CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:In vivo immune cell engineering from bench to clinical reality.
In vivo immune cell engineering from bench to clinical reality.
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以CAR-T 细胞为代表的自体免疫细胞疗法已改变血液系统恶性肿瘤的治疗格局。然而,其更广泛的临床应用受到复杂的体外制造、高成本以及安全性问题的限制。体内免疫细胞工程作为一种替代策略应运而生,该策略将遗传指令直接递送至免疫细胞,从而在体内生成或调控治疗性免疫细胞,并减少对个体化体外操作的依赖。这些进展凸显了对这一新兴领域进行系统评估的必要性。
因此,本综述系统总结了体内免疫细胞工程的机制原理和递送策略,重点聚焦于体内 CAR-T 细胞生成以及其他免疫细胞的工程化改造。随后,我们讨论了主要的病毒和非病毒递送平台,并阐明这些平台如何影响货物递送、细胞特异性和功能性免疫细胞编程。
我们进一步讨论了在癌症、自身免疫性疾病和退行性疾病领域的最新临床前及新兴临床进展,同时审视了关键的转化挑战,包括递送特异性、脱靶效应、可控性、持久性和生产标准化。
总体而言,尽管体内免疫细胞工程领域发展迅速,但其临床成功将取决于递送精准度、治疗疗效、安全性和可控免疫细胞编程方面的协同改进。
Adoptive immune cell therapies, exemplified by chimeric antigen receptor T cells, have transformed the treatment of hematological malignancies.
However, their broader clinical application is limited by complex ex vivo manufacturing, high cost, and safety concerns. In vivo immune cell engineering has emerged as an alternative strategy that delivers genetic instructions directly to immune cells, thereby generating or modulating therapeutic immune cells within the body and reducing the reliance on individualized in vitro operations. These advances underscore the need for a systematic evaluation of this emerging field.
Therefore, this review systematically summarizes the mechanistic principles and delivery strategies underlying in vivo immune cell engineering, with an emphasis on in vivo CAR-T cell generation and the engineering of other immune cells.
We then discuss major viral and non-viral delivery platforms and clarify how these platforms influence cargo delivery, cell specificity, and functional immune-cell programming.
We further discuss recent preclinical and emerging clinical advances across cancer, autoimmune diseases, and degenerative diseases, while examining key translational challenges, including delivery specificity, off-target effects, controllability, persistence, and manufacturing standardization.
Overall, although the field of in vivo immune cell engineering is advancing rapidly, its clinical success will depend on coordinated improvements in delivery precision, therapeutic efficacy, safety, and controllable immune-cell programming.
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