癌细胞
生物
癌症研究
细胞毒性T细胞
细胞
免疫系统
重编程
T细胞
嵌合抗原受体
癌症
化学
免疫学
生物化学
体外
遗传学
作者
Quanjun Yang,Xinting Zhu,Ping Huang,Chunyan Li,Leng Han,Yonglong Han,Run Gan,Xin Bo,Yixing Tu,Shumin Zhou,Ting Yuan,Juan Hao,Chunqiong Li,Li Zhang,Lei Shi,Cheng Guo
标识
DOI:10.1016/j.ymthe.2024.05.017
摘要
Altered branched chain amino acids (BCAAs), including leucine, isoleucine, and valine, are frequently observed in patients with advanced cancer. We evaluated the efficacy of chimeric antigen receptor (CAR) T cell-mediated cancer cell lysis potential in the immune microenvironment of BCAA supplementation and deletion. BCAA supplementation increased cancer cell killing percentage, while accelerating BCAA catabolism and decreasing BCAA transporter decreased cancer cell lysis efficacy. We thus designed BCKDK engineering CAR T cells for the reprogramming of BCAA metabolism in the tumor microenvironment based on the genotype and phenotype modification. BCKDK overexpression (OE) in CAR-T cells significantly improved cancer cell lysis, while BCKDK knockout (KO) resulted in inferior lysis potential. In an in vivo experiment, BCKDK-OE CAR-T cell treatment significantly prolonged the survival of mice bearing NALM6-GL cancer cells, with the differentiation of central memory cells and an increasing proportion of CAR-T cells in the peripheral circulation. BCKDK-KO CAR-T cell treatment resulted in shorter survival and a decreasing percentage of CAR-T cells in the peripheral circulation. In conclusion, BCKDK-engineered CAR-T cells exert a distinct phenotype for superior anticancer efficiency.
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