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:A Comprehensive Evaluation of CAR-T Cell Gene Therapy, Tracing its Revolutionary Clinical Breakthroughs and Advancements Towards Next-Generation Engineering.
基于这些进展,我们假设CAR-T疗法正经历从单靶点细胞毒性向多功能、可编程框架的范式转变,该框架能够克服耐药性、增强安全性,并实现实体瘤的有效渗透。
背景:CAR-T 细胞基因疗法已从实验性概念发展为部分血液系统恶性肿瘤的标准治愈性治疗。大量临床证据已确立 CAR-T 是复发/难治性 B 细胞恶性肿瘤和多发性骨髓瘤的重要治疗支柱,可带来持久、长期缓解。2025 年,美国 FDA 取消了风险评估与缓解策略(REMS)要求,反映临床对细胞因子释放综合征(CRS)和免疫效应细胞相关神经毒性综合征(ICANS)的管理已有改善。然而,随着这些疗法广泛应用,长期安全性和下一代疗法挑战逐渐显现。 方法:本综述批判性分析 CAR-T 疗法的临床发展轨迹,以及正在重新定义其安全性、可扩展性和转化潜力的生物工程策略。 结果:主要障碍之一是治疗耐药,尤其是由可变剪接和谱系转换驱动的抗原逃逸。长期安全性信号,特别是继发性 T 细胞恶性肿瘤,要求开展严格监测;欧洲药品管理局(EMA)要求患者终身随访即为一例。组织病理学和免疫学屏障也使工程细胞扩增和持续存在受限,包括 T 细胞迁移不足、免疫抑制性肿瘤微环境(TME)及抗原异质性;这些因素历来限制 CAR-T 在实体瘤中的疗效。为克服这些障碍,该领域正在开发 CRISPR 增强型异体平台、分泌细胞因子的装甲型 CAR(TRUCK)和逻辑门控系统,早期临床结果已显示希望。 结论:基于这些进展,作者提出 CAR-T 疗法正从单靶点细胞毒作用转向多功能、可编程框架,以克服耐药、提高安全性并有效渗入实体瘤。
BACKGROUND: CAR-T cell gene therapy has advanced from an experimental concept to a standard curative treatment for selected hematologic malignancies. Substantial clinical evidence has established CAR-T therapy as a cornerstone for relapsed/refractory B-cell malignancies and multiple myeloma, demonstrating durable, long-term remissions. In 2025, the U.S. Food and Drug Administration (FDA) eliminated the Risk Evaluation and Mitigation Strategy (REMS) requirement, reflecting improved clinical management of Cytokine Release Syndrome (CRS) and Immune Effector Cell-Associated Neurotoxicity Syndrome (ICANS). Yet, the widespread adoption of these therapies has unveiled a new landscape of long-term and next-generation challenges. METHODS: This review critically analyzes CAR-T therapy's clinical trajectory and the bioengineering strategies redefining its safety, scalability, and translational potential. RESULTS: A major hurdle is therapeutic resistance driven by antigen escape, notably through alternative splicing and lineage switching. The emergence of long-term safety signals, specifically secondary T-cell malignancies, has necessitated rigorous surveillance, exemplified by the European Medicines Agency's (EMA) mandate for lifelong patient monitoring. The therapeutic landscape is further complicated by histopathological and immunological barriers limiting the expansion and persistence of engineered cells. These include deficient T-cell trafficking, an immunosuppressive tumor microenvironment (TME), and antigen heterogeneity, which have historically constrained efficacy in solid tumors. To address these hurdles, the field is leveraging CRISPR-enhanced allogeneic platforms, cytokine-secreting armored CARs (TRUCKs), and logic-gated systems showing early clinical promise. CONCLUSION: Building on these developments, we hypothesize that CAR-T therapy is undergoing a paradigm shift from single-target cytotoxicity toward a multi-functional, programmable framework capable of overcoming resistance, enhancing safety, and enabling effective penetration of solid tumors.
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