96).
[0268] EP1074563 describes a conjugation method based on the rapid reaction of cysteines located in a stretch of positively charged amino acids with cysteines within a stretch of negatively charged amino acids.
[0269] The moiety can also be a synthetic peptide or peptidomimetic. When a polypeptide is chemically synthesized, amino acids with orthogonal chemical reactivity can be incorporated during the synthesis (see, for example, De Graaf, AJ et al., Bioconjug. Chem. 20 (2009) 1281-1295). A wide variety of orthogonal functional groups are at stake and can be introduced into synthetic peptides, so it is standard chemistry to conjugate such peptides to linkers.
[0270] To obtain a single-labeled polypeptide, conjugates with a 1:1 stoichiometry can be separated from other conjugate by-products by chromatography. This procedure can be facilitated by using dye-labeled binding pair members and charged linkers. By using such types of labeled and positively charged binding pair members, single conjugated polypeptides are easily separated from unlabeled polypeptides and polypeptides bearing one or more linkers, since differences in charge and molecular weight can be used for separation. Fluorescent dyes can be useful for purifying complexes from unbound components, such as labeled monovalent binding agents.
[0271] X. Pharmaceutical Compositions Physiologically acceptable carriers, excipients, or stabilizers (Remington's Pharmaceutical Sciences (1990) Mack Publishing Co, Easton, PA) are disclosed for compositions comprising antibodies or antigen-binding portions thereof useful in the methods disclosed herein, having the desired degree of purity. Acceptable carriers, excipients, or stabilizers are non-toxic to recipients at the dosages and concentrations employed, and include buffers, such as phosphate, citrate, and other organic acids; antioxidants, including ascorbic acid and methionine; preservatives (e.g., octadecyldimethylbenzylammonium chloride; hexamethonium chloride; benzalkonium chloride; benzethonium chloride; phenol, butyl, or benzyl alcohol; alkyl parabens, such as methyl or propyl paraben; catechol; resorcinol; cyclohexanol; 3-pentaerythritol; methylparaben ... and m-cresol); low molecular weight (less than about 10 residues) polypeptides; proteins such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; amino acids such as glycine, glutamine, asparagine, histidine, arginine, or lysine; monosaccharides, disaccharides, and other carbohydrates including glucose, mannose, or dextrins; chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose, or sorbitol; salt-forming counter-ions such as sodium; metal complexes (e.g., Zn-protein complexes); and / or non-ionic surfactants such as TWEEN®, PLURONICS®, or polyethylene glycol (PEG).
[0272] In certain embodiments, a pharmaceutical composition comprises an antibody or antigen-binding portion thereof, bispecific molecule, or immunoconjugate disclosed herein, and optionally one or more additional prophylactic or therapeutic agents, in a pharmaceutically acceptable carrier. In certain embodiments, a pharmaceutical composition comprises an effective amount of an antibody or antigen-binding portion thereof disclosed herein, and optionally one or more additional prophylactic or therapeutic agents, in a pharmaceutically acceptable carrier. In some embodiments, the antibody is the only active ingredient contained in the pharmaceutical composition. The pharmaceutical compositions disclosed herein enhance, induce, or activate FAM19A5 activity and are useful for treating conditions such as central nervous system injury, degenerative brain disorders, or neuropathic pain.
[0273] Pharmaceutically acceptable carriers used in parenteral formulations include aqueous vehicles, non-aqueous vehicles, antibacterial agents, isotonic agents, buffers, antioxidants, local anesthetics, suspending and dispersing agents, emulsifying agents, sequestering or chelating agents, and other pharmaceutically acceptable substances. Examples of aqueous vehicles include sodium chloride injection, Ringer's solution, isotonic dextrose injection, sterile water injection, dextrose, and lactated Ringer's solution. Non-aqueous parenteral vehicles include fixed oils of vegetable origin, cottonseed oil, corn oil, sesame oil, and peanut oil. Antibacterial agents in bacteriostatic or fungistatic concentrations may be added to parenteral formulations packaged in multi-dose containers, including phenols or cresols, mercury-containing substances, benzyl alcohol, chlorobutanol, methyl and propyl p-hydroxybenzoates, thimerosal, benzalkonium chloride, and benzethonium chloride. Isotonic agents include sodium chloride and dextrose. Buffers include phosphate and citrate. Antioxidants include sodium bisulfate. Topical anesthetics include procaine hydrochloride. Suspending and dispersing agents include sodium carboxymethylcellulose, hydroxypropyl methylcellulose, and polyvinylpyrrolidone. Emulsifying agents include polysorbate 80 (TWEEN® 80). Sequestering or chelating agents for metal ions include EDTA. Pharmaceutical carriers also include ethyl alcohol, polyethylene glycol, and propylene glycol for water-miscible vehicles, and sodium hydroxide, hydrochloric acid, citric acid, or lactic acid for pH adjustment.
[0274] Pharmaceutical compositions can be formulated for any route of administration to a subject. Specific examples of administration routes include intranasal, oral, parenteral, intraspinal, intraventricular, pulmonary, subcutaneous, or intraventricular routes. Parenteral administration, characterized by subcutaneous, intramuscular, or intravenous injection, is also contemplated. Injectables can be prepared in conventional forms, such as liquid solutions or suspensions, solid forms suitable for solution or suspension in liquid prior to injection, or emulsions. Injectables, solutions, and emulsions also contain one or more excipients. Suitable excipients are, for example, water, saline, dextrose, glycerol, or ethanol. If desired, the administered pharmaceutical composition may also contain minor amounts of nontoxic auxiliary substances, such as wetting or emulsifying agents, pH buffers, stabilizers, solubility enhancers, and other such agents, such as sodium acetate, sorbitan monolaurate, triethanolamine oleate, and cyclodextrins.
[0275] Formulations of antibodies for parenteral administration include sterile solutions ready for injection, sterile dry soluble products such as lyophilized powders ready for reconstitution with a solvent immediately prior to use, tablets for subcutaneous injection, sterile suspensions ready for injection, sterile dry insoluble products ready for reconstitution with a vehicle immediately prior to use, and sterile emulsions. The solutions can be aqueous or non-aqueous.
[0276] If administered intravenously, suitable carriers include physiological saline or phosphate buffered saline (PBS), and solutions containing viscosity enhancing and solubilizing agents, such as glucose, polyethylene glycol, and polypropylene glycol, and mixtures thereof.
