研究概要
治疗性单克隆抗体(mAbs)是癌症治疗的核心,但往往疗效不完全。
中文摘要
治疗性单克隆抗体(mAbs)是癌症治疗的核心,但往往疗效不完全。我们表明,短暂药理学抑制宿主细胞中的复杂N-聚糖(“糖工程”)可增强多种耗竭性mAbs的体内活性,包括已为增强效力而工程化的mAbs。在临床前模型中,糖工程通过Fc RIIIa和自然杀伤(NK)细胞依赖性途径改善了抗CD20介导的肿瘤清除和生存。在B16-F10黑色素瘤中,糖工程同样增强了抗CD25对瘤内调节性T细胞(Tregs)的耗竭。值得注意的是,糖工程对平衡结合亲和力产生的影响极小,但显著增加了生理剪切应力下IgG-Fc RIIIa相互作用的机械耐久性。这些结果确立了抗体效应功能是一种机械免疫学过程,其中IgG-Fc R相互作用可以被调节以增强对生理力的抵抗力,从而超越了当前mAb工程中以亲和力为中心的模式。将机械生物学整合到治疗开发中可能使mAbs针对人体生理的动态力进行优化,这为增强下一代免疫疗法提供了一条途径。
展开英文摘要原文
Therapeutic monoclonal antibodies (mAbs) are central to cancer treatment but often show incomplete efficacy. We show that transient pharmacologic inhibition of complex N-glycans in host cells ("glycoengineering") enhances the in vivo activity of multiple depleting mAbs, including mAbs already engineered for heightened potency. In preclinical models, glycoengineering improved -CD20-mediated tumor clearance and survival through Fc RIIIa- and natural killer (NK) cell-dependent pathways. In B16-F10 melanoma, glycoengineering similarly enhanced anti-CD25 depletion of intratumoral regulatory T cells (Tregs). Notably, glycoengineering produced minimal changes in equilibrium binding affinity but markedly increased the mechanical durability of IgG-Fc RIIIa interactions under physiological shear stress. These results establish antibody effector function as a mechano-immunological process in which IgG-Fc R interactions can be tuned for resilience to physiological forces, thereby moving beyond the current affinity-centric paradigm in mAb engineering. Integrating mechanobiology into therapeutic development may enable mAbs optimized for the dynamic forces of human physiology, which provides a route to enhance next-generation immunotherapies.
论文信息
- 作者
- Cheng BY、Centeio RM、Chiu DK、Kiyohara CL、Herzog E、Dahan R、Thomas WE、Wang TT
- 第一作者单位
- Institute for Immunity, Transplantation and Infection, Stanford University School of Medicine, Stanford, CA 94305, USA.United States
- 通讯作者单位
- Institute for Immunity, Transplantation and Infection, Stanford University School of Medicine, Stanford, CA 94305, USA; Department of Medicine, Division of Infectious Diseases, Department of Microbiology and Immunology, Stanford University School of Medicine, Stanford, CA 94305, USA. Electronic address: taiawang@stanford.edu.United States
- 期刊
- Immunity2026 Jul 14