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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Choosing the Right Tool for Genetic Engineering: Clinical Lessons from Chimeric Antigen Receptor-T Cells.
Choosing the Right Tool for Genetic Engineering: Clinical Lessons from Chimeric Antigen Receptor-T Cells.
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利用编码嵌合抗原受体的基因对T细胞进行修饰(CAR-T 细胞)在治疗B细胞恶性肿瘤方面已展现出巨大前景。将CAR-T 细胞疗法成功转化应用于其他肿瘤类型,包括实体瘤,是下一个重大挑战。随着该领域从第二代向包含多种遗传修饰的下一代CAR-T 细胞推进,更复杂的方法和工具正被开发用于工程化T细胞。病毒载体,尤其是逆转录病毒和慢病毒,由于其高转导效率,传统上被用于CAR-T 细胞工程。
然而,有限的基因载荷、在良好生产规范(GMP)条件下高昂的生产成本以及高监管要求,是广泛临床转化的障碍。为克服这些局限性,不同的非病毒方法正在临床前或临床层面进行探索,包括转座子/转座酶系统、mRNA电穿孔和非整合型DNA纳米载体。基因组编辑工具能够实现特定基因的高效敲除和/或将CAR和/或其他转基因定点整合到基因组中,这些工具也正在被评估用于CAR-T 细胞工程。在本综述中,我们讨论了用于生成CAR-T 细胞的病毒和非病毒载体的发展,重点关注其优势和局限性。
我们还讨论了使用不同基因工程工具的临床试验中所汲取的经验教训,特别关注安全性和有效性。
T cell modification with genes that encode chimeric antigen receptors (CAR-T cells) has shown tremendous promise for the treatment of B cell malignancies. The successful translation of CAR-T cell therapy to other tumor types, including solid tumors, is the next big challenge.
As the field advances from second- to next-generation CAR-T cells comprising multiple genetic modifications, more sophisticated methods and tools to engineer T cells are being developed. Viral vectors, especially -retroviruses and lentiviruses, are traditionally used for CAR-T cell engineering due to their high transduction efficiency.
However, limited genetic cargo, high costs of production under good manufacturing practice (GMP) conditions, and the high regulatory demands are obstacles for widespread clinical translation. To overcome these limitations, different nonviral approaches are being explored at a preclinical or clinical level, including transposon/transposase systems and mRNA electroporation and nonintegrating DNA nanovectors.
Genome editing tools that allow efficient knockout of particular genes and/or site-directed integration of the CAR and/or other transgenes into the genome are also being evaluated for CAR-T cell engineering. In this review, we discuss the development of viral and nonviral vectors used to generate CAR-T cells, focusing on their advantages and limitations.
We also discuss the lessons learned from clinical trials using the different genetic engineering tools, with special focus on safety and efficacy.
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