[0277] Topical mixtures containing antibodies are prepared as described for local and systemic administration. The resulting mixture may be a solution, suspension, emulsion, etc., and may be formulated as a cream, gel, ointment, emulsion, solution, elixir, lotion, suspension, tincture, paste, foam, aerosol, irrigant, spray, suppository, bandage, skin patch, or any other formulation suitable for topical administration.
[0278] The antibodies or antigen-binding portions thereof disclosed herein can be formulated as aerosols for local administration, e.g., by inhalation. (See, e.g., U.S. Pat. Nos. 4,044,126, 4,414,209, and 4,364,923, which disclose aerosols for the delivery of steroids useful in the treatment of inflammatory diseases, particularly asthma.) These formulations for airway administration can be in the form of aerosols or solutions for nebulizers, or ultrafine powders for inhalation, used alone or in combination with an inert carrier such as lactose. In this case, the particles of the formulation have diameters of less than 50 microns in some embodiments, and less than 10 microns in some embodiments.
[0279] The antibodies or antigen-binding portions thereof disclosed herein can be formulated for topical or local application, e.g., topical application to the skin and mucous membranes, e.g., to the eyes, as gels, creams, and lotions, and can be formulated for ophthalmic or intrasternal or intrathecal administration. Topical administration is contemplated for transdermal delivery, and also for ocular or mucosal administration, or for inhalation therapy. Nasal administration of the antibodies, in combination with or alone with other pharmaceutically acceptable excipients, can also be administered.
[0280] Transdermal patches, including iontophoretic and electrophoretic devices, are known to those of skill in the art and can be used to administer antibodies. For example, such patches are disclosed in U.S. Patent Nos. 6,267,983, 6,261,595, 6,256,533, 6,167,301, 6,024,975, 6,010,715, 5,985,317, 5,983,134, 5,948,433, and 5,860,957.
[0281] In certain embodiments, pharmaceutical compositions comprising the antibodies or antigen-binding portions thereof disclosed herein are lyophilized powders, which can be reconstituted for administration as solutions, emulsions, and other mixtures. Lyophilized powders may also be reconstituted and formulated as solids or gels. Lyophilized powders are prepared by dissolving the antibodies or antigen-binding portions thereof disclosed herein, or pharmaceutically acceptable derivatives thereof, in an appropriate solvent. In some embodiments, the lyophilized powders are sterile. The solvent may contain excipients that improve the stability or other pharmaceutical components of the powder or a reconstituted solution prepared from the powder. Possible excipients include, but are not limited to, dextrose, sorbitol, fructose, corn syrup, xylitol, glycerin, glucose, sucrose, or other suitable formulations. In some embodiments, the solvent may also contain a weakly neutral pH buffer, such as citrate, sodium or potassium phosphate, or other buffers known to those skilled in the art. Subsequent sterile filtration of the solution followed by lyophilization under standard conditions known to those skilled in the art provides the desired formulation. In some embodiments, the resulting solution is apportioned into vials for lyophilization. Each vial may contain a single dose or multiple doses of the compound. The lyophilized powder may be stored under appropriate conditions, for example, at about 4° C. to room temperature.
[0282] Reconstitution of this lyophilized powder with water for injection provides a formulation for use in parenteral administration. For reconstitution, the lyophilized powder is added to sterile water or other suitable carrier. The exact amount will depend on the compound selected. Such amounts can be determined empirically.
[0283] The antibodies or antigen-binding portions thereof, bispecific molecules, or immunoconjugates disclosed herein, as well as other compositions disclosed herein, can also be formulated to target specific tissues, receptors, or other body regions to be treated. Many targeting methods are known to those skilled in the art. All such targeting methods are contemplated for use with the present compositions. For non-limiting examples of targeting methods, see, e.g., U.S. Patent Nos. 6,316,652, 6,274,552, 6,271,359, 6,253,872, 6,139,865, 6,131,570, 6,120,751, 6,071,495, 6,060,082, 6,048,736, 6,039,975, 6,004,534, 5,985,307, 5,972,366, 5,900,252, 5,840,674, 5,759,542, and 5,709,874. In certain embodiments, the antibodies, or antigen-binding portions thereof, described herein are targeted to treat central nervous system injuries, degenerative brain disorders, or neuropathic pain.
[0284] Compositions to be used for in vivo administration can be sterilized, for example, readily sterilized by filtration through sterile filtration membranes.
[0285] XI. Kit Kits are provided that include one or more antibodies, or antigen-binding portions thereof, bispecific molecules, or immunoconjugates thereof described herein. In certain embodiments, pharmaceutical packs or kits are provided that include one or more containers filled with one or more of the components of a pharmaceutical composition, such as one or more antibodies or antigen-binding portions thereof disclosed herein, and optional instructions for use. In some embodiments, the kits contain a pharmaceutical composition disclosed herein and any prophylactic or therapeutic agent.
[0286] XII. Therapeutic Uses and Methods The present invention provides a method of alleviating CNS damage or injury in a subject, comprising administering to a subject (e.g., a human) in need thereof an anti-FAM19A5 antibody, bispecific molecule or immunoconjugate, or composition thereof, described herein.
[0287] In another aspect, the present invention provides methods for inhibiting, slowing, reducing, limiting, reducing, reversing, or preventing the onset or onset of gliosis and its associated deleterious effects on the CNS in a subject, comprising administering to the subject an anti-FAM19A5 antibody disclosed herein. In some embodiments, the present invention provides methods for inhibiting, slowing, reducing, limiting, reducing, reversing, or preventing the excessive or abnormal proliferation of reactive astrocytes and its associated deleterious effects on the CNS in a subject, comprising administering to the subject an anti-FAM19A5 antibody disclosed herein. In some embodiments, the present invention provides methods for reducing, suppressing, or decreasing the expression of chondroitin sulfate proteoglycans (including neurocan, NG2, or all levels), or for decreasing or conferring inactive neuronal, NG2, or all activity, comprising administering to the subject an anti-FAM19A5 antibody described herein. In some embodiments, the present invention provides methods for stimulating, promoting, increasing, or activating neuronal growth in a subject, preferably after injury or damage, comprising administering to the subject an anti-FAM19A5 antibody described herein. In other embodiments, the present invention provides methods for administering an anti-FAM19A5 antibody of the present disclosure to a subject to increase the level of c-fos mRNA, c-fos protein, or c-fos protein activity, preferably increasing the level of ERK mRNA, ERK protein, or pERK activity in neuronal nuclei. In certain embodiments, the present invention provides methods for administering an anti-FAM19A5 antibody described herein to a subject to enhance or increase the level of GAP43 mRNA or GAP43 protein, or increase GAP43 protein activity, preferably in neurons. In certain embodiments, the present invention provides methods for administering an anti-FAM19A5 antibody described herein to a subject to enhance or promote neuronal survival and / or promote axonal regrowth in a subject in need thereof. In some embodiments, the subject is a human, preferably a human with neuronal damage or injury from CNS injury, trauma, injury, cerebrospinal cord injury, brain tumor, infection, ischemia, stroke, autoimmune response, and / or neurodegenerative disease.
