Humanized anti-TrkA antibody and its use

Humanized anti-TrkA monoclonal antibodies address the limitations of current analgesics by blocking the NGF-TrkA pathway, offering effective pain relief with reduced immunogenicity and improved safety.

JP7837873B2Active Publication Date: 2026-03-31SUNSHINE LAKE PHARMA CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-18
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Current analgesics, such as NSAIDs and opioids, have limitations in efficacy and safety, and TrkA-targeted monoclonal antibodies face challenges in human use due to short half-life, immunogenicity, and antibody-mediated immune responses.

Method used

Development of humanized anti-TrkA monoclonal antibodies with specific CDR sequences and human framework regions, reducing immunogenicity and extending half-life, while effectively inhibiting pain by blocking the NGF-TrkA signaling pathway.

Benefits of technology

The humanized antibodies demonstrate comparable in vivo and in vitro activity to chimeric antibodies, with reduced immunogenicity and improved pharmacokinetic parameters, providing effective pain relief without adverse effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided are humanized antibodies or antigen-binding fragments thereof capable of specifically recognizing TrkA, and uses thereof. The antibodies comprise a heavy chain variable region having the amino acid sequence set forth in any one of SEQ ID NOS: 2 to 8 and a light chain variable region having the amino acid sequence set forth in any one of SEQ ID NOS: 10 to 13. The above-described antibodies according to embodiments can specifically target and bind to the TrkA receptor and block the binding of NGF to TrkA.
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Description

Technical Field

[0001] Cross - reference to related applications This application claims the priority and benefit of Chinese Patent Application No. 202011307482.7, filed with the China National Intellectual Property Administration on November 20, 2020, which is incorporated herein by reference in its entirety.

[0002] The present invention relates to the field of biotechnology. Specifically, the present invention relates to a humanized anti - TrkA antibody and its use. More specifically, the present invention relates to a humanized antibody or its antigen - binding fragment, nucleic acid molecule, expression vector, recombinant cell, pharmaceutical composition, pharmaceutical use, and a kit for detecting TrkA that can specifically recognize TrkA.

Background Art

[0003] Currently, non - opioid analgesics such as non - steroidal anti - inflammatory drugs (NSAIDs) are mainly clinically used for mild to moderate pain; opioid analgesics are mainly used for moderate to severe pain. However, NSAIDs have a "ceiling effect", and opioids can effectively relieve less than 30% of non - neoplastic chronic pain, and 20% of patients with cancer pain have opioid resistance. In addition, NSAIDs have hidden risks to gastrointestinal and cardiovascular safety, especially during long - term medication. Regarding opioid analgesics, drug improvement experiments over several years have failed to effectively reduce their dependence and many other side effects, and patients are expecting new, safer and more effective drugs.

[0004] Nerve growth factor (NGF) is involved in the pathophysiological processes of pain. This molecule primarily activates the NGF / TrKA signaling pathway by binding to the high-affinity tyrosine kinase (TrkA) receptor. This affects the release of inflammatory mediators, the opening of ion channels, and the promotion of nerve fiber growth, thereby participating in the pain development, conduction, and sensitization processes. Studies have shown that blocking the NGF-TrkA signaling pathway can effectively reduce pain and hyperalgesia, and that the NGF-TrkA signaling pathway is an effective target for the development of novel analgesics. However, NGF can possess various undesirable agonist properties. TrkA monoclonal antibodies selectively target and bind to the TrkA receptor, blocking NGF-mediated activation of the TrkA signaling pathway and effectively inhibiting pain signal transmission. Furthermore, they can avoid unpredictable side effects such as osteoarthritis caused by excessive neutralization of NGF using anti-NGF antibodies. Therefore, TrkA-targeted analgesics that target NGF-TrkA may represent a better treatment option. [Overview of the Initiative] [Problems that the invention aims to solve]

[0005] The therapeutic and diagnostic applications of animal-derived monoclonal antibodies in humans have fundamental contraindications, particularly in therapeutic regimens requiring repeated administration. Specifically, mouse monoclonal antibodies have a relatively short half-life and, when used in humans, lack some of the basic functional properties of immunoglobulins, such as complement-dependent cytotoxicity and antibody-dependent cell-mediated cytotoxicity. In addition, non-human monoclonal antibodies contain immunogenic amino acid sequences when injected into patients. While so-called chimeric antibodies (variable mouse regions linked to human constant regions) have yielded somewhat positive results, immunogenicity remains a concern. [Means for solving the problem]

[0006] This application is based on the inventors' discoveries of the following problems and facts:

[0007] The NGF-TrkA signaling pathway is an effective target for the development of novel analgesics. When TrkA monoclonal antibodies selectively target and bind to the TrkA receptor, they can effectively inhibit pain signal transmission by blocking NGF-mediated activation of the TrkA signaling pathway. Furthermore, they can avoid unpredictable side effects such as osteoarthritis caused by excessive neutralization of NGF using anti-NGF antibodies. However, because the TrkA molecule is a receptor membrane protein, screening for blocking anti-TrkA monoclonal antibodies is more difficult. In addition, designing blocking TrkA receptor antibodies carries safety risks due to antibody-mediated immune responses. Therefore, designing and developing monoclonal antibodies against TrkA is challenging.

[0008] The inventors of this application not only successfully screened a novel type of anti-TrkA monoclonal antibody having long-acting analgesic activity, but, more importantly, they humanized the mouse anti-TrkA monoclonal antibody found through the screening process into a humanized monoclonal antibody. Specifically, using hybridoma technology, the FR region and constant region of the screened mouse anti-TrkA monoclonal antibody were replaced with human regions, while the CDR of the variable region of the mouse anti-TrkA monoclonal antibody was retained, resulting in a series of humanized monoclonal antibodies against TrkA. The inventors found that the humanized antibody candidate obtained in this application had essentially the same in vivo and in vitro activity as the human-mouse chimeric anti-TrkA monoclonal antibody 23E12, specifically targeted and bound to the TrkA receptor, blocked the binding of NGF to TrkA, and effectively inhibited pain, as well as having lower immunogenicity and better pharmacokinetic parameters than the human-mouse chimeric anti-TrkA monoclonal antibody.

[0009] In particular, the human-mouse chimeric anti-TrkA monoclonal antibody 23E12 had a heavy chain variable region VH0 having the amino acid sequence shown in SEQ ID NO: 1 and a light chain variable region VL0 having the amino acid sequence shown in SEQ ID NO: 9.

[0010] In a first aspect of the present invention, the present invention provides a humanized antibody or an antigen-binding fragment thereof capable of specifically recognizing TrkA. According to embodiments of the present invention, the antibody or the antigen-binding fragment thereof has a heavy chain variable region having VH-CDR1 as shown in SEQ ID NO: 41, VH-CDR2 as shown in SEQ ID NO: 42 or SEQ ID NO: 43, and VH-CDR3 as shown in SEQ ID NO: 44; and Light chain variable region having VL-CDR1 shown in SEQ ID NO: 45, VL-CDR2 shown in SEQ ID NO: 46 or SEQ ID NO: 47, and VL-CDR3 shown in SEQ ID NO: 48 Includes. GYAFTNYWLG (Sequence ID 41). DFYPRTGNTF (Sequence ID 42). GFYPRTGNTF (Sequence ID 43). ARAGTGFDY (Sequence No. 44). ENVGGYVS (Sequence ID 45). GASSRHT (Sequence No. 46). GASSRAT (SEQ ID NO: 47). NYIYPFT (Sequence ID 48).

[0011] According to embodiments of the present invention, the antibody or its antigen-binding fragment is a heavy chain variable region having VH-CDR1 shown in SEQ ID NO: 41, VH-CDR2 shown in SEQ ID NO: 42, and VH-CDR3 shown in SEQ ID NO: 44; and Light chain variable region having VL-CDR1 shown in SEQ ID NO: 45, VL-CDR2 shown in SEQ ID NO: 46, and VL-CDR3 shown in SEQ ID NO: 48 Includes.

[0012] According to embodiments of the present invention, the antibody or its antigen-binding fragment is a heavy chain variable region having VH-CDR1 shown in SEQ ID NO: 41, VH-CDR2 shown in SEQ ID NO: 43, and VH-CDR3 shown in SEQ ID NO: 44; and Light chain variable region having VL-CDR1 shown in SEQ ID NO: 45, VL-CDR2 shown in SEQ ID NO: 46, and VL-CDR3 shown in SEQ ID NO: 48 Includes.

[0013] According to embodiments of the present invention, the antibody or its antigen-binding fragment is a heavy chain variable region having VH-CDR1 shown in SEQ ID NO: 41, VH-CDR2 shown in SEQ ID NO: 42, and VH-CDR3 shown in SEQ ID NO: 44; and Light chain variable region having VL-CDR1 shown in SEQ ID NO: 45, VL-CDR2 shown in SEQ ID NO: 47, and VL-CDR3 shown in SEQ ID NO: 48 Includes.

[0014] According to embodiments of the present invention, the antibody or its antigen-binding fragment is a heavy chain variable region having VH-CDR1 shown in SEQ ID NO: 41, VH-CDR2 shown in SEQ ID NO: 43, and VH-CDR3 shown in SEQ ID NO: 44; and Light chain variable region having VL-CDR1 shown in SEQ ID NO: 45, VL-CDR2 shown in SEQ ID NO: 47, and VL-CDR3 shown in SEQ ID NO: 48 Includes.

