单细胞追踪揭示黑色素瘤 TIL 治疗过程中肿瘤反应性 T 细胞的可塑性
Single-cell tracking reveals tumor-reactive T cell plasticity during melanoma TIL therapy.
TIL(肿瘤浸润淋巴细胞)过继细胞治疗可在转移性黑色素瘤中诱导持久缓解,然而在体外扩增过程中及回输后,调控肿瘤反应性T细胞命运的克隆和转录动态仍知之甚少。
英文原题:Preclinical model for evaluating human TCRs against chimeric syngeneic tumors.
Preclinical model for evaluating human TCRs against chimeric syngeneic tumors.
我们已开发出一种稳健、简便且成本低廉的临床前策略,用于在完全具备免疫能力的鼠类免疫系统背景下评估人类 TCR,该策略可助力共工程化 TCR-T 细胞及联合治疗的开发并转化至临床。
靶向 HLA-A2 限制性表位 NY-ESO-1 157-165 (A2/NY) 的 TCR 工程化 T 细胞的过继性细胞转移 (ACT) 已在多种癌症中产生重要的临床应答。目前正在采用多种方法来增强 ACT 的肿瘤控制,包括 TCR 亲和力优化和针对抑制性肿瘤微环境 (TME) 的 T 细胞共工程化策略。大多数具有临床意义的 TCR 在免疫缺陷小鼠中进行评估,以便实现人 T 细胞植入,并且不能重现接受治疗患者中与内源性免疫发生的动态相互作用。已有多种人源化小鼠模型被描述,但它们在免疫重建方面存在局限性,并且技术上难以实施。在此,我们开发了一种嵌合同基因肿瘤模型,其中 A2Kb 转基因 C57BL/6 小鼠接种表达作为单链三聚体 (SCT) 的 A2Kb:NY 的 B16,并用表达 A2/NY TCR 的鼠 T 细胞进行 ACT 治疗,这些 TCR 包含融合至小鼠恒定区的人可变区。
我们比较了超生理亲和力的 A2/NY TCR (wtc51m)、经计算设计的处于最佳亲和力范围的 TCR (DM) 以及近乎不结合的 TCR (V49I) 的功能,这些 TCR 分别通过慢病毒转导和逆转录病毒转导在原代人 T 细胞和原代鼠 T 细胞中进行了工程化改造。我们评估了多种策略,以在包括 B16 黑色素瘤在内的小鼠肿瘤细胞系表面稳定表达 A2Kb:NY,最终通过一种 SCT 取得成功,该 SCT 包含人 2m,其通过 GS 连接子同时与 NY 肽和 HLA 复合物中的 1 个组分融合。在荷 B16-A2Kb:NY 肿瘤、未经预处理、免疫健全的 HLA-A*0201/H-2Kb (A2Kb) 转基因 C57BL/6 小鼠中进行了 ACT 研究,并在转移后对肿瘤进行了表征。
我们观察到,与对照TCR-T细胞相比,DM-T细胞的功能显著改善,并且在ACT后表现出更优的浸润和肿瘤控制。此外,利用我们的嵌合同源肿瘤模型,我们能够追踪DM-T细胞转移后TME中动态且有利的变化。
BACKGROUND: The adoptive cell transfer (ACT) of T cell receptor (TCR)-engineered T cells targeting the HLA-A2-restricted epitope NY-ESO-1 157-165 (A2/NY) has yielded important clinical responses against several cancers. A variety of approaches are being taken to augment tumor control by ACT including TCR affinity-optimization and T-cell coengineering strategies to address the suppressive tumor microenvironment (TME). Most TCRs of clinical interest are evaluated in immunocompromised mice to enable human T-cell engraftment and do not recapitulate the dynamic interplay that occurs with endogenous immunity in a treated patient. A variety of humanized mouse models have been described but they have limitations in immune reconstitution and are technically challenging to implement. Here, we have developed a chimeric syngeneic tumor model in which A2Kb transgenic C57BL/6 mice are engrafted with B16 expressing A2Kb:NY as a single chain trimer (SCT) and treated by ACT with murine T cells expressing A2/NY TCRs comprising human variable fused to mouse constant regions. METHODS: We compared the function of a supraphysiological affinity A2/NY TCR (wtc51m), a computationally designed TCR in an optimal affinity range (DM ), and a near non-binding TCR (V49I), engineered in both primary human and murine T cells by lentiviral and retroviral transduction, respectively. We evaluated a variety of strategies to stably express A2Kb:NY on the surface of mouse tumor cell lines including B16 melanoma, ultimately achieving success with an SCT comprising human 2m fused by GS linkers to both the NY-peptide and to 1 of the HLA complex. ACT studies were performed in B16-A2Kb:NY tumor-bearing, non-preconditioned immune-competent HLA-A*0201/H-2Kb (A2Kb) transgenic C57BL/6 mice and tumors characterized post-transfer. RESULTS: We observed significantly improved function of DM -T cells as well as superior infiltration and tumor control upon ACT as compared to the control TCR-T cells. Moreover, with our chimeric syngeneic tumor model, we were able to track dynamic and favorable changes in the TME upon DM -T cell transfer. CONCLUSIONS: We have developed a robust, simple, and inexpensive preclinical strategy for evaluating human TCRs in the context of a fully competent murine immune system that can aid in the development of coengineered TCR-T cells and combination treatments translated to the clinic.
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