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:Somatic TP53 Mutations Drive T and NK Cell Dysfunction in AML and Can be Rescued by Reactivating Wild Type p53.
Somatic TP53 Mutations Drive T and NK Cell Dysfunction in AML and Can be Rescued by Reactivating Wild Type p53.
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免疫疗法的进展显著改善了淋巴瘤和骨髓瘤治疗结局,但TP53突变急性髓系白血病(AML)患者仍面临挑战。尽管对白血病原始细胞中的TP53突变已有充分表征,其在免疫细胞中的发生率及影响仍鲜为人知。
本研究结合单细胞多组学和综合表型分析,在AML患者T细胞和NK细胞中发现TP53突变。值得注意的是,携带单等位基因TP53突变的T细胞增殖标志物升高,但细胞毒能力下降,PD-1、TIGIT和TIM-3等抑制性受体表达增加。为研究p53突变免疫细胞的功能后果,研究者构建了携带临床相关p53突变(Y220C和R175H)的CAR-T 细胞。这些突变型p53 CAR-T 细胞呈现明显耗竭表型,细胞因子分泌减少,在体外和患者来源异种移植(PDX)小鼠模型中肿瘤细胞裂解能力受损。关键的是,使用靶向小分子再激活剂将突变p53恢复为野生型构象,可恢复CAR-T 功能、降低耗竭标志物表达,并延长AML PDX小鼠生存期,揭示T细胞TP53突变与治疗耐药之间的直接机制联系。
本研究确立TP53突变T细胞是AML免疫逃逸此前未被认识的驱动因素,凸显免疫细胞基因分型及p53再激活策略的重要性。突变p53可被选择性纠正以恢复T细胞功能,为TP53突变AML免疫治疗开辟了新途径。
Therapeutic advances in immunotherapy have significantly improved outcomes in lymphomas and myelomas, yet patients with TP53-mutant acute myeloid leukemia (AML) continue to be challenged. While TP53 mutations in leukemic blasts have been extensively characterized, their incidence and impact within immune cells remain largely unexplored.
Here, using single-cell multi-omics and integrated phenotypic analyses, we identify TP53 mutations in T and NK cells from AML patients.
Notably, T cells harboring monoallelic TP53 mutations exhibited elevated proliferative markers yet showed reduced cytotoxic capacity and increased expression of inhibitory receptors, including PD-1, TIGIT, and TIM-3. To investigate the functional consequences of p53-mutant immune cells, we engineered CAR-T cells carrying clinically relevant p53 mutations (Y220C and R175H).
These mutant p53 CAR-T cells exhibited a pronounced exhaustion phenotype, with diminished cytokine secretion and impaired tumor cytolysis both in vitro and in PDX mouse models. Crucially, restoring mutant p53 to a wild-type conformation using a targeted small-molecule reactivator rescued CAR-T functionality, reduced exhaustion marker expression, and prolonged survival in AML PDX mouse models, revealing a direct mechanistic link between TP53 mutations in T cells and therapeutic resistance.
Our findings establish TP53-mutant T cells as a previously unrecognized driver of immune escape in AML, highlighting the importance of immune-cell genotyping and p53 reactivation strategies. By demonstrating that mutant p53 can be selectively corrected to restore T-cell function, this study opens new avenues for immunotherapeutic intervention in TP53-mutant AML.
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