[0015] According to embodiments of the present invention, an antibody or its antigen-binding fragment includes a heavy chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 2-8, and a light chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 10-13. In this application, the variable region includes a mouse CDR and a human framework region.

[0016] In this application, sequence numbers 2-8 are referred to as VH1-VH7, respectively. Sequence numbers 10-13 are referred to as VL1-VL4, respectively.

[0017] [Chemistry]

[0018] [Chemistry]

[0019] In particular, the underlined portions are the CDR sequences of the heavy chain variable region and the CDR sequences of the light chain variable region, respectively.

[0020] According to an embodiment of the present invention, the antibody or its antigen-binding fragment is (a) a heavy chain variable region having the amino acid sequence shown in SEQ ID NO: 2 and a light chain variable region having the amino acid sequence shown in SEQ ID NO: 10; (b) a heavy chain variable region having the amino acid sequence shown in SEQ ID NO: 4 and a light chain variable region having the amino acid sequence shown in SEQ ID NO: 10; or (c) a heavy chain variable region having the amino acid sequence shown in SEQ ID NO: 4 and a light chain variable region having the amino acid sequence shown in SEQ ID NO: 11 and includes a heavy chain variable region and a light chain variable region selected from.

[0021] According to an embodiment of the present invention, the antibody or its antigen-binding fragment specifically recognizes the extracellular region of TrkA.

[0022] According to an embodiment of the present invention, the antibody includes at least one of the heavy chain framework region sequence and the light chain framework region sequence, and both the heavy chain framework region sequence and the light chain framework region sequence are derived from human IgG antibodies or their mutants. Furthermore, the immunogenicity of the antibody can be effectively reduced.

[0023] According to an embodiment of the present invention, the light chain constant region of the antibody is derived from the human κ light chain constant region; the heavy chain constant region is derived from the human IgG4 heavy chain constant region.

[0024] According to embodiments of the present invention, the Fc region of the antibody has S10P, F16A, L17A, R191K mutations and 229K deletion mutations compared to human IgG4 wild-type Fc. In this case, the arrangement of the above-mentioned amino acid positions is based on the amino acid sequence shown in SEQ ID NO: 16 of the human IgG4 wild-type Fc sequence. For example, S10P means that the 10th S in the amino acid sequence shown in SEQ ID NO: 16 has been mutated to P. The inventors have found that after the Fc region of the antibody has the above-mentioned mutations and deletions, the safety and stability of the antibody can be significantly improved, and the half-life of the antibody in the body can also be significantly extended.

[0025] [ka]

[0026] According to embodiments of the present invention, the full-length sequence of the constant region of the antibody is as shown in SEQ ID NO: 14 or 15.

[0027] [ka]

[0028] In this case, the full-length sequence of the constant region of the antibody shown in SEQ ID NO: 14 is the IgG4 light chain constant region. The full-length sequence of the constant region of the antibody shown in SEQ ID NO: 15 includes the IgG4 heavy chain constant region and the Fc region, and in this case, the IgG4 heavy chain constant region sequence is

[0029] [ka]

[0030] The Fc region sequence is,

[0031] [ka]

[0032] That is the case.

[0033] According to embodiments of the present invention, the antibody comprises a heavy chain having the amino acid sequence shown in any one of SEQ ID NOs: 17-23 and a light chain having the amino acid sequence shown in any one of SEQ ID NOs: 24-27. In this application, SEQ ID NOs: 17-23 are referred to as H1-H7, respectively. SEQ ID NOs: 24-27 are referred to as L1-L4, respectively. In addition, the human-mouse chimeric anti-TrkA monoclonal antibody 23E12 comprises a heavy chain H0 having the amino acid sequence shown in SEQ ID NO: 28 and a light chain L0 having the amino acid sequence shown in SEQ ID NO: 29.

[0034] [ka]

[0035] [ka]

[0036] [ka]

[0037] The full-length sequence of the constant region of the antibody shown in Sequence ID No. 49 includes the IgG1 heavy chain constant region and the Fc region, and in this case, the IgG1 heavy chain constant region sequence is:

[0038] [ka]

[0039] The Fc region sequence is,

[0040] [ka]

[0041] That is the case.

[0042] According to embodiments of the present invention, the antibody is (a) A heavy chain having the amino acid sequence shown in SEQ ID NO: 17 and a light chain having the amino acid sequence shown in SEQ ID NO: 24; (b) A heavy chain having the amino acid sequence shown in SEQ ID NO: 19 and a light chain having the amino acid sequence shown in SEQ ID NO: 24; or (c) Heavy chain having the amino acid sequence shown in SEQ ID NO: 19 and light chain having the amino acid sequence shown in SEQ ID NO: 25 It includes heavy and light chains selected from the group selected from.

[0043] In this application, a humanized monoclonal antibody composed of the above-mentioned H1 and L1 having the IGGH4 heavy chain isotype and κ isotype light chain is referred to as H1L1-IgG4, an antibody composed of the above-mentioned H3 and L1 having the IGGH4 heavy chain isotype and κ isotype light chain is referred to as H3L1-IgG4, an antibody composed of the above-mentioned H3 and L2 having the IGGH4 heavy chain isotype and κ isotype light chain is referred to as H3L2-IgG4, and a humanized monoclonal antibody composed of the above-mentioned H1 and L1 having the IGGH1 heavy chain isotype and κ isotype light chain is referred to as H1L1-IgG1, and so on.

[0044] According to embodiments of the present invention, the antibody is a single-chain antibody, a multimer antibody, or a CDR-implanted antibody.

[0045] According to embodiments of the present invention, a single-chain antibody comprises a heavy-chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 2-8 and a light-chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 10-13, wherein the C-terminus of the heavy-chain variable region is linked to the N-terminus of the light-chain variable region via a linking peptide linker, or the C-terminus of the light-chain variable region is linked to the N-terminus of the heavy-chain variable region via a linking peptide linker. It should be noted that the “linking peptide linker” of the single-chain antibody described in this application is a linking peptide used to link the heavy-chain variable region and the light-chain variable region of the antibody. The linking peptide linker may be a linking peptide linker commonly used for the preparation of single-chain antibodies, or it may be a linking peptide linker modified by a scientific researcher. In some embodiments, the linked peptide may be a G-rich peptide and can be selected from (G)3-S (i.e., "GGGS"), (G)4-S (i.e., "GGGGS"), and (G)5-S (i.e., "GGGGGS"), such as GGGGSGGGGSGGGGS.

[0046] According to embodiments of the present invention, the antigen-binding fragment comprises at least one of Fab, Fab', F(ab)2, F(ab')2, Fv, scFv-Fc fusion protein, scFv-Fv fusion protein, and minimum recognition unit.

[0047] In a second aspect of the present invention, the present invention provides a nucleic acid molecule. According to embodiments of the present invention, the nucleic acid molecule encodes the antibody or antigen-binding fragment thereof described above. The antibody or antigen-binding fragment encoded by the nucleic acid molecule according to embodiments of the present invention can specifically target and bind to TrkA and can block the binding of NGF to TrkA.

[0048] According to embodiments of the present invention, the nucleic acid molecule described above may further include at least one of the following additional technical features:

[0049] According to embodiments of the present invention, the nucleic acid molecule is DNA.

[0050] According to embodiments of the present invention, the nucleic acid molecule contains a nucleotide sequence represented by any one of SEQ ID NOs: 30 to 36, or a nucleotide sequence represented by any one of SEQ ID NOs: 37 to 40.

[0051] [ka]

[0052] [ka]

[0053] [ka]

[0054] [ka]

[0055] [ka]

[0056] [ka]

[0057] [ka]

[0058] [ka]

[0059] The nucleotide sequences shown in SEQ ID NOs. 30-36 encode heavy chain H1-H7, respectively, and the nucleotide sequences shown in SEQ ID NOs. 37-40 encode light chain L1-L4, respectively. The underlined parts encode heavy chain variable regions VH1-VH7 and light chain variable regions VL1-VL4, respectively.

[0060] In a third aspect of the present invention, the present invention provides an expression vector. According to the embodiments of the present invention, the expression vector supports the nucleic acid molecule described above. After introducing the expression vector according to the embodiments of the present invention into suitable recipient cells, the expression of a humanized antibody or its antigen-binding fragment that specifically recognizes TrkA can be effectively achieved through the mediation of a regulatory system, thereby enabling large-scale in vitro acquisition of the humanized antibody or antigen-binding fragment.

[0061] According to embodiments of the present invention, the expression vector described above may further include at least one of the following additional technical features:

[0062] According to embodiments of the present invention, the expression vector is a eukaryotic expression vector. Furthermore, the above-mentioned humanized antibody that specifically recognizes TrkA or its antigen-binding fragment can be expressed in eukaryotic cells such as CHO cells.

[0063] In a fourth aspect of the present invention, the present invention provides recombinant cells. According to embodiments of the present invention, recombinant cells carry the nucleic acid molecules described above or express the humanized antibodies or antigen-binding fragments thereof described above. Recombinant cells according to embodiments of the present invention can be used for in vitro expression and large-scale acquisition of the humanized antibodies or antigen-binding fragments thereof that specifically recognize TrkA.

