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:Precision medicine with car cells in acute myeloid leukemia: where are we?
Precision medicine with car cells in acute myeloid leukemia: where are we?
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嵌合抗原受体(CAR)疗法与精准医学的整合有望影响急性髓系白血病(AML)的治疗格局。基因突变在CAR-T 和CAR-NK细胞的疗效中发挥作用,影响其决定这些细胞有效性的关键作用,以及其增殖、持续性、耐药性和安全性。本综述探讨FLT3、DNMT3A、NPM1、TP53、TET2、涉及RUNX1和KMT2A的基因融合以及其他关键基因的突变如何调节基于CAR的免疫疗法,同时突出易感性和耐药机制。近期研究结果表明,DNMT3A和NPM1等基因的突变可增强抗原表达,从而改善CAR靶向。相比之下,TP53突变驱动免疫逃逸和治疗耐药。理解这些突变特异性效应对于为个体患者定制CAR疗法、在优化疗效的同时尽量减少毒性至关重要。通过利用基因组分析和个性化工程方法,CAR疗法可以得到改进,以克服耐药并提高AML治疗的精准性。未来研究应侧重于整合多组学数据,以开发适应突变的CAR策略,确保患者获得最有效和个性化的免疫治疗。
The integration of chimeric antigen receptor (CAR) therapies with precision medicine holds potential to impact the treatment landscape for acute myeloid leukemia (AML). Genetic mutations play a role in the efficacy of CAR-T and CAR-NK cells, influencing their crucial role in determining the effectiveness of these cells, as well as their proliferation, persistence, resistance, and safety. This review examines how mutations in FLT3, DNMT3A, NPM1, TP53, TET2, gene fusions involving RUNX1 and KMT2A and other key genes modulate CAR-based immunotherapies, highlighting both vulnerabilities and resistance mechanisms.
Recent findings demonstrate that mutations in genes such as DNMT3A and NPM1 enhance antigen expression, thereby improving CAR targeting. In contrast, mutations in TP53 drive immune escape and resistance to therapy. Understanding these mutation-specific effects is essential for tailoring CAR therapies to individual patients, optimizing efficacy while minimizing toxicity.
By leveraging genomic profiling and personalized engineering approaches, CAR therapies can be refined to overcome resistance and enhance precision in AML treatment. Future research should focus on integrating multiomic data to develop mutation-adapted CAR strategies, ensuring that patients receive the most effective and personalized immunotherapy.
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