Engineering an Fc-inert feline IgG1 by targeted mutations: Application to anti-PD-1 antibody development

单克隆抗体 抗体 生物 效应器 突变体 碎片结晶区 免疫系统 癌症研究 CD16 免疫学 蛋白质工程 突变 信号转导 分子生物学 单克隆 免疫结合物 病毒学 小分子 融合蛋白 细胞生物学 靶向治疗 癌症 免疫疗法 免疫球蛋白Fc片段 细胞培养 免疫球蛋白G
作者
Shoma Nishibori,Yoshiho Takeda,Masaya Igase,Takuya Mizuno
出处
期刊:Veterinary Immunology and Immunopathology [Elsevier BV]
卷期号:288: 111000-111000
标识
DOI:10.1016/j.vetimm.2025.111000
摘要

Immune checkpoint inhibitors (ICIs) have revolutionized cancer treatment in humans; however, research on ICIs in cats remains limited, and no clinical trials have been conducted for feline neoplastic diseases. Here, we developed a mouse monoclonal antibody (clone 1A1-2) targeting the feline PD-1 molecule and generated a mouse-feline chimeric antibody (1A1-2-fIgG1) by replacing the constant region of 1A1-2 with that of feline IgG1. However, administering 1A1-2-fIgG1 to cats may deplete PD-1-expressing effector T-cells via complement-dependent cytotoxicity, antibody-dependent cell-mediated cytotoxicity, and antibody-dependent cellular phagocytosis, as feline IgG1 binds to CD64, CD16, and C1q. We engineered two 1A1-2-fIgG1 mutants with amino acid substitutions in the constant region to reduce the interactions between the Fc fragment and C1q or FcγRs and mitigate these effector functions. These mutations successfully abolished the binding to CD64, CD32, and CD16 while preserving the affinity for FcRn, which is essential in maintaining the half-life of antibodies in the blood. Furthermore, the mutants exhibited impaired binding to C1q. Despite these modifications, the mutated antibodies effectively restored IFN-γ production, which had been suppressed by PD-1/PD-L1 signaling in stimulated lymphocytes, to levels comparable to those of the original antibody. These findings reveal that the engineered antibodies have potential for future clinical applications in feline oncology.
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