[0064] According to embodiments of the present invention, the recombinant cells described above may further include at least one of the following additional technical features:

[0065] According to embodiments of the present invention, recombinant cells are obtained by introducing the above-mentioned expression vector into host cells.

[0066] According to embodiments of the present invention, the expression vector is introduced into host cells by electrotransduction.

[0067] According to embodiments of the present invention, recombinant cells are eukaryotic cells.

[0068] According to embodiments of the present invention, recombinant cells are mammalian cells.

[0069] In a fifth aspect of the present invention, the present invention provides a pharmaceutical composition. According to embodiments of the present invention, the pharmaceutical composition comprises the above-mentioned antibody, the above-mentioned nucleic acid molecule, the above-mentioned expression vector, or the above-mentioned recombinant cell. The humanized antibody contained in or expressed in the pharmaceutical composition according to embodiments of the present invention has the same in vivo and in vitro activity as the human-mouse chimeric anti-TrkA monoclonal antibody 23E12. The humanized antibody not only specifically targets and binds to the TrkA receptor, blocks the binding of NGF to TrkA, and effectively inhibits pain without essentially exhibiting antibody-dependent cell-mediated cytotoxicity (ADCC), but also has lower immunogenicity and better pharmacokinetic parameters than the human-mouse chimeric anti-TrkA monoclonal antibody 23E12.

[0070] In a sixth aspect of the present invention, the present invention provides the use of the above-mentioned antibodies, nucleic acid molecules, expression vectors, recombinant cells, or pharmaceutical compositions in the manufacture of pharmaceuticals for the treatment or prevention of pain, cancer, inflammation or inflammatory diseases, neurodegenerative diseases, Sjögren's syndrome, endometriosis, diabetic peripheral neuropathy, prostatitis, pelvic pain syndrome, and diseases related to the regulation of imbalances in bone regeneration, as well as diseases caused by abnormal signaling of connective tissue growth factors.

[0071] According to embodiments of the present invention, the above-described use may further include at least one of the following additional technical features:

[0072] According to embodiments of the present invention, pharmaceuticals are used to treat or prevent neuropathic pain, inflammatory pain, cancer-related pain, fracture-related pain, surgery-related pain, inflammatory lung disease, interstitial cystitis, bladder pain syndrome, inflammatory bowel disease, inflammatory skin disease, Raynaud's syndrome, idiopathic pulmonary fibrosis, scarring (hypertrophic, keloid, and other forms), sclerosis, endocardial myocardial fibrosis, atrial fibrosis, myelofibrosis, progressive nodular fibrosis (lung), nephrogenic systemic fibrosis, scleroderma, systemic sclerosis, arthritis fibrosis, ocular fibrosis, non-small cell lung cancer, papillary thyroid carcinoma, glioblastoma multiforme, colorectal cancer, melanoma, cholangiocarcinoma or sarcoma, acute myeloid leukemia, large cell neuroendocrine carcinoma, neuroblastoma, prostate cancer, pancreatic cancer, melanoma, squamous cell carcinoma of the head and neck, or gastric cancer.

[0073] In a sixth aspect of the present invention, the present invention provides a method for treating or preventing a disease caused by abnormal expression of NGF, abnormal expression of TrkA, or abnormal activity of TrkA in a subject, comprising the step of administering a therapeutically effective amount of the above-mentioned antibody, nucleic acid molecule, expression vector, recombinant cell, or pharmaceutical composition to a subject.

[0074] According to embodiments of the present invention, diseases caused by abnormal expression of NGF, abnormal expression of TrkA, or abnormal activity of TrkA include neuropathic pain, inflammatory pain, cancer-related pain, fracture-related pain, surgery-related pain, inflammatory lung disease, interstitial cystitis, bladder pain syndrome, inflammatory bowel disease, inflammatory skin disease, Raynaud's syndrome, idiopathic pulmonary fibrosis, scarring (hypertrophic, keloid, and other forms), sclerosis, endocardial myocardial fibrosis, atrial fibrosis, myelofibrosis, progressive nodular fibrosis (lung), nephrogenic systemic fibrosis, scleroderma, systemic sclerosis, arthritis fibrosis, ocular fibrosis, non-small cell lung cancer, papillary thyroid carcinoma, glioblastoma multiforme, colorectal cancer, melanoma, cholangiocarcinoma or sarcoma, acute myeloid leukemia, large cell neuroendocrine carcinoma, neuroblastoma, prostate cancer, pancreatic cancer, melanoma, head and neck squamous cell carcinoma, or gastric cancer.

[0075] In a sixth aspect of the present invention, the present invention provides the above-mentioned antibody, nucleic acid molecule, expression vector, recombinant cell, or pharmaceutical composition for use in the treatment or prevention of diseases caused by abnormal expression of NGF, abnormal expression of TrkA, or abnormal activity of TrkA in a subject.

[0076] According to embodiments of the present invention, the present invention provides the above-mentioned antibodies, nucleic acid molecules, expression vectors, recombinant cells, or pharmaceutical compositions for use in the treatment or prevention of diseases caused by abnormal expression of NGF, abnormal expression of TrkA, or abnormal activity of TrkA in a subject, in which case the diseases caused by abnormal expression of NGF, abnormal expression of TrkA, or abnormal activity of TrkA include neuropathic pain, inflammatory pain, cancer-related pain, fracture-related pain, surgery-related pain, inflammatory lung disease, and interstitial bladder. This includes inflammation, bladder pain syndrome, inflammatory bowel disease, inflammatory skin disease, Raynaud's syndrome, idiopathic pulmonary fibrosis, scarring (hypertrophic, keloid, and other forms), sclerosis, endocardial myocardial fibrosis, atrial fibrosis, myelofibrosis, progressive nodular fibrosis (lung), nephrogenic systemic fibrosis, scleroderma, systemic sclerosis, arthritis fibrosis, ocular fibrosis, non-small cell lung cancer, papillary thyroid carcinoma, glioblastoma multiforme, colorectal cancer, melanoma, cholangiocarcinoma or sarcoma, acute myeloid leukemia, large cell neuroendocrine carcinoma, neuroblastoma, prostate cancer, pancreatic cancer, melanoma, squamous cell carcinoma of the head and neck, or gastric cancer.

[0077] In a seventh aspect of the present invention, the present invention provides a kit for detecting TrkA. According to embodiments of the present invention, the kit comprises any one of the antibodies described above. The TrkA antibodies described above can specifically target and bind to TrkA. Kits according to embodiments of the present invention can achieve specific detection of TrkA. For example, if the antibody is bound to a fluorescent group, TrkA can be localized or detected in real time using a fluorescence detection device.

[0078] In an eighth aspect of the present invention, the present invention provides the use of the above-mentioned antibody, nucleic acid molecule, expression vector, or recombinant cell in the preparation of a kit for detecting TrkA or diagnosing TrkA-related disease.

[0079] In an eighth aspect of the present invention, the present invention provides a method for detecting TrkA in a subject or diagnosing a TrkA-related disease using a kit comprising the above-mentioned antibody, the above-mentioned nucleic acid molecule, the above-mentioned expression vector, or the above-mentioned recombinant cell.

[0080] In an eighth aspect of the present invention, the present invention provides the above-mentioned antibody, nucleic acid molecule, expression vector, or recombinant cell for use in the preparation of a kit for detecting TrkA or diagnosing TrkA-related disease. [Brief explanation of the drawing]

[0081] [Figure 1] This figure shows the results of the purity of humanized antibody monomers evaluated by the SEC-HPLC purity detection method according to an embodiment of the present invention. [Figure 2] This figure shows experimental results of the binding ability of a humanized antibody detected by flow cytometry to human TrKA, according to an embodiment of the present invention. [Figure 3] This figure shows experimental results of the binding ability of a humanized antibody detected by flow cytometry to mouse TrKA, according to an embodiment of the present invention. [Figure 4] This figure shows the results of the inhibitory effect of a humanized antibody on the binding affinity between human NGF and human TrKA, as detected by flow cytometry, according to an embodiment of the present invention. [Figure 5] This figure shows the results of the inhibitory effect of a humanized antibody on the binding of mouse NGF to mouse TrKA, as detected by flow cytometry, according to an embodiment of the present invention. [Figure 6A] This figure shows the results of the specificity of binding of a humanized antibody to target human TrKA detected by flow cytometry, according to an embodiment of the present invention. [Figure 6B] This figure shows the results of the specificity of binding of a humanized antibody to target human TrKA detected by flow cytometry, according to an embodiment of the present invention. [Figure 6C] This figure shows the results of the specificity of binding of a humanized antibody to target human TrKA detected by flow cytometry, according to an embodiment of the present invention. [Figure 6D] This figure shows the results of the specificity of binding of a humanized antibody to target human TrKA detected by flow cytometry, according to an embodiment of the present invention. [Figure 7] This figure shows the results of ADA (Antibody Adjuvant) evaluation of humanized antibodies in mice, as evaluated by ELISA according to embodiments of the present invention. [Figure 8] This figure shows the pharmacokinetic results of a humanized antibody in mice, evaluated by ELISA according to an embodiment of the present invention. [Figure 9] This figure shows the results of the ADCC activity of humanized antibodies detected by a luciferase reporter gene system according to an embodiment of the present invention. [Figure 10] This figure shows the results of the in vivo analgesic activity of humanized antibodies evaluated using a fully Freund's adjuvant-induced inflammatory pain model according to embodiments of the present invention. [Figure 11] This figure shows the results of the CDC activity of humanized antibodies detected by an NIH-3T3-TrkA cell model according to an embodiment of the present invention. [Figure 12] This figure shows the in vitro activity results of a humanized antibody evaluated using an NIH-3T3-TrkA cell model according to an embodiment of the present invention. [Modes for carrying out the invention] [Examples]

[0082] Embodiments of the present invention are described in detail below. Examples of embodiments are shown in the accompanying drawings, where the same or similar reference numerals in the drawings represent the same or similar elements, or elements having the same or similar functions, throughout. The embodiments described below with reference to the drawings are illustrative and intended to illustrate the present invention, but should not be construed as limiting the invention.

