Xiaolin Shen, Xiaobao Xu, Jie Jiang, Shize Zhang, Jiangqing Chen, Ruoqi Chen, Ying Gu, Chun Zhou, Gang Xiao, He Huang, Morgan Huse, Michel Sadelain, Jiawei Zhang, Jie Sun
Asymmetric cell division (ACD) is an evolutionarily conserved mechanism that diversifies T cell fate, yet how engineered receptor signaling regulates ACD in chimeric antigen receptor (CAR)-T cells remains unknown. Here, we show that antigen engagement induces ACD in CAR-T cells through polarized inheritance of the CAR immune synapse (CARIS), supporting the generation of progeny with divergent functional trajectories. CARhigh progeny acquires a short-lived effector-like state, whereas CARlow progeny retains memory-like features, with enhanced persistence and superior antitumor efficacy. We identify CAR signaling strength as a tunable determinant of this fate bifurcation: selective mutation of CD3ζ immunoreceptor tyrosine-based activation motifs (1XX CAR) enhances ACD. Mechanistically, 1XX signaling promotes pre-mitotic MTOC-CARIS coupling through the PLCγ1-diacylglycerol (DAG) polarity axis, enabling asymmetric CARIS inheritance. Adoptive transfer studies further support a link between signaling-driven asymmetry, fate-determination, and therapeutic efficacy. Together, our findings reveal CAR signaling as a regulator of fate diversification through synapse-coupled asymmetric division.