嵌合抗原受体
转基因
细胞生物学
体内
生物
基因传递
T细胞
离体
DNA
基因组编辑
遗传增强
dna疫苗
免疫疗法
癌症免疫疗法
功能(生物学)
细胞
基因组工程
计算生物学
分子生物学
癌症研究
抗原
病毒载体
基因
受体
免疫原性
癌细胞
化学
电穿孔
限制
链霉菌
抗原提呈细胞
细胞毒性T细胞
基因组
免疫耐受
人性化鼠标
作者
William A. Nyberg,P Bernard,Wayne Ngo,Charlotte H. Wang,Jonathan Ark,Allison Rothrock,Gina M. Borgo,Gabriella R. Kimmerly,Jae Hyung Jung,Vincent Allain,Jennifer Hamilton,Alisha Baldwin,Robert Stickels,Sarah Wyman,Safwaan H. Khan,Shanshan Lang,Donna Marsh,Niran Almudhfar,Catherine Novick,Yasaman Mortazavi
出处
期刊:Nature
[Nature Portfolio]
日期:2026-03-18
卷期号:652 (8110): 712-721
被引量:25
标识
DOI:10.1038/s41586-026-10235-x
摘要
Abstract Engineered T cells, reprogrammed to express chimeric antigen receptors (CAR) or T cell receptors (TCR), have transformed cancer treatment and are being explored as therapeutics for autoimmune and infectious diseases. Enhancing T cell function through genome editing, either by disrupting endogenous genes or precisely inserting DNA payloads, has shown considerable promise 1 . However, the ex vivo manufacturing process is lengthy and costly, limiting accessibility of these therapies. In vivo generation of CAR T cells could overcome these barriers, but current methods rely either on transient expression with limited durability, or on random integration of DNA payloads that lack specificity. Here we demonstrate that stable and cell-specific transgene expression can be achieved through in vivo site-specific integration of large DNA payloads. We developed a two-vector system to deliver CRISPR–Cas9 ribonucleoproteins and a DNA donor template, using enveloped delivery vehicles and adeno-associated viruses, respectively. We optimized both vectors for T cell-specific delivery and gene-targeting efficiency. By integrating a CAR transgene into a T cell-specific locus, we generate therapeutic levels of CAR T cells in vivo in humanized mouse models of B cell aplasia, and haematological and solid malignancies. These findings offer a pathway to more efficient, precise and widely accessible T cell therapies.
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