[0288] In some aspects, the present invention also provides methods for treating a disease, disorder, or condition by administering an anti-FAM19A5 antibody disclosed herein to a subject. In some embodiments, the disease, disorder, or condition includes a central nervous system injury, a cerebrospinal system injury, a degenerative brain disorder, a degenerative cerebrospinal fluid or nerve disorder, or neuropathic pain. In some embodiments, the central nervous system injury is a traumatic brain injury, a cerebrospinal cord injury, a stroke, a brain tumor, or a combination thereof. In some embodiments, the degenerative brain disorder is Huntington's disease, Parkinson's disease, Alzheimer's disease, multiple sclerosis, amyotrophic lateral sclerosis (ALS), or a combination thereof. Thus, in certain embodiments, the present invention provides methods for treating a traumatic brain injury, a cerebrospinal cord injury, a stroke, a brain tumor, or a combination thereof in a subject in need thereof by administering an anti-FAM19A5 antibody disclosed herein or a composition thereof to the subject. In some embodiments, the present invention provides a method for treating Huntington's disease, Parkinson's disease, Alzheimer's disease, multiple sclerosis, or ALS by administering an anti-FAM19A5 antibody or composition thereof disclosed herein to a subject. In some embodiments, the subject is a human.
[0289] In some embodiments, an anti-FAM19A5 antibody may be administered in combination with one or more additional agents for treating central nervous system injury (e.g., traumatic brain injury, cerebrospinal cord injury, stroke, or brain tumor), cerebrospinal fluid system injury, degenerative brain disorder (e.g., Huntington's disease, Parkinson's disease, Alzheimer's disease, multiple sclerosis, ALS), degenerative cerebrospinal fluid or neurological disorder or neuropathic pain.
[0290] In some embodiments, the disease, disorder, or condition comprises a tumor, fibrosis, glaucoma, or mood disorder. In certain embodiments, the disease, disorder, or condition comprises a tumor. In some embodiments, the tumor comprises melanoma, pancreatic cancer, glioma (e.g., glioblastoma multiforme (GBM)), breast cancer, lymphoma, lung cancer, kidney cancer, prostate cancer, fibrosarcoma, colon adenocarcinoma, liver cancer, or ovarian cancer.
[0291] In some embodiments, the anti-FAM19A5 antibodies of the present disclosure induce vascular normalization, for example, within tumors. In some embodiments, vascular normalization is accompanied by changes in vascular properties, including increased connectivity, increased wall thickness, decreased vessel diameter, more regular vascular orientation and distribution pattern, increased number of blood vessels, decreased leakage and permeability, increased pericyte coverage and proximity in blood vessels, increased oxygenation, or a combination thereof.
[0292] In some embodiments, the anti-FAM19A5 antibodies of the present disclosure inhibit tumor growth, ie, tumor growth is inhibited by at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% compared to a baseline (e.g., tumor growth in a subject not administered the anti-FAM19A5 antibody).
[0293] In some embodiments, the anti-FAM19A5 antibody enhances immune cell infiltration into tumors. In some embodiments, immune cell infiltration into tumors is promoted / increased by at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% compared to a baseline (e.g., a cancer subject not administered the anti-FAM19A5 antibody). In certain embodiments, the immune cells comprise macrophages, dendritic cells, T lymphocytes, B lymphocytes, natural killer (NK) cells, or a combination thereof. In some embodiments, the immune cells exhibit hypertrophy. In some embodiments, the immune cell infiltration into tumors is accompanied by increased infiltration of neuronal cells into tumors. In certain embodiments, neuronal cells comprise astrocytes, glial cells, or a combination thereof.
[0294] In some embodiments, the anti-FAM19A5 antibodies of the present disclosure enhance phagocytosis of macrophages or microglia. In some embodiments, the anti-FAM19A5 antibodies increase the mitochondrial membrane potential of macrophages or microglia. In certain embodiments, phagocytosis or mitochondrial membrane potential is promoted or increased by at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% compared to a baseline (e.g., a cancer subject not administered an anti-FAM19A5 antibody).
[0295] In some embodiments, the anti-FAM19A5 antibodies of the present disclosure reduce tumor necrosis and edema. In other embodiments, the anti-FAM19A5 antibodies reduce tumor tissue permeability. In some embodiments, tumor necrosis and edema or tissue permeability is reduced by at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% compared to a baseline (e.g., a cancer subject not administered an anti-FAM19A5 antibody).
[0296] In some embodiments, the anti-FAM19A5 antibody increases blood flow rate in the tumor, hi certain embodiments, the blood flow rate is increased by at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% compared to a baseline (e.g., a cancer subject not administered the anti-FAM19A5 antibody).
[0297] In some embodiments, the method of treating a tumor comprises administering an additional therapeutic agent. In certain embodiments, the additional therapeutic agent comprises chemotherapy, immunotherapy, radiation therapy, or a combination thereof. In some embodiments, the immunotherapy comprises a monoclonal antibody, chimeric antigen receptor (CAR) therapy, T-cell therapy, NK-cell therapy, dendritic cell (DC) therapy, adoptive cell transfer (ACT), an immune checkpoint modulator, a cytokine, a cancer vaccine, an adjuvant, an oncolytic virus, or a combination thereof. In some embodiments, the chemotherapy comprises temozolomide, gemcitabine, paclitaxel, carboplatin, cisplatin, elotuxumab, lenalidomide, dexamethasone, oxaliplatin, or a combination thereof.
