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:T cell-specific non-viral DNA delivery and in vivo CAR-T generation using targeted lipid nanoparticles.
我们的发现首次证明,靶向LNPs可用于在体外和体内向T细胞高效递送DNA。我们表明,当与转座酶技术结合时,这种基于LNP的系统能够直接在体内高效生成稳定的CAR-T细胞,诱导强效且持久的抗肿瘤反应。NCtx代表了一种用于体内CAR-T治疗的新型非病毒基因治疗载体,为CAR-T细胞生成提供了一种可扩展且可能更易获得的传统方法替代方案。
离体嵌合抗原受体 (CAR)-T 疗法已经彻底改变了癌症治疗。然而,治疗可及性受到高成本、漫长的生产时间以及对专业中心和住院护理需求的阻碍。在体内生成 CAR-T 细胞的策略已成为一种有前景的替代方案,有望绕过 CAR-T 生产瓶颈。目前大多数体内 CAR-T 方法虽然显示出令人鼓舞的临床前疗效,但依赖于瞬时信使 RNA (mRNA) 递送或病毒载体,而这两者在效率、持久性和可扩展性方面均存在局限性。为应对这些挑战,我们开发了一种新型的基于 DNA 的靶向脂质纳米颗粒 (LNP),并将其命名为 NCtx。
编码 CAR 构建体的微环 DNA(mcDNA)和 SB100x 转座酶 mRNA 被包裹于一种新型脂质制剂中,该制剂经 T 细胞特异性抗 CD7 和抗 CD3 结合物进行功能化修饰。在体外,我们评估了 T 细胞特异性、mcDNA 与 mRNA 的转染效率、转座子介导的 CAR 整合以及所得 CAR-T 细胞的功能。在体内,我们在外周血单个核细胞及 CD34+ 干细胞人源化小鼠 B 细胞白血病异种移植模型中评估了疗效。
在体外实验中,NCtx在原发性T细胞中展现出对mcDNA和mRNA的高特异性和转染效率。转座酶mRNA促进了CAR基因的基因组整合,从而产生了稳定的CAR-T细胞,这些细胞表现出抗原特异性的细胞毒性和细胞因子释放。在体内实验中,单次静脉注射NCtx诱导了强烈的CAR-T细胞生成,从而在两个不同的异种移植模型中实现了有效的肿瘤控制并显著提高了生存率。
BACKGROUND: Ex vivo chimeric antigen receptor (CAR)-T therapies have revolutionized cancer treatment. However, treatment accessibility is hindered by high costs, long manufacturing times, and the need for specialized centers and inpatient care. Strategies to generate CAR-T cells in vivo have emerged as a promising alternative that could bypass CAR-T manufacturing bottlenecks. Most current in vivo CAR-T approaches, while demonstrating encouraging preclinical efficacy, rely on transient messenger RNA (mRNA) delivery or viral vectors which both have limitations in terms of efficiency, durability, and scalability. To address these challenges, we developed a novel DNA-based targeted lipid nanoparticle (LNP) which we termed NCtx. METHODS: Minicircle DNA (mcDNA) encoding a CAR construct and SB100x transposase mRNA were encapsulated within a novel lipid formulation which was functionalized with T cell-specific anti-CD7 and anti-CD3 binders. In vitro, we evaluated T cell specificity, mcDNA and mRNA transfection efficiency, transposon-mediated CAR integration and functionality of the resulting CAR-T cells. In vivo efficacy was assessed in peripheral blood mononuclear cell and CD34 + stem cell humanized murine xenograft models of B cell leukemia. RESULTS: In vitro, NCtx displayed high specificity and transfection efficiency with both mcDNA and mRNA in primary T cells. Transposase mRNA facilitated genomic integration of the CAR gene, leading to the generation of stable CAR-T cells that exhibited antigen-specific cytotoxicity and cytokine release. In vivo, a single intravenous dose of NCtx induced robust CAR-T cell generation resulting in effective tumor control and significantly improved survival in two distinct xenograft models. CONCLUSIONS: Our findings demonstrate for the first time that targeted LNPs can be employed for efficient DNA delivery to T cells in vitro and in vivo. We show that when combined with transposase technology, this LNP-based system can efficiently generate stable CAR-T cells directly in vivo, inducing potent and durable antitumor responses. NCtx represents a novel non-viral gene therapy vector for in vivo CAR-T therapy, offering a scalable and potentially more accessible alternative to traditional approaches in CAR-T cell generation.
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