肿瘤细胞治疗研究
英文原题:Sequential CD2/CD3/CD28 activation improves nonviral large-payload chimeric antigen receptor knock-in at the T cell receptor α constant locus.
Sequential CD2/CD3/CD28 activation improves nonviral large-payload chimeric antigen receptor knock-in at the T cell receptor α constant locus.
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CRISPR/Cas9介导的通过同源定向修复(HDR)实现的非病毒靶向整合,为生成均一的下一代嵌合抗原受体(CAR)T细胞提供了一种策略,同时避免了与病毒载体相关的风险。
然而,将大型治疗性载荷高效递送至原代T细胞受到低HDR效率和电转诱导毒性的限制。在此,我们展示,在AZD7648支持的非病毒编辑框架下,序贯CD2/CD3/CD28激活可改善T细胞受体恒定(TRAC)位点处HDR介导的大载荷敲入,并提高存活CAR-T 细胞产量。转录组分析和线粒体膜电位分析提示,该条件与细胞周期和代谢相关程序有关,这可能有助于提高对电转应激的耐受性以及对大型DNA模板的加工能力。在功能上,工程化非病毒TRAC-CD19.CAR-T 细胞在体外表现出抗原特异性细胞毒性,并在NSG异种移植模型中抑制白血病进展,其抗肿瘤活性在该功能验证性异种移植模型中接近慢病毒CAR-T 参考品的水平。这项工作建立了一种优化的序贯激活策略,以改进非病毒、大载荷TRAC靶向CAR-T 细胞工程化,并可能为未来精准细胞免疫治疗生产工作流程的开发提供参考。
CRISPR/Cas9-mediated nonviral targeted integration via homology-directed repair (HDR) offers a strategy for generating uniform, next-generation chimeric antigen receptor (CAR) T cells while avoiding risks associated with viral vectors.
However, efficient delivery of large therapeutic payloads into primary T cells is limited by low HDR efficiency and electroporation-induced toxicity.
Here, we show that sequential CD2/CD3/CD28 activation improves HDR-mediated large-payload knock-in at the T cell receptor constant (TRAC) locus and increases viable CAR-T cell yield under an AZD7648-supported nonviral editing framework. Transcriptomic profiling and mitochondrial membrane potential analysis suggest that this condition is associated with cell-cycle- and metabolism-related programs, which may contribute to improved tolerance to electroporation stress and processing of large DNA templates.
Functionally, engineered nonviral TRAC-CD19. CAR-T cells exhibit antigen-specific cytotoxicity in vitro and suppress leukemia progression in an NSG xenograft model, with antitumor activity that approached that of a lentiviral CAR-T reference in this proof-of-function xenograft model. This work establishes an optimized sequential activation strategy to improve nonviral, large-payload TRAC-targeted CAR-T cell engineering and may inform future development of precision cellular immunotherapy manufacturing workflows.
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