[0083] In the process of describing the present invention, terms used herein will be explained. These explanations are for convenience of understanding the scheme and should not be considered to limit the protective scheme of the present invention.

[0084] antibody As used herein, the term "antibody" refers to an immunoglobulin molecule capable of binding to a specific antigen. An antibody consists of two light chains with a lower molecular weight and two heavy chains with a higher molecular weight. The heavy chains (H) and light chains (L) are linked by disulfide bonds to form a tetrapeptide chain molecule. In particular, the amino acid sequence at the amino terminus (N terminus) of the peptide chain changes significantly and is called the variable region (V region). The carboxyl terminus (C terminus) is relatively stable with only slight changes and is called the constant region (C region). The constant region of the antibody can mediate the binding of the immunoglobulin to host tissue or factors. Examples of host tissue or factors include various cells of the immune system (e.g., effector cells) and the first component (C1q) of the classical complement system. The V regions of the L and H chains are referred to as VL and VH, respectively.

[0085] Within the variable region, the amino acid composition and arrangement order of a particular region exhibit a higher degree of variation and are referred to as the hypervariable region (HVR). The hypervariable region is the region where the antigen and antibody bind, and is therefore also called the complementarity-determining region (CDR). CDRs are scattered throughout the more conserved regions of the so-called framework region (FR). Each VH and VL can consist of three CDRs and four FR regions, which can be arranged in the following order from the amino terminus to the carboxyl terminus: FR1, CDR1, FR2, CDR2, FR3, CDR3, and FR4.

[0086] This invention utilizes the extracellular segment of TrkA to obtain highly specific and highly affinity anti-TrkA Fab (antigen-binding fragment) antibody fragments through immunization. The antibody fragments can specifically bind to the TrkA antigen and can target the treatment of diseases such as pain or tumors.

[0087] In some embodiments, the present invention provides a humanized antibody or antigen-binding fragment, in which the humanized antibody or antigen-binding fragment includes a heavy chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 2-8, and a light chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 10-13. The inventors can obtain the CDR regions of the heavy chain variable region sequence and the light chain variable region sequence through antibody sequence alignment databases (NCBI, IMGT). In other embodiments, the heavy chain variable region sequence of the antibody or antigen-binding fragment includes conservative amino acid substitutions compared to the amino acid sequences shown in SEQ ID NOs: 2-8. In some embodiments, the light chain variable region sequence of the antibody or antigen-binding fragment includes conservative amino acid substitutions compared to the amino acid sequences shown in SEQ ID NOs: 10-13. "Antigen-binding fragment" means an antibody fragment that retains the ability to specifically bind to an antigen (ROR2). Examples of antigen-binding fragments include, but are not limited to, Fv fragments, disulfide bond-stabilized Fv fragments (dsFv), Fab fragments, (Fab)2 fragments, scFv-Fc fusion proteins, scFv-Fv fusion proteins, Fv-Fc fusion proteins, multispecific antibodies formed from antigen-binding fragments, single-domain antibodies, domain antibodies, bivalent domain antibodies, or at least one of the minimum recognition units. "Conservative amino acid substitution" means the substitution of an amino acid using a residue that is biologically, chemically, or structurally similar to another amino acid. Naturally, these conservative amino acid substitutions will not alter the biological function of the antibody or antigen-binding fragment. In some specific forms, these conservative amino acid substitutions can occur for amino acids other than those in the CDR region of the heavy chain variable region and light chain variable region. Biological similarity means that the substitution does not disrupt the biological activity associated with the TrkA antibody or TrkA antigen. Structural similarity means that the amino acids have side chains of similar length or size, such as alanine, glycine, or serine. Chemical similarity means that amino acids have the same charge or are both hydrophilic or hydrophobic. For example, hydrophobic residues isoleucine, valine, leucine, or methionine can be substituted for each other. Alternatively, polar amino acids can be substituted for each other. For example, lysine may be replaced with arginine, aspartic acid with glutamic acid, asparagine with glutamine, and threonine with serine.

[0088] The term "mouse antibody" typically refers to the process in which B cells derived from immunized mice are fused with myeloma cells, followed by the screening of mouse hybrid fusion cells capable of immortal proliferation and antibody secretion, and subsequently, the screening, preparation, and purification of antibodies.

[0089] The term "chimeric antibody" refers to an antibody obtained by combining non-human genetic material with human genetic material. In this specification, "chimeric antibody" or "chimeric anti-TrkA antibody" refers to an antibody in which the variable region sequence originates from one species and the constant region sequence originates from another species. For example, the variable region sequence originates from a mouse antibody and the constant region sequence originates from a human antibody.

[0090] The term "humanized antibody" refers to an antibody derived from a non-human species, but whose protein sequence has been modified to increase its similarity to naturally occurring human antibodies. Specifically, a humanized antibody is a molecule that has an antigen-binding site essentially derived from an immunoglobulin of a non-human species, and the remaining immunoglobulin structure of the molecule is based on the structure and / or sequence of human immunoglobulin. The antigen-binding site may consist only of a complete variable domain fused to a constant domain or a complementation-determining region (CDR) transplanted into an appropriate framework region within the variable domain. The antigen-binding site may be wild-type or modified by one or more amino acid substitutions, for example, to be more similar to human immunoglobulin. Some forms of humanized antibodies retain all CDR sequences (e.g., a humanized mouse antibody containing all six CDRs derived from a mouse antibody). Other forms have one or more altered CDRs compared to the original antibody.

[0091] In some preferred embodiments, the present invention provides a humanized anti-TrkA antibody. The antibody has a heavy chain having the amino acid sequence shown in any one of SEQ ID NOs: 17-23 and a light chain having the amino acid sequence shown in any one of SEQ ID NOs: 24-27.

[0092] In some preferred embodiments, the present invention provides a humanized anti-TrkA single-chain antibody. The single-chain antibody comprises a heavy chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 2 to 8 and a light chain variable region having the amino acid sequence shown in any one of SEQ ID NOs: 10 to 13, wherein the C-terminus of the heavy chain variable region is linked to the N-terminus of the light chain variable region via a linking peptide linker, or the C-terminus of the light chain variable region is linked to the N-terminus of the heavy chain variable region via a linking peptide linker.

[0093] nucleic acid molecules, expression vectors, recombinant cells In the process of preparing or obtaining these antibodies, nucleic acid molecules expressing these antibodies can be linked to various vectors and subsequently expressed in various cells to obtain the corresponding antibodies.

[0094] For this purpose, the present invention also provides isolated nucleic acid molecules encoding the above-mentioned antibody or antigen-binding fragments.

[0095] In some embodiments, the isolated nucleic acid molecule contains a nucleotide sequence shown in any one of SEQ ID NOs: 30-36 or has a nucleotide sequence shown in any one of SEQ ID NOs: 37-40.

[0096] In some embodiments, the isolated nucleic acid molecules contain at least more than 90% homology to the nucleotide sequences shown in SEQ ID NOs. 30-36, preferably more than 95% homology, and more preferably more than 98% and 99% homology. In at least some embodiments, the isolated polynucleotides contain at least more than 90% homology to the nucleotide sequences shown in SEQ ID NOs. 37-40, preferably more than 95% homology, and more preferably more than 98% and 99% homology. These sequences containing homology to the nucleotide sequences shown in SEQ ID NOs. 30-36 or SEQ ID NOs. 37-40 can express amino acid sequences similar to SEQ ID NOs. 17-23 or SEQ ID NOs. 24-27, thereby enabling specific binding to the TrkA antigen and achieving antibody targeting functionality.

[0097] In some preferred embodiments, the isolated nucleic acid molecule comprises heavy chain nucleotide sequences shown in SEQ ID NOs: 30-36 and light chain nucleotide sequences shown in SEQ ID NOs: 37-40. These nucleotide sequences are optimized for a specific species and are more readily expressed in mammalian cells.

[0098] The present invention also provides expression vectors containing the isolated nucleic acid molecules described above. When ligating the isolated polynucleotides described above into a vector, the polynucleotides can be directly or indirectly linked to regulatory elements on the vector, insofar as the regulatory elements control the translation and expression of the polynucleotides. Naturally, these regulatory elements can be directly derived from the vector itself or exogenous, i.e., not derived from the vector itself. Naturally, polynucleotides can be functionally linked to regulatory elements. In this specification, "functionally linked" means linking of exogenous genes to the vector, thereby allowing regulatory elements in the vector, such as transcriptional and translational regulatory sequences, to exert their expected function of regulating the transcription and translation of the exogenous genes. Naturally, polynucleotides used to encode the heavy and light chains of antibodies can be inserted independently into different vectors, and are usually inserted into the same vector. Commonly used vectors may be plasmids, phages, etc. For example, plasmid-X plasmids.

