细胞毒性
抗原
嵌合抗原受体
化学
细胞生物学
分子生物学
免疫系统
T细胞
生物
免疫学
生物化学
体外
作者
Yan Sun,Xiuna Yang,Shuangshuang Yang,Yizhu Lyu,Bing Zhang,Kaiwen Liu,Na Li,Jia-Chen Cui,Guang-Xiang Huang,Cheng-Lin Liu,Jie Xu,Jian‐Qing Mi,Chen Zhu,Xiao-Hu Fan,Sai‐Juan Chen,Shuo Chen
标识
DOI:10.1038/s41392-023-01686-z
摘要
Ligand-induced receptor dimerization or oligomerization is a widespread mechanism for ensuring communication specificity, safeguarding receptor activation, and facilitating amplification of signal transduction across the cellular membrane. However, cell-surface antigen-induced multimerization (dubbed AIM herein) has not yet been consciously leveraged in chimeric antigen receptor (CAR) engineering for enriching T cell-based therapies. We co-developed ciltacabtagene autoleucel (cilta-cel), whose CAR incorporates two B-cell maturation antigen (BCMA)-targeted nanobodies in tandem, for treating multiple myeloma. Here we elucidated a structural and functional model in which BCMA-induced cilta-cel CAR multimerization amplifies myeloma-targeted T cell-mediated cytotoxicity. Crystallographic analysis of BCMA-nanobody complexes revealed atomic details of antigen-antibody hetero-multimerization whilst analytical ultracentrifugation and small-angle X-ray scattering characterized interdependent BCMA apposition and CAR juxtaposition in solution. BCMA-induced nanobody CAR multimerization enhanced cytotoxicity, alongside elevated immune synapse formation and cytotoxicity-mediating cytokine release, towards myeloma-derived cells. Our results provide a framework for contemplating the AIM approach in designing next-generation CARs.
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