← 返回前沿论文

工程化中性粒细胞衔接器克服 IgA 局限性并重编程静息中性粒细胞用于癌症免疫治疗

英文原题:Engineered neutrophil engagers overcome IgA limitations and reprogram resting neutrophils for cancer immunotherapy.

PubMed 2025/12/05(内容时间) J Biol Eng Q1 · IF 6.3(JCR 2025)

研究概要

这些发现将基于IgG的CD89双特异性抗体定义为下一代中性粒细胞衔接器平台,并展示了如何利用抗体工程和合成免疫学来拓展双特异性免疫疗法的效应范围。

研究思路结论见上方概要

双特异性抗体可将T细胞或NK细胞重定向至肿瘤,已显示出显著的治疗疗效,但其更广泛的应用往往受到免疫相关毒性、效应细胞可用性有限以及肿瘤部位可及性欠佳的制约。这些挑战促使人们努力寻找在循环中更为丰富、易于获取且能够在肿瘤微环境中发挥细胞毒性作用的替代效应细胞类型。中性粒细胞作为最常见的循环白细胞群体,是免疫细胞衔接器设计中一个有前景但尚未被充分利用的靶点。然而,通过CD89(FcαRI)利用中性粒细胞介导肿瘤杀伤的努力,一直受到基于IgA的格式固有缺陷的限制,包括稳定性差、血清半衰期短以及可开发性降低。

为应对这些挑战,我们建立了一个工程化双特异性抗体平台,将 CD89 结合整合到 IgG1 骨架中。该设计能够重定向中性粒细胞,同时保留 IgG 类治疗药物良好的药代动力学和制造特性。由此产生的双特异性结构允许可编程的中性粒细胞结合与肿瘤抗原识别并行,为先天免疫激活提供了一种临床可行的策略。在评估的双特异性设计中,ZT-8,一种人源化 CD89 × HER2 双特异性抗体,即使在无细胞因子预刺激的情况下,也表现出强效的中性粒细胞介导的对肿瘤细胞的细胞毒性,提示一种在肿瘤微环境中运作的独特激活机制。与基于 IgA 的抗体相比,ZT-8 表现出更优的免疫效应细胞结合、增强的杀肿瘤活性,并通过 FcRn 介导的再循环显著延长了体内半衰期。

展开英文摘要原文

BACKGROUND: Bispecific antibodies that redirect T cells or NK cells to tumors have demonstrated substantial therapeutic efficacy, but their broader application is often constrained by immune-related toxicities, limited effector cell availability, and suboptimal access to tumor sites. These challenges have prompted efforts to identify alternative effector cell types that are more abundant in circulation, readily accessible, and capable of cytotoxic activity in the tumor microenvironment. Neutrophils, which constitute the most prevalent circulating leukocyte population, represent a promising yet underutilized target for immune cell engager design. However, efforts to exploit neutrophil-mediated tumor killing through CD89 (FcαRI) have been limited by the inherent drawbacks of IgA-based formats, including poor stability, short serum half-life, and reduced developability. RESULTS: To address these challenges, we established an engineered bispecific antibody platform that incorporates CD89 engagement into an IgG1 scaffold. This design enables neutrophil redirection while preserving the favorable pharmacokinetic and manufacturing profiles of IgG-based therapeutics. The resulting bispecific architecture allows for programmable neutrophil engagement alongside tumor antigen recognition, offering a clinically viable strategy for innate immune activation. Among the bispecific designs evaluated, ZT-8, a humanized CD89 × HER2 bispecific antibody, demonstrated potent neutrophil-mediated cytotoxicity against tumor cells even in the absence of cytokine priming, suggesting a distinct activation mechanism that operates within the tumor microenvironment. Compared to IgA-based antibodies, ZT-8 exhibited superior immune effector engagement, enhanced tumoricidal activity, and substantially prolonged in vivo half-life through FcRn-mediated recycling. CONCLUSION: These findings define IgG-based CD89 bispecifics as a next-generation neutrophil engager platform and exemplify how antibody engineering and synthetic immunology can be leveraged to expand the effector landscape of bispecific immunotherapies.

论文信息

作者
Lee J、Han G、Kyung M、Lee S、Kim TW、Jung ST
第一作者单位
Department of Biomedical Sciences, Graduate School, Korea University, Seoul, 02707, Republic of Korea.South Korea
通讯作者单位
Department of Chemical and Biological Engineering, Seoul National University, Seoul, 08826, Republic of Korea. stjung@snu.ac.kr.South Korea
期刊
Journal of biological engineering2025 Dec 5
原文标识
PubMed 41345694 · DOI 10.1186/s13036-025-00580-2