[0099] The present invention also provides recombinant cells containing an expression vector. The expression vector can be introduced into mammalian cells to construct recombinant cells, which can then be used to express humanized antibodies or antigen-binding fragments provided by the present invention. The corresponding antibodies can be obtained by culturing the recombinant cells. These usable mammalian cells may be, for example, CHO cells.

[0100] Pharmaceutical compositions, kits, and their pharmaceutical use, as well as their use in the preparation of kits. The present invention also provides pharmaceutical compositions comprising the above-mentioned antibody or antigen-binding fragment and a pharmaceutically acceptable carrier.

[0101] The anti-TrkA humanized antibodies provided herein can be incorporated into pharmaceutical compositions suitable for administration to subjects. Generally, these pharmaceutical compositions include the anti-TrkA humanized antibodies provided herein and a pharmaceutically acceptable carrier. A "pharmaceutically acceptable carrier" includes any physiologically compatible solvent, dispersion medium, coating agent, antimicrobial and antifungal agent, isotonic agent and delayed absorption agent. Specific examples may include one or more water, physiological saline, phosphate-buffered physiological saline, glucose, glycerol, ethanol, and combinations thereof. In many cases, the pharmaceutical composition includes isotonic agents such as sugars, polyhydric alcohols (mannitol, sorbitol, etc.), or sodium chloride. Naturally, a pharmaceutically acceptable carrier may also include trace amounts of auxiliary substances, such as wetting or emulsifying agents, preservatives, or buffers, to extend the shelf life and efficacy of the antibody.

[0102] For example, the antibodies of the present invention can be incorporated into pharmaceutical compositions suitable for parenteral administration (e.g., intravenous, subcutaneous, intraperitoneal, intramuscular). These pharmaceutical compositions can be prepared in a variety of forms. Examples, but not limited to, include liquid, semi-solid, and solid dosage forms, including liquid solutions (e.g., infusion solutions and infusion solutions), dispersions or suspensions, tablets, pills, powders, liposomes, and suppositories. Typical pharmaceutical compositions are in the form of infusion solutions or infusion solutions. Antibodies can be administered by intravenous infusion or infusion, or by intramuscular or subcutaneous injection.

[0103] Naturally, the anti-TrkA humanized antibody described herein can also be part of a kit or other diagnostic reagent, if necessary. According to embodiments of the present invention, the present invention also provides kits containing the above-described TrkA antibody. The kits provided by the present invention can be used, for example, for immunoblotting, immunoprecipitation, etc., including detection using the specific binding properties of the TrkA antigen and antibody. These kits may include one or more of the following: antagonist, anti-TrkA humanized antibody, or drug reference material; protein purification column; immunoglobulin affinity purification buffer; cell assay diluent; instructions or literature, etc. Anti-TrkA humanized antibodies can be used for various types of diagnostic tests, such as the detection of various diseases or the in vitro or in vivo presence of drugs, toxins, or other proteins. For example, anti-TrkA humanized antibodies can be used to test for related diseases by testing the serum or blood of a subject. Such related diseases include TrkA-related diseases such as pain, cancer, inflammation or inflammatory diseases, neurodegenerative diseases, Sjögren's syndrome, endometriosis, diabetic peripheral neuropathy, prostatitis, pelvic pain syndrome, and diseases related to the regulation of imbalances in bone regeneration, as well as diseases caused by abnormal signaling of connective tissue growth factor. Naturally, the antibodies provided herein can also be used for radioimmunodetection and radioimmunotherapy of the above diseases.

[0104] Specifically, the aforementioned pain, inflammation or inflammatory diseases, neurodegenerative diseases, Sjögren's syndrome, endometriosis, diabetic peripheral neuropathy, prostatitis, pelvic pain syndrome, diseases related to the regulation of bone regeneration imbalances, and diseases caused by abnormal signaling of connective tissue growth factors include neuropathic pain, inflammatory pain, cancer-related pain, fracture-related pain, surgery-related pain, inflammatory lung disease, interstitial cystitis, bladder pain syndrome, inflammatory bowel disease, inflammatory skin disease, Raynaud's syndrome, idiopathic pulmonary fibrosis, scarring (hypertrophic, keloid, and other forms), sclerosis, endocardial cardiomyopathy, atrial fibrosis, myelofibrosis, progressive nodular fibrosis (lung), nephrogenic systemic fibrosis, scleroderma, systemic sclerosis, arthralgia, and ocular fibrosis.

[0105] These cancers or tumors may be any form of unregulated cell proliferation. Specifically, they may be non-small cell lung cancer, papillary thyroid carcinoma, glioblastoma multiforme, colorectal cancer, melanoma, cholangiocarcinoma or sarcoma, acute myeloid leukemia, large cell neuroendocrine carcinoma, prostate cancer, neuroblastoma, pancreatic cancer, melanoma, squamous cell carcinoma of the head and neck, or gastric cancer, etc.

[0106] When using the anti-TrkA humanized antibody provided by the present invention to treat the aforementioned diseases, the anti-TrkA humanized antibody provided by the present invention can be administered to a subject. For this purpose, the present invention provides a method for treating the aforementioned diseases, comprising the step of administering the antibody or its antigen-binding fragment provided by the present invention to a subject in need.

[0107] (Example 1) Humanization design of the variable region of the mouse anti-TrkA monoclonal antibody 23E12 Using the B-cell epitope analysis software AbEpiMax, we performed immunogenicity analysis of the variable region of the mouse anti-TrKA monoclonal antibody 23E12 to identify sequences of antibody FR regions that possess potent B-cell epitopes.

[0108] Next, the sequence of the antibody FR region containing a strong B cell epitope was replaced with the sequence of a human antibody FR library that had high 3D structural homology to the original sequence and a weaker B cell epitope. The sequences of the heavy chain and light chain variable regions of mouse anti-TrKA monoclonal antibody 23E12, as well as the modified heavy chain and light chain variable regions of 23E12, are shown in Table 1.

[0109] [Table 1]

[0110] (Example 2) Vector construction A series of humanized antibody expression vectors (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) were constructed by molecular cloning, and the humanized antibodies were recombinantly expressed in a CHO expression system. The nucleotide sequences encoding the light and heavy chains of a series of humanized monoclonal antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) were obtained via chemical synthesis by GenScript Biotechnology. After double digestion of the sequences, they were inserted between the same restriction sites in eukaryotic expression vectors to construct a series of humanized monoclonal antibody expression vectors (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4). Subsequently, a series of confirmed correct expression vectors were extracted using an Invitrogen plasmid extraction kit, linearized using restriction enzymes, purified and recovered, and then stored at -20°C.

[0111] (Example 3) Transfection and cell expression of vectors encoding a series of humanized antibodies After resuscitating CHO host cells and culturing them in CD CHO medium, the cell density was approximately 8 × 10⁶. 5 When the cell count was 1 / mL, the cells were harvested for transfection. The transfected cells were approximately 1 × 10⁶ 7 The cells were transfected using approximately 40 μg of vector, via electroporation (Bio-Rad, Gene pulser Xcell). After the electrical shock, the cells were cultured in 20 mL of CD CHO medium. On the second day of culture, the cells were harvested by centrifugation and resuspended in 20 mL of CD CHO medium to which MSX was added to a final concentration of 50 μM. The cell density was approximately 0.6 × 10⁶. 6 When the cell density was approximately 0.2 × 10⁶ cells / mL, the resulting mixed clones were subculturised using CD CHO medium, and the cell density was increased to approximately 0.2 × 10⁶ cells / mL. 6 The cell culture medium was adjusted to cells / mL. When the cell viability reached approximately 90%, the cell culture medium was collected.

[0112] (Example 4) Recovery of cell culture medium and purification of humanized antibodies A series of humanized monoclonal antibodies were tested at the translational level. The recovered cell culture medium was purified by protein A chromatography, and absorption peaks were collected for mass spectrometry. Mass spectrometry detected that the series of chimeric antibodies had a molecular weight of approximately 150 kD, which matched the theoretical molecular weight and was in dimer form. Simultaneously, the collected samples were detected by 10% SDS-PAGE electrophoresis, both after reduction and after non-reduction. The reduced SDS-PAGE electrophoresis pattern showed two bands, approximately 25 kD and 50 kD, respectively. The non-reduced SDS-PAGE electrophoresis pattern showed a single band around 150 kD. The band sizes of the electrophoresis patterns matched the theoretical values. After purification, the samples were dialyzed overnight at 4°C with 0.01 M PBS buffer at pH 7.0.

[0113] (Example 5) Evaluation of the purity of humanized antibody monomers using SEC HPLC purity detection method Humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) samples and chimeric antibody (H0L0-IgG4) samples were centrifuged. Approximately 80 μg of supernatant was obtained and injected into HPLC for detection. The monomer peak area percentage of the humanized antibodies was detected by SEC-HPLC. A higher peak area percentage indicates higher monomer purity. The results are shown in Figure 1. The results in Figure 1 show that the monomer peak area percentages for the humanized antibodies H1L1-IgG4, H3L1-IgG4, and H3L2-IgG4 were 99.847%, 99.738%, and 99.836%, respectively, and the monomer peak area percentage for the chimeric antibody H0L0-IgG4 was 99.621%. The humanized antibodies H1L1-IgG4, H3L1-IgG4, H3L2-IgG4, and the chimeric antibody H0L0-IgG4 were shown to have high monomer purity.

