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:AMPK agonism optimizes the in vivo activation and antileukemic efficacy of chimeric antigen receptor T cells.
AMPK agonism optimizes the in vivo activation and antileukemic efficacy of chimeric antigen receptor T cells.
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体外扩增是产生足够细胞数量用于体内输注的必要条件,但持续激活和分化往往会对体内持久性和功能产生负面影响。在此,我们证明,在体外 CAR-T 扩增过程中促进 AMPK 活性可对细胞进行代谢重编程,且不限制 T 细胞产量,提高体内输注后的早期激活,并最终增强抗白血病疗效。重要的是,Compound 991 处理实现了这些结果,而无需进一步修改扩增培养基、改变 CAR-T 构建体或对细胞进行基因改造。总之,这些数据凸显 AMPK 激动作为一种强效且易于转化的方法,可改善过继转移 T 细胞的代谢特征和体内疗效。
嵌合抗原受体 (CAR) T 细胞已取得显著的临床成功。然而,在接受 CAR-T 细胞治疗的白血病患者中,高达 50% 会复发,长期生存者数据表明,CAR-T 细胞持久性是实现长期无复发生存的关键。遗憾的是,体外扩增方案常导致代谢和功能耗竭,从而降低体内疗效。临床前模型已证明,重定向代谢可改善体内 T 细胞功能。在此,我们假设,暴露于靶向 AMP 活化蛋白激酶 (AMPK) 的激动剂可产生具有更强体内功能和白血病清除能力的 CAR-T 细胞。
CAR-T 细胞通过慢病毒转导由健康人供者T细胞生成,随后暴露于Compound 991或二甲基亚砜(DMSO)96小时。在激动剂处理期间及之后,收获T细胞用于代谢和功能评估。为测试体内疗效,将luciferase+NALM6白血病细胞注射至免疫缺陷小鼠,1周后再注射经991扩增的CAR-T 细胞对比经DMSO扩增的CAR-T 细胞。通过辐射成像和总生存期评估白血病负荷和抗白血病疗效。
Compound 991 处理激活了 AMPK,且未限制细胞扩增,并增加了线粒体密度和活性氧的处理能力。在机制上,991 处理模拟了营养饥饿,自噬增加并产生了具有线粒体保护作用的代谢物。重要的是,接受暴露于 991 的 CAR-T 细胞显著改善了体内白血病清除并延长了受者生存期,这可能是由于注射后早期活化增强和 CD4+T 细胞产量增加所致。
Chimeric antigen receptor (CAR) T cells have achieved remarkable clinical success. However, up to 50% of patients with CAR T-cell treated leukemia relapse and long-term survivor data indicate that CAR T cell persistence is key to enforcing extended, relapse-free survival. Unfortunately, ex vivo expansion protocols often drive metabolic and functional exhaustion, reducing in vivo efficacy. Preclinical models have demonstrated that redirecting metabolism can improve in vivo T-cell function. Here, we hypothesized that exposure to an agonist targeting AMP-activated protein kinase (AMPK) would create CAR T cells capable of increased in vivo function and enhanced leukemia clearance.
CAR T cells were generated from healthy human donor T cells via lentiviral transduction, followed by exposure to either Compound 991 or dimethyl sulfoxide (DMSO) for 96 hours. During and after agonist treatment, T cells were harvested for metabolic and functional assessments. To test in vivo efficacy, immunodeficient mice were injected with luciferase+NALM6 leukemia cells, and 1 week later with 991- versus DMSO-expanded CAR T cells. Leukemia burden and antileukemia efficacy were assessed via radiance imaging and overall survival.
Compound 991 treatment activated AMPK without limiting cellular expansion, and increased both mitochondrial density and handling of reactive oxygen species. Mechanistically, 991 treatment mimicked nutrient starvation, with increased autophagy and generation of mitochondrially protective metabolites. Importantly, receipt of 991-exposed CAR Ts significantly improved in vivo leukemia clearance and prolonged recipient survival, likely as a result of elevated activation and increased CD4+T cell yields at early times post-injection. DISCUSSION: Ex vivo expansion is necessary to generate sufficient cell numbers for in vivo administration, but sustained activation and differentiation often negatively impact in vivo persistence and function. Here, we demonstrate that promoting AMPK activity during in vitro CAR T expansion metabolically reprograms cells without limiting T cell yield, increases early activation following in vivo transfer, and ultimately enhances anti-leukemia efficacy. Importantly, Compound 991 treatment achieves these results without further modifying the expansion media, changing the CAR T construct, or genetically altering the cells. Together, these data highlight AMPK agonism as a potent and readily translatable approach to improve the metabolic profile and in vivo efficacy of adoptively transferred T cells.
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