[0298] In some embodiments, a therapeutically effective amount of an anti-FAM19A5 antibody or composition thereof of the present disclosure is administered. When treating a subject (e.g., a human), the therapeutically effective amount of an anti-FAM19A5 antibody disclosed herein depends on factors such as age, sex, and severity of the disease.
[0299] In some embodiments, the anti-FAM19A5 antibodies or compositions thereof of the present disclosure are administered intravenously, orally, parenterally, intrathecally, intrathecally, intracerebroventricularly, pulmonary, subcutaneously, cutaneously, intramuscularly, or intraventricularly.
[0300] The following examples are offered by way of illustration and not by way of limitation.
[0301] Example Example 1: Expression and purification of human FAM19A5 protein Recombinant human FAM19A5 protein was produced and purified as described below, and the purified protein was used in antibody screening assays based on binding affinity analysis. First, an LPS-hT plasmid expressing the FAM19A5 gene was transformed into bacteria to induce protein overexpression. The produced FAM19A5 protein was purified using Ni-NTA affinity chromatography (Qiagen, Valencia, CA, USA). The His-tagged FAM19A5 protein was removed from the Ni-column using increasing concentrations of imidazole. Protein expression in solution was measured using Coomassie Brilliant Blue R-250 dye. The FAM19A5 imidazole-containing solution was isolated and the FAM19A5 protein was concentrated using PBS. Upon completion of the concentration, the purity and concentration of the FAM19A5 protein were measured using Western blot analysis. The concentrated protein was then used to screen for FAM19A5-specific antibodies.
[0302] Example 2: Generation of antibody library FAM19A5 1.Immunization The FAM19A5 protein was used as an antigen for immunization of chickens. 50 μg of a synthetic peptide-KLH conjugate was mixed with 750 μL of phosphate-buffered saline (PBS) and incubated at 37°C for 30 minutes. The toxins were then removed from 2% squalene-containing endotoxin MPL (monophosphorylated lipid A species), and the mycobacteria were emulsified with TDW and CWS cell wall components containing a water-in-oil emulsion supplement (RIBI+MPL+TDM+CWS supplement, Sigma, St. Louis, MO, USA). The emulsion was then subcutaneously injected into three chickens and four rabbits. The chickens and rabbits were immunized three and four times, respectively, at approximately 2-3 week intervals. The antibody titers obtained from immunized animals were measured by immunoblotting using cell lysates from HEK293T cells overexpressing the FAM19A5 protein.
[0303] 2. Production of single-chain variable fragment (scFv) libraries from immunized chickens and rabbits RNA was extracted from the spleen, bone marrow, and synovial sac of the immunized chickens described above using TRI Reagent (Invitrogen, Carlsbad, CA, USA). Oligo-dT primers and SUPERSCRIPT TM First-strand cDNA was synthesized using the III First-Strand Synthesis System (Invitrogen). Single-strand variable region libraries were generated using the Expand High Fidelity PCR System (Roche Molecular Systems, IN, USA) with cDNA obtained from animal immune systems. Each reaction contained 1 μL of cDNA, 60 pmol of each primer, 10 μL of 10x reaction buffer, 8 μL of 2.5 mM dNTPs (Promega, Madison, WI, USA), and 0.5 μL of Taq DNA polymerase mixed with water. The final volume was 100 μL. PCR reactions were performed using the following conditions: 30 cycles of (i) 94°C for 15 seconds, (ii) 56°C for 30 seconds, and (iii) 72°C for 90 seconds, followed by a final extension at 72°C for 10 minutes. The PCR product containing a fragment approximately 350 bp in length was loaded onto a 1.5% agarose gel, and after electrophoresis, the nucleotide fragment was purified using a QIAGEN Gel II extraction kit (QIAGEN, Valencia, CA, USA). The purified PCR product was analyzed by OD Quantification was performed by reading at 260 nm (1 unit OD = 50 μL / mL).
[0304] The two VH and VL first products from the second PCR were randomly linked by overlap extension PCR. Each PCR reaction was mixed with 100 ng of purified VL and VH products, 60 pmol of each primer, 10 μL of 10x reaction buffer, 8 μL of 2.5 mM dNTPs, 0.5 μL of Taq DNA polymerase, and water in a final volume of 100 μL. PCR was performed under the following conditions: 25 cycles of (i) 94°C for 15 seconds, (ii) 56°C for 30 seconds, and (iii) 72°C for 2 minutes, followed by a final extension at 72°C for 10 minutes. The PCR product, containing a single-chain variable region fragment approximately 700 bp in length, was loaded onto a 1.5% agarose gel, and the nucleotide fragment was purified after electrophoresis using a QIAGEN II gel extraction kit (QIAGEN). The purified PCR product was quantified by reading at OD 260 nm (1 unit OD = 50 μL / mL).
[0305] 3. Libraries, ligation and transformation The scFv fragment from the PCR product and the vector pComb3X-SS (The Scripps Research Institute, CA, USA) were digested with SfiI restriction enzyme. Ten μg of the purified overlapping PCR product was mixed with 360 units of SfiI (16 units per μg DNA, Roche Molecular Systems, Pleasanton, CA, USA), 20 μL of 10x reaction buffer, and water to a final volume of 200 μL. Twenty μg of pComb3X-SS vector was mixed with 120 units of SfiI (6 units per μg DNA), 20 μL of 10x reaction buffer, and water to a final volume of 200 μL. The mixture was digested at 50°C for 8 hours. The digested products, including the scFv fragment (approximately 700 bp) and vector (approximately 3,400 bp), were then loaded onto a 1% agarose gel and purified using the Gel Extraction Kit II QIAGEN (QIAGEN, Valencia, CA, USA). 1,400 ng of SfiI-restricted pComb3X vector and 700 ng of the cleaved scFv fragment were mixed with 5x ligase buffer, 10 μL of T4 DNA ligase (Invitrogen, Carlsbad, CA, USA), and water to a final volume of 200 μL. Ligation was carried out by incubating the mixture at 16°C for 16 hours.