[0114] (Example 6) Evaluation of the binding affinity of humanized antibodies to human TrKA by flow cytometry. Lentiviral technology was used to construct a HEK293T-human TrkA cell model. Humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) samples and a chimeric antibody (H0L0-IgG4) sample were diluted with PBS buffer to 11 different concentration gradients (20 μg / mL, 10 μg / mL, 5 μg / mL, 2.5 μg / mL, 1.25 μg / mL, 0.625 μg / mL, 0.313 μg / mL, 0.156 μg / mL, 0.078 μg / mL, 0.039 μg / mL, 0.019 μg / mL). Flow cytometry was used to detect the binding of each concentration gradient of humanized antibodies to the human TrKA receptor on the surface of HEK293T-human TrKA cells, and the binding ability of each humanized antibody to human TrKA was evaluated at the cellular level. The results are shown in Figure 2. Figure 2 shows that the EC50 (half of the binding concentration) value reflects the antibody's binding ability to human TrKA; a smaller EC50 value indicates stronger binding ability to human TrKA and higher antibody affinity. It was generally thought that high-affinity antibodies had an EC50 value lower than 1.5 μg / mL. The results in Figure 2 show that the EC50 values ​​for humanized antibodies H1L1-IgG4, H3L1-IgG4, and H3L2-IgG4 were 0.1307 μg / mL, 0.1268 μg / mL, and 0.1683 μg / mL, respectively, while the EC50 value for the chimeric antibody H0L0-IgG4 was 0.08669 μg / mL. The humanized antibodies H1L1-IgG4, H3L1-IgG4, H3L2-IgG4, and the chimeric antibody H0L0-IgG4 exhibited strong binding affinity to human TrKA; however, the affinity of the humanized antibodies H1L1-IgG4, H3L1-IgG4, and H3L2-IgG4 for binding to human TrKA remained essentially unchanged compared to the chimeric antibody H0L0-IgG4.

[0115] (Example 7) Evaluation of the binding affinity of humanized antibodies to mouse TrKA by flow cytometry. Lentiviral technology was used to construct a HEK293T-mouse TrkA cell model. Humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) samples and chimeric antibody (H0L0-IgG4) samples were diluted with PBS buffer to 11 different concentration gradients (20 μg / mL, 10 μg / mL, 5 μg / mL, 2.5 μg / mL, 1.25 μg / mL, 0.625 μg / mL, 0.313 μg / mL, 0.156 μg / mL, 0.078 μg / mL, 0.039 μg / mL, 0.019 μg / mL). Flow cytometry was used to detect the binding of each concentration gradient of humanized antibodies to the human TrKA receptor on the surface of HEK293T-mouse TrKA cells, and the binding ability of each humanized antibody to mouse TrKA was evaluated at the cellular level. The results are shown in Figure 3. Figure 3 shows that the EC50 (half of the binding concentration) value reflects the antibody's binding ability to mouse TrKA; a smaller EC50 value indicates stronger binding ability to mouse TrKA and higher antibody affinity. It was generally thought that high-affinity antibodies had an EC50 value lower than 1.5 μg / mL. The results in Figure 3 show that the EC50 values ​​for humanized antibodies H1L1-IgG4, H3L1-IgG4, and H3L2-IgG4 were 0.1341 μg / mL, 0.1110 μg / mL, and 0.1254 μg / mL, respectively, while the EC50 value for the chimeric antibody H0L0-IgG4 was 0.1048 μg / mL. The humanized antibodies H1L1-IgG4, H3L1-IgG4, H3L2-IgG4, and the chimeric antibody H0L0-IgG4 exhibited strong binding affinity to mouse TrKA; however, the affinity of the humanized antibodies H1L1-IgG4, H3L1-IgG4, and H3L2-IgG4 for binding to mouse TrKA remained essentially unchanged compared to the chimeric antibody H0L0-IgG4.

[0116] (Example 8) Inhibitory effect of humanized antibodies on the binding affinity between human NGF and human TrKA detected by flow cytometry. Human NGF was biotinylated, and it was able to bind to the extracellular domain of the human TrkA protein on HEK293T-human TrkA cells. Furthermore, an anti-TrkA monoclonal antibody was also able to bind to the extracellular domain of the human TrkA protein on HEK293T-human TrkA cells. To detect the binding of human NGF to the extracellular domain of human TrkA protein on HEK293T-human TrkA cells under the influence of various concentrations (20 μg / mL, 10 μg / mL, 5 μg / mL, 2.5 μg / mL, 1.25 μg / mL, 0.625 μg / mL, 0.313 μg / mL, 0.156 μg / mL, 0.078 μg / mL, 0.039 μg / mL, 0.019 μg / mL) of humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and chimeric antibody (H0L0-IgG4) using flow cytometry, and to study the inhibitory effect of each humanized antibody on the binding of human TrkA to human TrkA, competitive experiments were designed. The experimental results are shown in Figure 4. In Figure 4, the parent percentage value reflected the human NGF signal bound to the extracellular region of the human TrkA protein on HEK293T-human TrkA cells. Lower readings indicated a weaker human NGF signal bound to the extracellular region of the human TrkA protein on HEK293T-human TrkA cells, and a greater effect of the antibody in inhibiting the binding of human NGF to human TrkA. As shown in Figure 4, as the concentration of each humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and the chimeric antibody (H0L0-IgG4) increased, the parent percentage value gradually decreased until it approached zero. That is, the human NGF signal bound to the extracellular region of the human TrkA protein gradually decreased until there was no human NGF to bind to the extracellular region of the human TrkA protein, and the binding of human NGF to human TrkA was completely inhibited.The IC50 values ​​for the humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) were 0.7963 μg / mL, 0.7405 μg / mL, and 0.6653 μg / mL, respectively, while the IC50 value for the chimeric antibody (H0L0-IgG4) was 0.8810 μg / mL; each humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and the chimeric antibody (H0L0-IgG4) could dose-dependently inhibit the binding of human NGF to human TrkA at the cellular level within a certain concentration range; and it was observed that the inhibitory effect of the humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) on the binding of human NGF to human TrkA remained fundamentally unchanged compared to the chimeric antibody (H0L0-IgG4).

[0117] (Example 9) Inhibitory effect of humanized antibodies on the binding affinity between mouse NGF and mouse TrKA detected by flow cytometry. Mouse NGF was biotinylated, and the mouse NGF was able to bind to the extracellular domain of the mouse TrkA protein on HEK293T-mouse TrkA cells. Furthermore, an anti-TrkA monoclonal antibody was also able to bind to the extracellular domain of the mouse TrkA protein on HEK293T-mouse TrkA cells. Competitive experiments were designed to detect the binding of mouse NGF to the extracellular domain of mouse TrkA protein on HEK293T-mouse TrkA cells under the influence of various concentrations (20 μg / mL, 10 μg / mL, 5 μg / mL, 2.5 μg / mL, 1.25 μg / mL, 0.625 μg / mL, 0.313 μg / mL, 0.156 μg / mL, 0.078 μg / mL, 0.039 μg / mL, 0.019 μg / mL) of humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and chimeric antibody (H0L0-IgG4) using flow cytometry, and to study the inhibitory effect of each humanized antibody on the binding of mouse TrkA to mouse TrKA. The experimental results are shown in Figure 5. In Figure 5, the parent percentage value reflected the mouse NGF signal bound to the extracellular region of the mouse TrkA protein on HEK293T-mouse TrkA cells. Lower readings indicated a weaker mouse NGF signal bound to the extracellular region of the mouse TrkA protein on HEK293T-mouse TrkA cells, and a greater effect of the antibody in inhibiting the binding of mouse NGF to mouse TrKA; as shown in Figure 5, as the concentration of each humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and chimeric antibody (H0L0-IgG4) increased, the parent percentage value gradually decreased until it approached zero, meaning that the mouse NGF signal bound to the extracellular region of the mouse TrkA protein gradually decreased until there was no mouse NGF to bind to the extracellular region of the mouse TrkA protein, and the binding of mouse NGF to mouse TrkA was completely inhibited.The IC50 values ​​for the humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) were 0.3848 μg / mL, 0.2826 μg / mL, and 0.2524 μg / mL, respectively, while the IC50 value for the chimeric antibody (H0L0-IgG4) was 0.3959 μg / mL; each humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and the chimeric antibody (H0L0-IgG4) could dose-dependently inhibit the binding of mouse NGF to mouse TrkA at the cellular level within a certain concentration range; and it was observed that the inhibitory effect of the humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) on the binding of mouse NGF to mouse TrkA remained fundamentally unchanged compared to the chimeric antibody (H0L0-IgG4).

