决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Beyond CRISPR: next-gen precision engineering of CAR-NK cells for enhanced persistence, trafficking, and tumor eradication.
嵌合抗原受体自然杀伤(CAR-NK)细胞是 CAR-T 细胞的一种有前景的“现货型”替代方案,具有更优的安全性特征和固有的多抗原靶向能力。
嵌合抗原受体NK 细胞(CAR-NK)是有前景的“现货型”CAR-T替代疗法,具有更佳安全性及内在多抗原靶向能力。然而,其临床潜力受到传统CRISPR技术的“上限”制约,包括基于DNA双链断裂(DSB)的CRISPR-Cas9的实际局限:DSB相关染色体重排及p53介导的适应性下降;安全插入大型多顺反子片段的效率较低;以及由刚性启动子驱动的转基因表达可能引起持续性信号。值得注意的是,新一代无DSB碱基编辑和先导编辑可减少或避免核酸酶切割引起的DSB基因毒性压力;CRISPR相关转座酶可实现可编程、靶向插入并容纳较大片段;合成或表观遗传线路则能动态、依情境调控转基因,避免组成型启动子驱动的持续信号。本综述探讨传统CRISPR之外的技术路径,重点介绍有望改善CAR-NK疗法并提升安全性和疗效的新一代精准工程工具。文章详述如何协同整合碱基编辑、表观遗传重编程、靶向转座子系统和合成生物学线路,以应对关键临床挑战。这些先进技术可精准增强疗效的三个基本支柱:通过内源性细胞因子增强和代谢工程提升持久性;通过趋化因子受体匹配及基质屏障降解改善迁移;通过逻辑门控靶向、免疫调节载荷和双特异性衔接器实现肿瘤清除。综述整合这些前沿进展,为开发可对血液系统恶性肿瘤和实体瘤产生持久、强效且安全抗肿瘤应答的新一代CAR-NK细胞提供路线图,推动易及细胞免疫治疗的新前沿。
Chimeric antigen receptor natural killer (CAR-NK) cells represent a promising "off-the-shelf" alternative to CAR-T cells, offering a superior safety profile and inherent multi-antigen targeting capabilities. However, their clinical potential is constrained by the "CRISPR ceiling", a set of practical limitations of DSB-based CRISPR-Cas9 such as DNA double-strand break (DSB)-associated chromosomal rearrangements and p53-mediated fitness loss, low efficiency for safe, large, multicistronic knock-ins, and rigid promoter-driven transgene expression that can cause tonic signaling. Importantly, next-generation, DSB-free base and prime editors reduce or eliminate the DSB-associated genotoxic stress observed with nuclease cutting, CRISPR-associated transposases now enable programmable, targeted insertion strategies that can accommodate larger cassettes, and synthetic/epigenetic circuits provide dynamic, context-dependent transgene control that avoids constitutive promoter-driven tonic signaling. This review explores technological approaches beyond conventional CRISPR, highlighting next-generation precision engineering tools that may enable improved CAR-NK therapies and represent potential advances in safety and efficacy. We detail how base editing, epigenetic reprogramming, targeted transposon systems, and synthetic biology circuits can be synergistically integrated to overcome critical clinical challenges. These advanced technologies enable the precise enhancement of three fundamental pillars of efficacy: Persistence through endogenous cytokine armoring and metabolic engineering; Trafficking via chemokine receptor matching and stromal barrier degradation; and Tumor Eradication using logic-gated targeting, immunomodulatory payloads, and bispecific engagers. By synthesizing these cutting-edge advances, we provide a roadmap for developing next-generation CAR-NK cells capable of durable, potent, and safe antitumor responses against both hematological and solid malignancies, ultimately forging a new frontier in accessible cellular immunotherapy.
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