[0306] After ethanol precipitation, the DNA pellet was dissolved in 15 μL of water. To generate the library, the ligation sample was transformed into Escherichia coli (E. coli) strain ER2738 (New The cells were transformed by electroporation using a vibrator gene (Gene Pulser: Bio-Rad Laboratories, Hercules, CA, USA) into 1000 kJ / ml SB medium (England Biolabs Inc, Hitchin, Hertfordshire, SG4 0TY, England, UK). The cells were mixed with 5 mL of Super Broth (SB) medium and incubated at 37°C for 1 hour with agitation at 250 rpm. 3 μL of 100 mg / mL kanamycin was then added to 10 mL of SB medium. To determine library size, 0.1 μL, 1 μL, and 10 μL culture samples were smeared onto Luria Broth (LB) agar plates containing 50 μg / mL kanamycin. After 1 hour of agitation, 4.5 μL of 100 mg / mL kanamycin was added to the LB culture and agitated for an additional hour. 2 mL of VCM13 helper phage (>10 11 The culture (cfu / mL) was added to LB medium along with 183 mL of prewarmed LB containing 92.5 μL of 100 mg / mL kanamycin. This mixture was further stirred at 250 rpm at 37°C for 2 hours. Then, 280 μL of kanamycin (50 mg / mL) was added to the culture and stirred overnight at 37°C. The next day, the bacterial pellet was centrifuged at 3,000 g at 4°C using a high-speed centrifuge (Beckman, JA-10 rotor). Phagemid DNA was then extracted using the bacterial pellet, and the supernatant was transferred to a sterile centrifuge bottle. Eight grams of polyethylene glycol-8000 (PEG-8000, Sigma) and 6 grams of sodium chloride (NaCl, Merck) were then added to the supernatant, which was then kept on ice for 30 minutes. The supernatant was then centrifuged at 15,000 g for 15 minutes at 4°C. The supernatant was then discarded and the phage pellet was suspended in Tris-buffered saline (TBS) containing 1% BSA.
[0307] Example 3: Library panning (bio-panning) against immunized antigens Biopanning was performed using magnetic beads (Dynabeads M-270 Epoxy, Invitrogen). Approximately 1 × 10 7Beads were coated with 5 μg of recombinant FAM19A5 protein by rotating the beads and protein together at room temperature for 20 hours. After coating, the beads were washed four times with phosphate-buffered saline (PBS) and blocked for 1 hour in PBS containing 3% BSA at room temperature. The coated beads were then incubated with the phage-displayed scFv described above for 2 hours at room temperature. To remove phage that did not bind to the antigen-coated beads, the beads were washed with 0.05% Tween 20 / PBS. Bound phage were then eluted with 50 μL of 0.1 M glycine / hydrogen chloride (0.1 M glycine-HCl, pH 2.2) and neutralized with 3 μL of 2 M Tris with hydrogen chloride (Tris-HCl, pH 9.1). The phage-containing supernatant was used to infect E. coli ER2738 cells, which were amplified overnight using VCSM13 helper phage and rescued. The input and output were also determined by phage titers from the phage-infected cultures by blotting the cultures onto LB agar plates containing 50 μg / mL kanamycin. The next day, the phages were precipitated with PEG-8000 and NaCl and then used for biopanning. Biopanning was performed up to a total of five times by repeating the above process. In each amplification, phages were screened and selected for high affinity to the FAM19A5 protein.
[0308] Example 4: Selection of clones by phage ELISA To analyze clones selected from biopanning, individual clones were randomly selected from the phage-displayed scFv and confirmed to bind to FAM19A5 recombinant protein using ELISA. FAM19A5 recombinant protein was diluted in 0.1 M NaHCO3 buffer and coated onto a 96-well microtiter plate at 100 ng per well for 16 hours at 4°C. The following day, the plate was blocked with 3% BSA / PBS at 37°C for 1 hour. The phage supernatant was then mixed with 6% BSA / PBS and incubated at 37°C for 2 hours. The plate containing the supernatant was then washed with 0.05% Tween 20 / PBS. HRP-conjugated M13 antibody (a-M13-HRP, Pierce Chemical Co., Rockford, IL, USA) was diluted 1 / 5,000. 50 μL of the diluted antibody was added to the plate and incubated at 37°C for 1 hour. After incubation and washing, 0.05 M citrate buffer, 1 μg / mL 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) (ABTS, Amresco, Solon, OH, USA), and 0.1% HO were added to the plate for color development. The absorbance of each well was measured at 405 nm.
[0309] Twenty-four clones generated from immunized chickens that bound to the FAM19A5 recombinant protein and showed high absorbance were analyzed. From these 24 clones, 13 scFv clones with unique sequences were obtained. For clones generated from immunized rabbits (data not shown), 164 clones were sequenced and 174 clones were initially confirmed. From these clones, 22 final unique ScFv sequences were obtained.
[0310] Example 5: Generation of deimmunized anti-FAM19A5 antibodies 1. Deimmunization of anti-FAM19A5 antibody (clone 1-65) To reduce the risk of immunogenicity when administered to human subjects, in silico analysis (EpiScreen Immunogenicity Analysis, Antitope Ltd., UK) was performed to identify specific regions of high immunogenicity within the anti-FAM19A5 antibody (e.g., 1-65). iTope was used to identify promiscuous MHC class II binding peptides. TM (Abzena plc., UK) was performed on 9-mer peptides that overlapped across the entire sequence. Potential T cell epitopes were predicted by analysis of interactions with 34 different MHC class II alleles. Clone 1-65 contained a total of 13 non-germline promiscuous MHC class II-binding peptides (Figure 2). Sequence alignments of the heavy and light chain variable regions of the 1-65 antibody and SS01-13 (i.e., the 1-65 antibody after deimmunization) are provided in Figure 1A and Figure 1B, respectively.
[0311] In addition, promiscuous MHC class II-binding peptides were identified using the TCED, a CD4+ T cell epitope database constructed by T cell stimulation analysis of over 10,000 peptides. TM (Abzena plc., UK). Clone 1-65 showed that four promiscuous MHC class II binding peptides had high homology to known T cell epitopes (Fig. 2).
