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:CAR-tropic extracellular vesicles carry tumor-associated antigens and modulate CAR T cell functionality.
我们的结果表明,CD19-CAR T细胞长期暴露于CD19+ EVs会以抗原特异性方式介导激活和全身性耗竭,并且这种负面影响伴随着体外细胞毒活性的受损。
肿瘤来源的细胞外囊泡(EVs)是肿瘤微环境中转移和免疫抑制的活跃参与者。至少部分EVs携带肿瘤表面分子,如肿瘤相关抗原(TAAs)和/或检查点抑制剂,并可能潜在地与T细胞或CAR T细胞相互作用。与T细胞接触后,EVs可通过TCR或CAR触发信号传导,改变T细胞的表型和功能,使其重编程以逃避免疫应答。我们假设表面携带TAA的EVs可能会与能够识别并结合相应TAA的CAR T细胞相互作用。EVs与CAR T细胞之间的这种相互作用可能会改变基于CAR T的癌症免疫治疗的结果,因为它应当会影响CAR T细胞。此外,EVs可作为抗肿瘤疫苗的佐剂和抗原组分。在此,我们从B细胞前体白血病细胞系(pre-B ALL)Nalm-6中分离了EVs,并证明CD19+ EVs与CD19-CAR T细胞的识别和结合强烈依赖于CD19抗原的存在。CD19+ EVs诱导CD19-CAR T细胞分泌促炎细胞因子(IL-2和IFN-y),并上调激活相关基因(IFNG、IFNGR1、FASLG、IL2)的转录。在与CD19+ EVs孵育后,CD19-CAR T细胞中肿瘤坏死因子受体超家族(TNFRSF4和TNFRSF9)以及T细胞耗竭标志物(CTLA4、LAG3、TIM3和PDCD1LG2)也上调。根据PD-1、TIGIT、CD57表达升高,将CD19+或PD-L1+ EVs与CD19-CAR T细胞长期共培养导致终末分化和功能性耗竭增加。总之,我们的结果表明,CD19-CAR T细胞长期暴露于CD19+ EVs会以抗原特异性方式介导激活和全身性耗竭,并且这种负面影响伴随着体外细胞毒活性的受损。
Tumor-derived extracellular vesicles (EVs) are active contributors in metastasis and immunosuppression in tumor microenvironment. At least some of the EVs carry tumor surface molecules such as tumor-associated antigens (TAAs) and/or checkpoint inhibitors, and potentially could interact with T cells or CAR T cells. Upon contact with T cells, EVs could alter their phenotype and functions by triggering signaling through TCR or CAR reprogramming them to escape immune response. We hypothesize that EVs that possess TAA on the surface will probably interact with CAR T cells which can recognize and bind corresponding TAA. This interaction between EVs and CAR T cells may change the outcome of CAR T-based cancer immunotherapy since it should affect CAR T cells. Also, EVs could serve as adjuvants and antigenic components of antitumor vaccines. Herein, we isolated EVs from B cell precursor leukemia cell line (pre-B ALL) Nalm-6 and demonstrated that recognition and binding of CD19 + EVs with CD19-CAR T cells strongly depends on the presence of CD19 antigen. CD19 + EVs induce secretion of pro-inflammatory cytokines (IL-2 and IFN-y) and upregulated transcription of activation-related genes (IFNG, IFNGR1, FASLG, IL2) in CD19-CAR T cells. Tumor necrosis factor receptor superfamily (TNFRSF4 and TNFRSF9) and T-cell exhaustion markers (CTLA4, LAG3, TIM3 and PDCD1LG2) were also upregulated in CD19-CAR T cells after incubation with CD19 + EVs. Long-term cultivation of CD19 + or PD-L1 + EVs with CD19-CAR T cells led to increased terminal differentiation and functional exhaustion according to elevated expression of PD-1, TIGIT, CD57. In summary, our results suggest that chronic exposure of CD19-CAR T cells to CD19 + EVs mediates activation and systemic exhaustion in antigen-specific manner, and this negative effect is accompanied by the impaired cytotoxic activity in vitro.
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