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:Recent advances in molecular mechanisms to improve the efficacy of CAR-T cell therapy for viral diseases, cancer, and autoimmune diseases.
嵌合抗原受体(CAR)-T细胞疗法已经改变了血液系统恶性肿瘤的治疗,但其在实体瘤、慢性病毒感染和自身免疫性疾病中的更广泛应用仍受到抗原异质性、免疫抑制性组织微环境、T细胞耗竭、持久性有限以及治疗相关毒性的制约。
嵌合抗原受体(CAR)-T 细胞疗法已改变血液系统恶性肿瘤的治疗格局,但其在实体瘤、慢性病毒感染和自身免疫性疾病中的更广泛应用仍受到抗原异质性、免疫抑制性组织微环境、T 细胞耗竭、持久性有限以及治疗相关毒性的制约。这些挑战促使该领域从优化单个受体构建体转向将 CAR-T 细胞工程化为能够适应多种疾病背景的可编程免疫系统。本综述综合了在常规受体设计之外增强 CAR-T 细胞功能的分子工程策略的最新进展。我们讨论了受体工程、基因组编辑、转录与表观遗传调控、代谢重编程、合成基因回路以及安全性控制平台如何共同重塑 CAR-T 细胞的命运、持久性和治疗效果。这些工程策略并非独立发挥作用,而是日益被整合起来,以生成能够适应多种疾病环境(包括癌症、自身免疫性疾病和慢性病毒感染)的情境特异性细胞疗法。我们还强调了其转化为临床实践的潜力或临床转化,并讨论了临床实施相关的主要挑战。下一代 CAR-T 疗法将日益整合分子工程策略,或将依赖分子工程策略来整合抗原识别、细胞适应性、免疫调节和长寿性,而非仅仅最大化细胞毒性活性。近期可编程细胞工程取得的进展,结合严格的临床评估以及在肿瘤学以外其他疾病治疗中的可扩展生产技术或可扩展生产平台,将促进更安全、更持久且广泛适用的细胞疗法的开发。
Chimeric antigen receptor (CAR)-T cell therapy has transformed the treatment of hematological malignancies, yet its broader application to solid tumors, chronic viral infections, and autoimmune diseases remains constrained by antigen heterogeneity, immunosuppressive tissue microenvironments, T-cell exhaustion, limited persistence, and treatment-associated toxicities. These challenges have shifted the field from optimizing individual receptor constructs toward engineering CAR-T cells as programmable immune systems capable of adapting to diverse disease contexts. This review synthesizes recent advances in molecular engineering strategies that enhance CAR-T cell function beyond conventional receptor design. We discuss how receptor engineering, genome editing, transcriptional and epigenetic regulation, metabolic reprogramming, synthetic gene circuits, and safety-control platforms collectively reshape CAR-T cell fate, persistence, and therapeutic efficacy. Rather than functioning independently, these engineering strategies are increasingly integrated to generate context-specific cellular therapies capable of adapting to diverse disease environments, including cancer, autoimmune diseases, and chronic viral infections. We also highlight the potential for translation into clinical practice or clinical translation and discuss the major challenges associated with clinical implementation. Next-generation CAR-T therapies will increasingly integrate molecular engineering strategies or will rely on molecular engineering strategies to integrate antigen recognition, cellular fitness, immune regulation, and longevity rather than simply maximizing cytotoxic activity. Recent advances in programmable cellular engineering coupled with rigorous clinical evaluation as well as scalable manufacturing technologies or scalable manufacturing platforms in the treatment of other diseases beyond oncology will facilitate the development of safer, more durable, and broadly applicable cellular therapies.
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