[0312] 2. Construction of a composite antibody library The composite antibody library was designed to avoid CD4+ T cell epitopes associated with immunogenicity. To select the most homologous human germline for library construction, the framework of clone 1-65 was analyzed in the IgBLAST database (NCBI). Human germline IGLV3-25 * 02, IGLJ2 * 01, IGHV3-23 * 02 and IGHJ1 *The O1 gene was selected for clone 1-65 (Figure 1). A library was constructed to replace specific non-identical amino acid residues in the MHC class II binding region of clone 1-65 with corresponding amino acids in the most homologous human germline sequence. In particular, residues p1, p4, p6, p7, and p9 in the peptide are important for interaction with the binding groove of MHC class II alleles (James EA, Moustakas AK, Bui J, Nouv R, Papadopoulos GK, Kwok WW. J Immunol. 2009;183(5):3249-58).
[0313] A site-directed mutagenesis library was generated by sequential overlap extension polymerase chain reaction (PCR) of oligonucleotides encoding degenerate codons to cover both human and chicken amino acids, as previously described (Baek DS, Kim YS. Biochem Biophys Res Commun. 2015;463(3):414-20). PCR products were subcloned into a phagemid vector and transformed into Escherichia coli strain ER2738 (New England BioLabs, Ipswich, MA, USA) for phage production, as previously described (Han J, Lee JH, Park S, Yoon S, Yoon A, Hwang DB et al., Exp Mol Med. 2016;48(11):e271).
[0314] 3. Biopanning and Clonal Selection To isolate positive clones, biopanning and phage enzyme immunoassay were performed as previously described (Barbas CF. Phage display: A laboratory manual. Cold Spring Harbor, NY: Cold Spring Harbor Laboratory Press: 2001). Phage clones reactive with FAM19A5 were selected, and their nucleotide sequences were determined by Sanger sequencing. The scFv clone with the fewest promiscuous MHC class II-binding epitopes while maintaining affinity for FAM19A5 was finally selected.
[0315] A total of six promiscuous MHC class II-binding epitopes in clone 1-65 were removed from the deimmunized clone 1-65 (i.e., SS01-13-S5 antibody) (Figure 3A). The promiscuous MHC class II-binding epitopes in CDR-H1, CDR-H2, and CDR-H3 could not be removed (i.e., binding peptides #6, #7, #8, and #13 in Figure 3A). Furthermore, because the p6 residue of binding peptide #4 and the p4 residue of binding peptide #5 located in HFR1 play crucial roles in binding activity, the promiscuous MHC class II-binding epitopes in HFR1 could not be removed. A comparison of the binding of the deimmunized clone 1-65 antibody to the wild-type 1-65 antibody and the FAM19A5 protein is provided in Figure 3B.
[0316] Example 6: Site-directed removal of potential N-glycosylation sites in CDR-H2 of deimmunized anti-FAM19A5 antibody (clone 1-65) To construct a site-directed mutagenesis library, the gene encoding clone 1-65 scFv was used as a PCR template. S53 of CDR-H2 was randomized with an oligonucleotide encoding an NNK degenerate codon (N = A, T, G, or C, K = G or T) as previously described (Lee HK, Jin J, Kim SI, Kang MJ, Yi EC, Kim JE et al., Biochem Biophys Res Commun. 2017;493(1):325-31). The scFv fragments amplified by overlap extension PCR were subcloned into the phagemid vector and transformed into ER2738 (New England BioLabs) for phage production as previously described.
[0317] After transformation, randomly selected mutant scFv-displaying phages were rescued from titer plates and subjected to phage enzyme immunoassay as previously described (Barbas CF. Phage display: A laboratory manual. Cold Spring Harbor, NY: Cold Spring Harbor Laboratory Press; 2001). Phage clones showing similar reactivity to FAM19A5 were selected, and their nucleotide sequences were determined by Sanger sequencing. S53 can be substituted with threonine, glycine, and leucine. These results revealed that potential N-glycosylation sites in CDR-H2 of clone 1-65 can be eliminated by substituting serine with leucine or glycine.
[0318] Deimmunized clone 1-65 (i.e., SS01-13-S5 antibody), in which serine (S53G) (i.e., S5-SG antibody) was substituted with glycine, was constructed by overlap extension PCR using oligonucleotides (Figure 4C). After subcloning into a phagemid vector, phage-displaying S5-SG antibody was rescued and subjected to phage enzyme immunoassay as described above. The expression level and size of the antibody are shown in Figures 4A and 4B. The S5-SG antibody ("deimmunized clone 1-65-S53G") had lower affinity for the FAM19A5 protein than deimmunized clone 1-65 (i.e., SS01-13-S5 antibody) (Figure 4D).
[0319] Example 7: Binding affinity analysis To further evaluate the binding affinity of each anti-FAM19A5 antibody disclosed herein to the FAM19A5 protein, both SPR and ELISA analyses were used.
[0320] The following protocol was used for SPR analysis. FAM19A5 protein was diluted (2 μg / mL) in immobilization buffer (10 mM sodium acetate, pH 4.5). A CM5 sensor chip was activated with a mixture of ethyl(dimethylaminopropyl)carbodiimide (EDC) (400 mM) and NHS (100 mM) for 420 seconds. 2 μg / mL of FAM19A5 protein (in immobilization buffer, pH 4.5) was then injected into the Fc2 sample channel at a flow rate of 10 μL / min for 420 seconds to reach a level of approximately 50 RU. The chip was then deactivated with 1 M ethanolamine hydrochloride at a flow rate of 10 μL / min for 420 seconds. A reference surface Fc1 channel was also fabricated and similarly activated and deactivated. Anti-FAM19A5 antibody was diluted to individual concentrations (90 nM, 30 nM, 10 nM, 3.3 nM, 1.1 nM, and 0 nM) in running buffer (HBS-EP; 1x HEPES with 0.005% Tween-20, pH 7.4). The diluted anti-FAM19A5 antibody was injected into the Fc1-Fc2 channel at a flow rate of 30 μL / min during a 60-second association phase. This was followed by a 300-second dissociation phase in single-cycle kinetics mode. After each analysis cycle, the sensor chip surface was regenerated with 10 mM glycine-HCl, pH 1.5, for 60 seconds at a flow rate of 30 μL / min. Data were analyzed using BIA evaluation software with a 1:1 fit.
