决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Targeting endosomal trafficking-mediated antigen escape to resensitize myeloma to CAR-T therapy.
Targeting endosomal trafficking-mediated antigen escape to resensitize myeloma to CAR-T therapy.
我们的研究确立了 RRM2 驱动的转运作为 CAR-T 疗法中抗原逃逸的一种新型且可靶向的机制。通过重新利用奥沙米特恢复 MICA/B 表面呈递,我们提供了一种具有临床转化价值的策略,可特异性增强 NKG2D CAR-T 细胞在多发性骨髓瘤中的疗效,并可能增强 CAR-T 针对多种抗原的疗效。这项工作凸显了调控细胞内转运以克服细胞免疫治疗耐药的潜在治疗价值。
抗原逃逸是嵌合抗原受体(CAR)-T治疗后复发的主要原因之一,尤其是在多发性骨髓瘤中。在理解触发抗原丢失的肿瘤内在通路方面仍存在关键空白,而这一认识对于制定使肿瘤对免疫攻击重新敏感的策略至关重要。我们鉴定出一种此前未被表征的翻译后机制,其以代谢酶核糖核苷酸还原酶亚基M2(RRM2)为核心,称为转运介导的抗原逃逸,以提高细胞治疗疗效。
我们结合单细胞RNA测序分析与多重免疫荧光,鉴定出一个具有临床相关性、表现出低MICA/B丰度的RRM2+骨髓瘤亚群。功能验证包括通过实时成像监测的诱导多能干细胞来源的骨髓瘤类器官,以及播散性异种移植模型,以评估亚毒性osalmid处理对NKG2D CAR-T细胞活性的影响。采用免疫共沉淀、鸟苷5'-三磷酸pull-down和共聚焦显微镜来研究潜在的转运机制。
单细胞分析揭示了一个临床上常见的 RRM2+ 骨髓瘤亚群,其 MICA/B 表面丰度显著降低,从而确立了肿瘤内在异质性作为 NKG2D CAR-T 耐药的根本原因之一。我们进一步证明了 RRM2 作为转运调节因子的非经典作用,它通过激活 RAB7A 主动将 MICA/B 转运至溶酶体降解,同时阻断 RAB11 介导的循环再利用。使用亚毒性剂量的 osalmid(一种临床已获批药物,此前被鉴定为 RRM2 抑制剂)进行治疗干预,成功逆转了这一转运缺陷,恢复了 MICA/B 的膜表达,并与 NKG2D CAR-T 细胞协同增强其扩增、多功能细胞因子分泌及干样特性。该联合策略通过维持 T 细胞适应性同时减少耗竭,在体内实现了持久的肿瘤缓解,为临床抗原逃逸提供了一种可立即实施的解决方案。
BACKGROUND: Antigen escape is one of the leading causes of relapse following chimeric antigen receptor (CAR)-T therapy, particularly in multiple myeloma. A critical gap persists in understanding the tumor-intrinsic pathways that trigger antigen loss, insight essential for devising strategies to resensitize tumors to immune attack. We identify a previously uncharacterized post-translational mechanism centered on the metabolic enzyme ribonucleotide reductase subunit M2 (RRM2), termed trafficking-mediated antigen escape, to enhance cellular therapy efficacy. METHODS: We combined single-cell RNA sequencing analysis with multiplex immunofluorescence to identify a clinically relevant RRM2 + myeloma subpopulation exhibiting low MICA/B abundance. Functional validation included induced pluripotent stem cell-derived myeloma organoids monitored by real-time imaging and disseminated xenograft models to assess the effect of subtoxic osalmid treatment on NKG2D CAR-T cell activity. Co-immunoprecipitation, guanosine 5'-triphosphate pulldown, and confocal microscopy were used to investigate the underlying trafficking mechanism. RESULTS: Single-cell analysis uncovered a clinically prevalent RRM2 + myeloma subpopulation with profoundly reduced MICA/B surface abundance, which established tumor-intrinsic heterogeneity as one of fundamental causes of NKG2D CAR-T resistance. We further demonstrated RRM2's non-canonical role as a trafficking regulator that actively shuttles MICA/B toward lysosomal degradation via RAB7A activation while simultaneously blocking RAB11-mediated recycling. Therapeutic intervention using subtoxic osalmid, a clinically approved drug and previously characterized as an RRM2 inhibitor, successfully reversed this trafficking defect, restored MICA/B membrane presentation and synergized with NKG2D CAR-T cells to enhance their expansion, polyfunctional cytokine secretion, and stem-like properties. This combination strategy achieved durable tumor remission in vivo by sustaining T-cell fitness while reducing exhaustion, offering an immediately actionable solution to clinical antigen escape. CONCLUSIONS: Our study establishes RRM2-driven trafficking as a novel and targetable mechanism of antigen escape in CAR-T therapy. By repurposing osalmid to restore MICA/B surface presentation, we provide a clinically translatable strategy that specifically potentiates NKG2D CAR-T cell efficacy in multiple myeloma and could potentially enhance the efficacy of CAR-T across diverse antigens. This work highlights the therapeutic potential of modulating intracellular trafficking to overcome resistance in cellular immunotherapy.
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