CD16
免疫学
癌症研究
效应器
生物
流式细胞术
脐带血
抗原
医学
归巢(生物学)
自然杀伤细胞
细胞
造血
机制(生物学)
嵌合抗原受体
白细胞介素12
细胞毒性T细胞
白细胞介素21
细胞生物学
CD19
作者
Ye Li,Huihui Fan,Guohui Wang,Xin Wang,Rafet Başar,Maliha Munir,Nadima Uprety,Rejeena Shrestha,Ludovica La Posta,Bin Liu,Jeffrey Wilson,Prashant Menon,Natalie W. Fowlkes,Patrick Zhang,Enli Liu,Gary M. Deyter,Luis Muniz-Feliciano,Pinaki P. Banerjee,May Daher,David Marin
标识
DOI:10.1016/j.ccell.2026.06.017
摘要
Allogeneic CAR-engineered NK cells enable scalable off-the-shelf therapy, yet donor heterogeneity remains a major barrier to consistent potency. Building on our clinical experience with cord blood-derived CAR NK cells, we identified an immature CD16 − CD161 − double-negative (DN) NK subset associated with poor outcomes. Following CAR engineering, DN-derived NK cells remained hypofunctional yet exhibited exaggerated trogocytosis, accumulating high levels of cognate antigen and forming an intra-product trogocytic-antigen sink (TAS) that diverted CAR engagement from tumor targets and promoted on-target off-tumor interactions within the product. Consequently, CD16 + CD161 + double-positive (DP) effectors exposed to the TAS underwent sustained activation, metabolic stress, fratricide, reduced viability, programmed cell death, and progressive exhaustion, culminating in impaired persistence and tumor control. Pre-manufacturing DN depletion eliminated the TAS and restored DP antitumor activity across hematologic and solid tumor models. Together, these findings define a donor subset-driven mechanism of CAR NK dysfunction and provide a manufacturing strategy to improve antitumor potency.
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