[0321] For ELISA analysis, the following protocol was used: Anti-rabbit Fc antibody (diluted to a concentration of 1 μg / mL in 50 mM carbonate buffer, pH 9.6) was used to coat a 96-well plate (100 μL / well) overnight at 4°C. The plate was then washed five times with wash buffer (PBST: 0.05% Tween-20 / PBS). The plate was then blocked with blocking buffer (1% BSA / PBST) (150 μL / well) for 1 hour at 37°C and further washed with wash buffer. Then, 50 ng / mL of FAM19A5-rabbit Fc (also referred to as FAM19A5-rFc) antigen diluted in blocking buffer was added to each well. The plate was further incubated for 1 hour at 37°C. After incubation, the plate was further washed five times with wash buffer. Anti-FAM19A5 antibody diluted in blocking buffer at different concentrations (2,055 pM, 685 pM, 228.3 pM, 76.1 pM, 25.4 pM, 8.5 pM, 2.8 pM, 0 pM) was added to each well, and the plate was incubated at 37°C for 2 hours. After incubation, the plate was washed (a total of 5 times in wash buffer), and then diluted anti-human kappa light chain-HRP (1:10,000 in blocking buffer) was added to the wells (100 μL / well). The plate was incubated at 37°C for 1 hour. The plate was then washed again and treated with TMB solution (100 μL / well). The reaction was terminated with 100 μL of sulfuric acid (2N H2SO4), and the degree of color change was detected by absorbance at 450 nm using a 96-well microplate reader (Molecular Device).
[0322] The analytical results are shown in Figures 5A to 5C and 6A to 6D. As shown in Figures 5A to 5C, the SPR results suggested that, among the three anti-FAM19A5 antibodies tested, the 1-65 antibody bound to the FAM19A5 protein with the highest binding affinity. The 1-65 antibody had a K of 0.345 nM. D whereas the SS01-13-S5 and S5-SG antibodies have K values of 2.201 nM and 1.797 nM, respectively. D Similar results were observed in the ELISA assay, as shown in Figure 6.
[0323] Example 8: Evaluation of the effect of anti-FAM19A5 antibody on the phagocytic ability of immune cells To evaluate whether the anti-FAM19A5 antibody disclosed herein affects the phagocytic activity of specific immune cells, BV cells (an immobilized murine microglial cell line) were used. Briefly, BV2 cells were cultured in 96-well plates (5 × 10 3 The cells were plated onto a 100 μL / well plate and incubated for 6 hours at 37°C in 5% CO2. The cells were then treated with human FAM19A5-Fc protein (0.25 μM, lot number 170815) alone or in combination with various concentrations of anti-FAM19A5 antibodies 1-65, SS01-13-S5, or S5-SG (3.125 μg / mL, 6.25 μg / mL, 12.5 μg / mL, or 25 μg / mL). Control cells were treated with PBS alone. The treated cells were further incubated for 16 hours at 37°C in 5% CO2. After incubation, PHRODO TM Green E. coli BioParticles (Thermofisher, P35366) were added to the cells (15 μg / 100 μL / well). Green fluorescence intensity was then measured every hour using INCUCYTE® (Sartorius) to monitor phagocytic uptake of the BioParticles.
[0324] As shown in Figures 7A-7C, treatment of BV2 cells with human FAM19A5-Fc protein inhibited the phagocytic activity of BV2 cells. However, treatment of BV2 cells with a combination of human FAM19A5-Fc protein and any of the tested anti-FAM19A5 antibodies restored phagocytosis in a concentration-dependent manner. Approximately 10 hours after treatment with BioParticles, the levels of phagocytosis observed with antibodies 1-65, SS01-13-S5, and S5-SG, compared to the control group (i.e., PBS alone), were as follows: 86%, 96%, and 89%, respectively. These results demonstrate that deimmunized SS01-13-S5 and S5-SG, like the 1-65 antibody, can effectively block FAM19A5-Fc protein-mediated inhibition in BV2 cells.
[0325] Example 9: Use of anti-FAM19A5 antibodies in animal models of brain injury To evaluate the in vivo function of the anti-FAM19A5 antibody disclosed herein, a traumatic brain injury (TBI) mouse model can be used. Briefly, mice will be administered with individual anti-FAM19A5 antibodies. After TBI induction (TBI5D), the animals can be sacrificed. The effect of the anti-FAM19A5 antibody, for example, the onset of reactive gliosis in the penumbra area after traumatic brain injury, will be measured.
[0326] Example 10: Anti-cancer effect of anti-FAM19A5 antibody in an induced melanoma model To evaluate the anti-cancer effect of the anti-FAM19A5 antibody of the present disclosure, an inducible mouse melanoma model can be used. Briefly, melanoma can be generated by crossing male Tyr::CreER;Braf+ / +;Ptenlox / lox mice (Jackson Lab, USA) with female Tyr::CreER;BrafCA / CA;Ptenlox / lox mice to produce Tyr::CreER;BrafCA / +;Ptenlox / lox mice. See Dankort D., et al., Nat Genet 41(5):544-52(2009). Melanoma will be spontaneously induced at approximately 7 weeks after birth. Mice can be classified according to tumor volume and number of melanomas.
[0327] After isolation, the animals can be administered anti-FAM19A5 antibody or a human IgG control antibody, and melanoma volume analysis can then be performed on the animals at various time points following administration.
[0328] Example 11: Use of anti-FAM19A5 antibodies in animal models of neuropathic pain A mouse model of chronic constriction injury (CCI) can be used to evaluate the in vivo function of the anti-FAM19A5 antibodies disclosed herein. Briefly, mice can be administered with a specific anti-FAM19A5 antibody. Approximately one week after administration, peripheral nerve injury can then be induced in the animals by scrotal nerve ligation. At various time points after injury, the animals can be evaluated for both mechanical allodynia (a response to external physical stimuli) and thermal hyperalgesia (a response to elevated temperatures). Mechanical allodynia is assessed by applying a Von Frey monofilament (0.16 g) multiple times to the injured paw and observing the frequency with which the animal responds to pain. Thermal hyperalgesia is assessed using the Hargreaves test, in which a radial heat stimulus (intensity: 30) is applied to the injured paw and the paw withdrawal latency is determined.
[0329] It should be understood that the Detailed Description section, other than the Summary and Abstract sections, is to be used for interpreting the claims. The Summary and Abstract sections may present one or more exemplary embodiments of the invention, but not all, as contemplated by the inventors, and are therefore not intended to limit the invention and the appended claims in any manner.