[0118] (Example 10) Evaluation of the specificity of humanized antibody binding to target human TrKA using ELISA. The TrkA receptor family belongs to receptor tyrosine kinases (RTKs), including TrkA, TrkB, and TrkC, which share high homology. TrkA is the receptor tyrosine kinase for nerve growth factor (NGF), selectively binding to NGF and serving as a functional receptor for NGF. In addition to the high-affinity receptor TrkA, NGF could also bind to its low-affinity receptor, p75. In the study, the binding affinity of humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and chimeric antibodies (H0L0-IgG4) to TrKA, TrKB, TrKC, and P75 at various concentrations (20 μg / mL, 10 μg / mL, 5 μg / mL, 2.5 μg / mL, 1.25 μg / mL, 0.625 μg / mL, 0.313 μg / mL, 0.156 μg / mL, 0.078 μg / mL, 0.039 μg / mL, 0.019 μg / mL) was detected by ELISA, and the specificity of the binding affinity of the tested antibodies to target human TrKA was evaluated. The results are shown in Figure 6. In Figure 6, at specific antibody concentrations, the OD450 value reflected the strength of the binding affinity between the antibody and the protein. A larger reading indicates stronger binding affinity between the antibody and the protein. The experimental results showed that the humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and the chimeric antibody (H0L0-IgG4) exhibited good binding affinity to the TrKA receptor (the concentration of the tested antibodies was increased from 0 μg / mL to 20 μg / mL, and the OD450 value gradually increased until it approached 3 and became stable), and that they did not basically bind to TrKB, TrKC, or P75 (the concentration of each tested antibody was increased from 0 μg / mL to 20 μg / mL, and the OD450 value remained virtually unchanged, approaching 0). It was observed that the specificity of the tested antibodies that bound to the target human TrKA was very good.

[0119] (Example 11) Evaluation of ADA (Antimicrobial Absorption) of Humanized Antibodies in Mice by ELISA Method In the study, five mice were immunized with humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and a chimeric antibody (H0L0-IgG4), respectively, and tail vein blood was collected 14 days after administration. Each humanized antibody (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) and chimeric antibody (H0L0-IgG4) was diluted with PBS to 1 μg / mL in a pre-coated microplate, 100 μL of which was added to each well, and reacted overnight at 4°C; the plate was washed three times with PBS solution and blocked at room temperature for 1 hour with 5% milk-PBS; then the plate was washed once with PBS solution; mouse tail vein blood was gradient diluted with 5% milk-PBS buffer (1:500, 1:1000, 1:5000, 1:10000, 1:50000), the mouse tail vein blood was left at room temperature for 1 hour, and then the pre-reacted tail vein blood was added to the microplate at 100 μL per well. A negative control (NC) was established. The mixture was reacted at room temperature for 1 hour, then the plate was washed three times with PBS solution and lightly tapped to dry. A 1:2000 diluted HRP-labeled goat anti-mouse IgG(Fc) secondary antibody was added and reacted at room temperature for 1 hour; the plate was washed five times with PBS solution and lightly tapped to dry, then 100 μL of substrate development solution TMB was added and reacted at room temperature under dark conditions for 20 minutes; then 50 μL of stop solution was added and mixed, and the OD450 value was read on a microplate reader. The results are shown in Figure 7 below. In Figure 7, the OD450 value reflects the strength of the generated ADA. A higher reading indicates stronger generated ADA. The experimental results showed that humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) produced weaker ADA compared to the chimeric antibody (H0L0-IgG4); and it was observed that humanized antibodies (H1L1-IgG4, H3L1-IgG4, H3L2-IgG4) had lower immunogenicity than the chimeric antibody (H0L0-IgG4).

[0120] (Example 12) Evaluation of the pharmacokinetics of humanized antibodies in mice using ELISA. Twelve male ICR mice were randomly divided into four groups of three mice per group. Chimeric antibody H0L0-IgG4 and humanized antibody H1L1-IgG4 were administered intravenously or subcutaneously at a dose of 1 mg / kg. Blood samples were collected and plasma separated (EDTA-K2 anticoagulation) 1, 6, 24, 72, 168, 336, 504, and 672 hours after administration. Blood samples were collected an additional 0.25 hours after intravenous administration. The concentrations of H0L0-IgG4 or H1L1-IgG4 in each sample were analyzed using indirect ECLA. Pharmacokinetic parameters were calculated based on plasma drug concentrations. Key PK parameter results are shown in Table 2, and drug-time curves are shown in Figure 8. The results showed that after intravenous infusion of H0L0-IgG4 or H1L1-IgG4 in ICR mice, the mean plasma half-lives were 97 hours and 143 hours, respectively; after subcutaneous infusion of H0L0-IgG4 or H1L1-IgG4, the mean peak times were 40 hours and 56 hours, the mean Cmax was 6.61 μg / mL and 9.49 μg / mL, the mean AUClast was 2120 μg·h / mL and 3020 μg·h / mL, the mean plasma half-lives were 75 hours and 122 hours, and the absolute bioavailability was 89% and 101%, respectively. Humanized antibody H1L1-IgG4 was found to have better pharmacokinetic parameters in mice compared to chimeric antibody H0L0-IgG4.

[0121] [Table 2]

[0122] (Example 13) ADCC activity of humanized antibodies detected by the luciferase reporter gene system Antibody-dependent cell-mediated cytotoxicity (ADCC) means that when an IgG antibody specifically binds to antigenic determinants on the surface of target cells via its Fab segment, its Fc segment binds to effector cells such as FcγR killer cells (NK cells, monocyte-macrophages, neutrophils), inducing the killing activity of the effector cells and directly killing the target cells. In the experiment, the Jurkat-NFAT-Luc-CD16 luciferase reporter cell line was stably transfected using the CD16 receptor, and the original NFAT (nuclear factor of activated T cells) reaction was used. When the Fab segment of the test antibody bound to the antigen on target cells HEK293T-human TrKA cells, the Fc segment of the antibody bound to (FcγRIIIA) on the surface of effector cells Jurkat-NFAT-luciferase-CD16 cells, triggering activation of the NFAT-related signaling pathway in Jurkat-NFAT-luciferase-CD16 cells, which in turn led to an increase in luciferase expression levels. The ADCC activity of humanized antibodies was evaluated by detecting the luciferase expression level of effector cells Jurkat-NFAT-luciferase-CD16 under the influence of humanized antibodies (H1L1-IgG4, H1L1-IgG1) at various concentrations (100 μg / mL, 20 μg / mL, 4 μg / mL, 0.8 μg / mL, 0.16 μg / mL, 0.032 μg / mL, 0.0064 μg / mL, 0.00128 μg / mL, 0.000256 μg / mL, 0.0000512 μg / mL). The results are shown in Figure 9 below. In Figure 9, the mean value reflects the luciferase expression level. A higher reading indicates a higher expression level and stronger ADCC activity of the corresponding antibody. The experimental results showed that as antibody concentrations increased, the mean values ​​of the negative control fusion protein dulaglutide-IgG4 and the humanized antibody H1L1-IgG4 remained essentially unchanged and close to zero, while the mean value of the humanized antibody H1L1-IgG1 gradually increased until reaching a plateau, with a peak concentration half-value (EC50) of 0.02281 μg / mL. This indicated that the humanized antibody H1L1-IgG1 had strong ADCC activity, while H1L1-IgG4 essentially lacked ADCC activity.

[0123] (Example 14) Evaluation of in vivo analgesic activity of humanized antibodies using a fully Freund's adjuvant-induced inflammatory pain model. The complete Freund's adjuvant-induced inflammatory pain model is a pain model that generates a pain model of chronic inflammatory pain stimuli and responses similar to osteoarthritis by injecting the complete Freund's adjuvant into the palm of a mouse's hand. Pain is measured by mechanical pain testing. The greater the intensity of the mechanical stimulus, the more resistant the animal is to pain. In the experiment, 18-25g male C57BL / 6 mice were selected and 10 μL of CFA was injected into the center of the sole of the right hind limb of the mouse. 24 hours after modeling, mechanical hyperalgesia testing was used for testing, and animals with a pull-out threshold of less than 0.5 grams were selected by screening. Based on pain sensitivity, mice were randomly divided into a solvent control group, a naproxen 100 mg / kg dose group, a tanezumab 2 mg / kg dose group, an MNAC13 2 mg / kg dose group, and an H1L1-IgG4 2 mg / kg dose group. A total of 5 groups were formed, with n=10 per group. Of these, tanezumab was an anti-NGF monoclonal antibody, and MNAC13 was an anti-TrkA monoclonal antibody. The solvent control group, tanezumab, MNAC13, and H1L1-IgG4 dose groups were administered by subcutaneous injection, and mechanical hyperalgesia tests were performed at 42 and 96 hours, respectively. The naproxen dose group was administered intragastrically 2 hours before the test. The results are shown in Figure 10. The vertical axis represents the intensity of mechanical stimulation. A higher pressure threshold for palm pull-out in mice indicates better analgesia. The results showed that naproxen, a positive control group, was tested 2 hours after oral administration at a dose of 100 mg / kg and showed inhibition of mechanical hyperalgesia induced by the C57BL / 6 mouse CFA model; tanezumab, tested 42 hours after subcutaneous administration at a dose of 2 mg / kg, showed inhibition of mechanical hyperalgesia induced by the C57BL / 6 mouse CFA model, but tanezumab tested 96 hours after administration did not show such inhibition; and MNAC13, tested 42 and 96 hours after subcutaneous administration at a dose of 2 mg / kg, did not show inhibition of mechanical hyperalgesia induced by the C57BL / 6 mouse CFA model.H1L1-IgG4 was tested 96 hours after subcutaneous administration at a dose of 2 mg / kg and showed inhibition of mechanical hyperalgesia induced by the C57BL / 6 mouse CFA model, but H1L1-IgG4 tested 42 hours after administration did not show such inhibition. Conclusion: H1L1-IgG4 significantly inhibited mechanical hyperalgesia induced by the C57BL / 6 mouse CFA model 96 hours after subcutaneous administration and had activity to reduce inflammatory pain.

