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:PI3Kδ/γ inhibition promotes human CART cell epigenetic and metabolic reprogramming to enhance antitumor cytotoxicity.
PI3Kδ/γ inhibition promotes human CART cell epigenetic and metabolic reprogramming to enhance antitumor cytotoxicity.
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目前使用CAR-T(CAR-T)细胞治疗血液系统恶性肿瘤的局限性包括体内扩增和持久性有限,这会导致癌症复发。慢性淋巴细胞白血病(CLL)患者的T细胞为终末分化T细胞,具有耗竭表型,接受自体CAR-T 治疗后完全缓解率较低。由于PI3K抑制剂治疗与T细胞介导的自身免疫的发生相关,我们研究了在制备来自CLL患者的CAR-T 细胞过程中抑制PI3Kδ和PI3Kγ亚型的效果。双重PI3Kδ/γ抑制使CD4/CD8比值正常化,并使CD8+ T-干细胞记忆、初始和中央记忆T细胞数量最大化,同时TIM-3耗竭标志物表达呈剂量依赖性降低。
使用duvelisib制备的CAR-T 细胞(Duv-CART细胞)由于CD8+ CAR-T 细胞频率增加,对CD19+ CLL靶细胞的体外细胞毒性显著增强。Duv-CART细胞的线粒体融合蛋白MFN2表达增加,并伴有线粒体相对含量增加。Duv-CART细胞表现出SIRT1和TCF1/7表达增加,这与Duv-CART细胞向干细胞样特性的表观遗传重编程相关。在转移至植入人CLL细胞系的NOG小鼠后,表达CD28或41BB共刺激结构域的Duv-CART细胞均表现出CD8+ CAR-T 细胞体内扩增显著增加、CLL清除更快以及持久性更长。与常规制备的CAR-T 细胞相比,Duv-CART细胞显著提高了荷CLL小鼠的生存率。
总之,在制备过程中将CAR-T 暴露于PI3Kδ/γ抑制剂,可富集具有干细胞样特性的CD8+ CAR-T 细胞,并增强体内清除CLL的疗效。
Current limitations in using chimeric antigen receptor T(CART) cells to treat patients with hematological cancers include limited expansion and persistence in vivo that contribute to cancer relapse. Patients with chronic lymphocytic leukemia (CLL) have terminally differentiated T cells with an exhausted phenotype and experience low complete response rates after autologous CART therapy. Because PI3K inhibitor therapy is associated with the development of T-cell-mediated autoimmunity, we studied the effects of inhibiting the PI3Kδ and PI3Kγ isoforms during the manufacture of CART cells prepared from patients with CLL. Dual PI3Kδ/γ inhibition normalized CD4/CD8 ratios and maximized the number of CD8+ T-stem cell memory, naive, and central memory T-cells with dose-dependent decreases in expression of the TIM-3 exhaustion marker. CART cells manufactured with duvelisib (Duv-CART cells) showed significantly increased in vitro cytotoxicity against CD19+ CLL targets caused by increased frequencies of CD8+ CART cells.
Duv-CART cells had increased expression of the mitochondrial fusion protein MFN2, with an associated increase in the relative content of mitochondria. Duv-CART cells exhibited increased SIRT1 and TCF1/7 expression, which correlated with epigenetic reprograming of Duv-CART cells toward stem-like properties. After transfer to NOG mice engrafted with a human CLL cell line, Duv-CART cells expressing either a CD28 or 41BB costimulatory domain demonstrated significantly increased in vivo expansion of CD8+ CART cells, faster elimination of CLL, and longer persistence.
Duv-CART cells significantly enhanced survival of CLL-bearing mice compared with conventionally manufactured CART cells. In summary, exposure of CART to a PI3Kδ/γ inhibitor during manufacturing enriched the CART product for CD8+ CART cells with stem-like qualities and enhanced efficacy in eliminating CLL in vivo.
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