[0330] The present invention has been disclosed above with the aid of functional components illustrating embodiments of specified functions and their relationships. The boundaries of those functional components have been arbitrarily defined herein for the convenience of description. Alternative boundaries may also be defined so long as the specified functions and their relationships are appropriately performed.
[0331] The foregoing description of specific embodiments can fully illustrate the general nature of the present invention, and those skilled in the art can readily modify and / or adapt such specific embodiments for various applications without undue experimentation, without departing from the general concept of the present invention. Such modifications and variations are therefore intended to be within the meaning and range of equivalents of the disclosed embodiments, based on the teaching and guidance presented herein. It is to be understood that the words and terms used herein are for the purpose of description rather than limitation, and should be interpreted by those skilled in the art in light of the teaching and guidance.
[0332] The breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.
[0333] All publications, patents, patent applications, internet sites, and accession numbers / database sequences (including both polynucleotide and polypeptide sequences) cited herein are hereby incorporated by reference in their entirety for all purposes to the same extent as if each individual publication, patent, patent application, internet site, or accession number / database sequence was specifically and individually indicated to be incorporated by reference.
[0334] This PCT application claims priority to U.S. Provisional Application No. 62 / 669,648, filed May 10, 2018, and U.S. Provisional Application No. 62 / 838,187, filed April 24, 2019, which are incorporated herein by reference in their entireties.
Claims
1. 1. An isolated antibody, or antigen-binding portion thereof ("anti-FAM19A5 antibody"), that specifically binds to a human family having sequence similarity 19, member A5 (FAM19A5) protein, The anti-FAM19A5 antibody cross-competes with a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO: 11 and the VL comprises the amino acid sequence set forth in SEQ ID NO:
12.
2. 1. An isolated antibody, or antigen-binding portion thereof ("anti-FAM19A5 antibody"), that specifically binds to a human family having sequence similarity 19, member A5 (FAM19A5) protein, The anti-FAM19A5 antibody binds to the same human FAM19A5 epitope as a reference antibody, comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO: 11, and the VL comprises the amino acid sequence set forth in SEQ ID NO:
12. An isolated antibody or antigen-binding portion thereof.
3. The anti-FAM19A5 antibody of claim 2, wherein the human FAM19A5 epitope comprises the amino acid sequence set forth in SEQ ID NO:
15.
4. The anti-FAM19A5 antibody of claim 2, wherein the human FAM19A5 epitope comprises the amino acids GCDLLINR (SEQ ID NO: 16).
5. The anti-FAM19A5 antibody according to claim 2, which binds to amino acid residues 99 to 107 (EGCDLLINR) of SEQ ID NO: 2 or amino acid residues 102, 103, 105 and 107 (DL-I-R) of SEQ ID NO:
2.
6. A human FAM19A5 epitope consisting of the amino acid sequence set forth in SEQ ID NO: 15 or SEQ ID NO: 16, wherein the human FAM19A5 epitope binds to a reference antibody comprising a heavy chain variable region (VH) and a light chain variable region (VL), wherein the VH comprises the amino acid sequence set forth in SEQ ID NO: 11, and the VL comprises the amino acid sequence set forth in SEQ ID NO:
12.
7. The human FAM19A5 epitope of claim 6, wherein the human FAM19A5 epitope comprises the amino acid sequence set forth in SEQ ID NO:
15.
8. 7. The human FAM19A5 epitope of claim 6, wherein the human FAM19A5 epitope comprises the amino acids GCDLLINR (SEQ ID NO: 16).
9. The anti-FAM19A5 antibody according to claim 1 or 2, wherein the anti-FAM19A5 antibody is selected from the group consisting of IgG1, IgG2, IgG3, IgG4, variants thereof, and any combination thereof.
10. The anti-FAM19A5 antibody according to claim 1 or 2, which is a chimeric antibody, a human antibody, or a humanized antibody.
11. The anti-FAM19A5 antibody of claim 1 or 2, comprising Fab, Fab', F(ab')2, Fv, or single-chain Fv (scFv).
12. The anti-FAM19A5 antibody of claim 11, which is an scFV.
13. 3. The anti-FAM19A5 antibody of claim 1 or 2, which exhibits any one or more of the following properties: (a) binds to soluble human FAM19A5 with a KD of 10 nM or less, as measured by enzyme-linked immunosorbent assay (ELISA); (b) binds to membrane-bound human FAM19A5 with a KD of 10 nM or less as measured by ELISA; (c) reducing, reversing, delaying or preventing the onset of reactive gliosis; (d) inhibiting excessive proliferation of reactive astrocytes; (e) reducing the expression of chondroitin sulfate proteoglycans, including neurocan and neuron glial antigen 2 (NG2); (f) increased expression of c-fos and pERK in neuronal nuclei; (g) promoting neuronal survival; (h) increasing the expression of GAP43 in neurons; (i) promotes axonal regrowth; (j) induces vascular normalization; (k) inhibiting tumor growth; (l) improving immune cell infiltration into tumors; (m) improving neuronal cell infiltration into tumors; (n) enhancing phagocytosis of macrophages or microglia; (o) increasing the mitochondrial membrane potential of macrophages or microglia; (p) reducing the recruitment of myeloid-derived suppressor cells (MDSCs) into tumors; (q) reducing necrosis and edema in tumors; (r) reducing tumor tissue permeability; and (s) Increase blood flow in tumors.
14. A nucleic acid encoding the anti-FAM19A5 antibody of claim 1 or 2.
15. A vector comprising the nucleic acid of claim 14.
16. A cell comprising the vector of claim 15.
17. An immunoconjugate comprising the anti-FAM19A5 antibody of claim 1 or 2 linked to a pharmaceutical agent.
18. A composition comprising the anti-FAM19A5 antibody of claim 1 or 2, the nucleic acid of claim 14, the vector of claim 15, the cell of claim 16 or the immunoconjugate of claim 17, and a carrier.
19. A method for producing an anti-FAM19A5 antibody that specifically binds to human FAM19A5 protein, comprising culturing the cells of claim 16 under appropriate conditions to isolate the anti-FAM19A5 antibody.
20. The anti-FAM19A5 antibody of claim 1 or 2 for treating a disease or condition in a subject in need thereof.
Citation Information
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