[0124] (Example 15) CDC activity of humanized antibodies detected using the NIH-3T3-TrkA cell model Complement-dependent cytotoxicity (CDC) refers to cytotoxic activity mediated by specific antibody binding to corresponding antigens on the cell membrane surface, which forms a complex to activate the complement, i.e., the classical complement pathway. The formed membrane attack complex exerts a lytic effect on target cells. In the experiment, the cell viability of target cells NIH-3T3-TrKA was detected by the CCK8 method under the action of humanized antibodies (H1L1-IgG4, H1L1-IgG1) at various concentrations (16.67 μg / mL, 5.56 μg / mL, 1.85 μg / mL, 0.62 μg / mL, 0.21 μg / mL, 0.069 μg / mL, 0.023 μg / mL, 0.008 μg / mL, 0.003 μg / mL) and the negative control fusion protein dulaglutide-IgG4, and the CDC activity of humanized anti-TrKA antibodies was evaluated. The results are shown in Figure 11. The results in Figure 11 show that as the antibody concentration increased, the killing effect of the humanized antibody H1L1-IgG1 against target cells NIH-3T3-TrKA gradually increased, with a peak concentration and half-value IC50 of 0.2219 μg / mL; the humanized antibody H1L1-IgG4 and the negative control fusion protein dulaglutide-IgG4 essentially had no killing effect against target cells NIH-3T3-TrKA; and it was observed that the humanized antibody H1L1-IgG1 had potent CDC activity, while H1L1-IgG4 essentially did not have CDC activity.

[0125] (Example 16) Evaluation of in vitro activity of humanized antibodies using the NIH-3T3-TrkA cell model Under NGF stimulation, the level of TrkA protein tyrosine phosphorylation on the NIH-3T3-TrkA cell membrane is upregulated, and the downstream signaling pathway of TrkA is activated. Humanized anti-TrkA antibodies can bind to the TrkA protein on the surface of the NIH-3T3-TrkA cell membrane, inhibit NGF stimulation, and downregulate the level of TrkA protein tyrosine phosphorylation. In the experiment, the AlphaLISA method was used to detect the downregulation of TrkA protein tyrosine phosphorylation levels under the action of humanized antibodies at various concentrations (1000 μg / mL, 333.33 μg / mL, 111.11 μg / mL, 37.04 μg / mL, 12.35 μg / mL, 4.12 μg / mL, 1.37 μg / mL, 0.45 μg / mL, 0.15 μg / mL, 0.05 μg / mL, 0.017 μg / mL, 0.005 μg / mL), and the in vitro activity of the tested antibodies was evaluated. The test results for p-TrkA are shown in Figure 12. The experimental results showed that the humanized anti-TrKA antibody H1L1-IgG4 was able to inhibit the NGF-TrKA signaling pathway and downregulate the level of TrkA protein tyrosine phosphorylation in a dose-dependent manner. The IC50 value was 0.02072 μg / mL. It was observed that the humanized anti-TrKA antibody H1L1-IgG4 was able to inhibit the activation of the downstream TrKA signaling pathway by NGF.

[0126] The solutions of the present invention will be described below in conjunction with examples. Those skilled in the art will understand that the following examples are provided solely to illustrate the present invention and should not be considered to limit the scope of the invention. Where specific techniques or conditions are not shown in the examples, the techniques or conditions or product descriptions described in the literature in the art shall be used. Where reagents or equipment used are not specified by the manufacturer, they are all commercially available and commonly used products.

Claims

1. A humanized antibody or its antigen-binding fragment capable of specifically recognizing TrkA, Heavy chain variable regions having VH-CDR1 shown in SEQ ID NO: 41, VH-CDR2 shown in SEQ ID NO: 42, and VH-CDR3 shown in SEQ ID NO: 44; and Light chain variable region having VL-CDR1 shown in SEQ ID NO: 45, VL-CDR2 shown in SEQ ID NO: 46 or SEQ ID NO: 47, and VL-CDR3 shown in SEQ ID NO: 48 A humanized antibody or its antigen-binding fragment, including the above.

2. (a) A heavy chain variable region having the amino acid sequence shown in SEQ ID NO: 2 and a light chain variable region having the amino acid sequence shown in SEQ ID NO: 10; (b) A heavy chain variable region having the amino acid sequence shown in SEQ ID NO: 4 and a light chain variable region having the amino acid sequence shown in SEQ ID NO: 10; or (c) Heavy chain variable region having the amino acid sequence shown in SEQ ID NO: 4 and light chain variable region having the amino acid sequence shown in SEQ ID NO: 11 A humanized antibody or antigen-binding fragment thereof according to claim 1, comprising a heavy chain variable region and a light chain variable region selected from the above.

3. A humanized antibody or antigen-binding fragment thereof according to claim 1, which specifically recognizes the extracellular region of TrkA.

4. The humanized antibody or antigen-binding fragment thereof according to claim 1, wherein the light chain constant region of the antibody is derived from the human κ light chain constant region; and the heavy chain constant region is derived from the human IgG4 heavy chain constant region.

5. The humanized antibody or antigen-binding fragment thereof according to claim 4, wherein the Fc region of the antibody has S10P, F16A, L17A, R191K mutations and 229K deletion mutations compared to human IgG4 wild-type Fc, and the human IgG4 wild-type Fc has the amino acid sequence shown in SEQ ID NO:

16.

6. The humanized antibody or antigen-binding fragment thereof according to claim 4, wherein the full-length sequence of the constant region of the antibody is as shown in SEQ ID NO: 14 or 15.

7. The antibody has the following heavy and light chains: (a) A heavy chain having the amino acid sequence shown in SEQ ID NO: 17 and a light chain having the amino acid sequence shown in SEQ ID NO: 24; (b) A heavy chain having the amino acid sequence shown in SEQ ID NO: 19 and a light chain having the amino acid sequence shown in SEQ ID NO: 24; or (c) Heavy chain having the amino acid sequence shown in SEQ ID NO: 19 and light chain having the amino acid sequence shown in SEQ ID NO: 25 A humanized antibody or antigen-binding fragment thereof according to claim 1, selected from the above.

8. A nucleic acid molecule encoding a humanized antibody or an antigen-binding fragment thereof according to any one of claims 1 to 7, DNA is a nucleic acid molecule.

9. An expression vector supporting the nucleic acid molecule described in claim 8.

10. Recombinant cells that carry the nucleic acid molecule described in claim 8, or express a humanized antibody or its antigen-binding fragment described in any one of claims 1 to 7, Recombinant cells obtained by introducing the expression vector described in claim 9 into host cells.

11. A pharmaceutical composition comprising a humanized antibody or an antigen-binding fragment thereof according to any one of claims 1 to 7, a nucleic acid molecule according to claim 8, an expression vector according to claim 9, or recombinant cells according to claim 10.

12. A humanized antibody according to any one of claims 1 to 7, a nucleic acid molecule according to claim 8, an expression vector according to claim 9, recombinant cells according to claim 10, or a pharmaceutical composition according to claim 11, for use in the treatment or prevention of diseases caused by abnormal expression of NGF, abnormal expression of TrkA, or abnormal activity of TrkA in a subject.

13. A humanized antibody according to any one of claims 1 to 7 for use in the treatment or prevention of a disease, a nucleic acid molecule according to claim 8, an expression vector according to claim 9, recombinant cells according to claim 10, or a pharmaceutical composition according to claim 11, wherein the disease is neuropathic pain, inflammatory pain, cancer-related pain, fracture-related pain, surgery-related pain, inflammatory lung disease, interstitial cystitis, bladder pain syndrome, inflammatory bowel disease, inflammatory skin disease, Raynaud's syndrome, idiopathic pulmonary fibrosis, scarring (hypertrophic, keloid type and Humanized antibodies, nucleic acid molecules, expression vectors, recombinant cells, or pharmaceutical compositions, including (and other forms) sclerosis, endocardial myocardial fibrosis, atrial fibrosis, myelofibrosis, progressive nodular fibrosis (lung), nephrogenic systemic fibrosis, scleroderma, systemic sclerosis, arthritis fibrosis, ocular fibrosis, non-small cell lung cancer, papillary thyroid carcinoma, glioblastoma multiforme, colorectal cancer, melanoma, cholangiocarcinoma or sarcoma, acute myeloid leukemia, large cell neuroendocrine carcinoma, neuroblastoma, prostate cancer, pancreatic cancer, melanoma, squamous cell carcinoma of the head and neck, or gastric cancer.

14. A kit for detecting TrkA, comprising a humanized antibody according to any one of claims 1 to 7.

15. A humanized antibody according to any one of claims 1 to 7, a nucleic acid molecule according to claim 8, an expression vector according to claim 9, or a recombinant cell according to claim 10, for use in the preparation of a kit for detecting TrkA or diagnosing TrkA-related diseases.

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