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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Epitope spreading driven by the joint action of CART cells and pharmacological STING stimulation counteracts tumor escape via antigen-loss variants.
Epitope spreading driven by the joint action of CART cells and pharmacological STING stimulation counteracts tumor escape via antigen-loss variants.
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我们的数据显示,2'3'-cGAMP 是一种适合与 CAR-T 细胞疗法联合使用的佐剂,能够诱导内源性 T 细胞反应,从而防止 Ag 丢失肿瘤变体的生长。
靶抗原(Ag)丢失已成为CAR-T(CAR-T)细胞治疗后复发的主要原因。我们推测,CAR-T 细胞联合免疫调节剂,如干扰素基因刺激因子配体(STING-L)2'3'-环GMP-AMP(2'3'-cGAMP),通过CAR-T 细胞导致的肿瘤减负和Ag释放,可能促进针对次要肿瘤Ag的内源性反应激活,从而对抗这种肿瘤逃逸机制。
携带表达前列腺特异性膜抗原或gp75的B16衍生肿瘤的小鼠,接受了同源CAR-T 细胞的全身治疗,随后进行瘤内注射2'3'-cGAMP。我们研究了CAR-T 细胞对靶抗原的免疫编辑,以及CAR-T/STING-L联合方案对STING-L处理肿瘤和STING-L未处理肿瘤的控制效果及对内源性抗肿瘤T细胞应答的影响。分析了Batf3依赖性树突状细胞(DC)、干扰素基因刺激因子(STING)信号通路和穿孔素(Perf)介导的杀伤在联合方案疗效中的作用。
我们使用免疫健全的实体瘤模型表明,CAR-T 细胞导致出现丢失靶抗原的肿瘤细胞,重现了 CAR-T 细胞治疗的癌症免疫编辑效应。在此背景下,CAR-T/STING-L 联合治疗,而非 CAR-T 细胞或 STING-L 单药治疗,抑制了肿瘤进展并提高了总生存期,对远端未接受 STING-L 治疗的肿瘤表现出远隔效应。有趣的是,通过主要组织相容性复合体-I-四聚体染色测定,针对非嵌合抗原受体靶向抗原的继发性免疫反应(表位扩展)被促进,其强度与联合治疗的疗效相关。这与宿主 T 细胞的寡克隆扩增一致,正如深入的 T 细胞受体库分析所揭示的。此外,仅在联合治疗组中,内源性 T 细胞的激活转化为全身性抗肿瘤反应。重要的是,联合治疗的表位扩展和抗肿瘤效应完全依赖于宿主 STING 信号和 Batf3 依赖性 DC,并部分依赖于 CAR-T 细胞的 Perf 释放。有趣的是,CAR-T/STING-L 治疗的疗效还依赖于 CAR-T 细胞中的 STING 信号。
Target antigen (Ag) loss has emerged as a major cause of relapse after chimeric antigen receptor T (CART)-cell therapy. We reasoned that the combination of CART cells, with the consequent tumor debulking and release of Ags, together with an immunomodulatory agent, such as the stimulator of interferon gene ligand (STING-L) 2'3'-cyclic GMP-AMP (2'3'-cGAMP), may facilitate the activation of an endogenous response to secondary tumor Ags able to counteract this tumor escape mechanism.
Mice bearing B16-derived tumors expressing prostate-specific membrane Ag or gp75 were treated systemically with cognate CART cells followed by intratumoral injections of 2'3'-cGAMP. We studied the target Ag inmunoediting by CART cells and the effect of the CART/STING-L combination on the control of STING-L-treated and STING-L-non-treated tumors and on the endogenous antitumor T-cell response. The role of Batf3-dependent dendritic cells (DCs), stimulator of interferon gene (STING) signaling and perforin (Perf)-mediated killing in the efficacy of the combination were analyzed.
Using an immune-competent solid tumor model, we showed that CART cells led to the emergence of tumor cells that lose the target Ag, recreating the cancer immunoediting effect of CART-cell therapy. In this setting, the CART/STING-L combination, but not the monotherapy with CART cells or STING-L, restrained tumor progression and enhanced overall survival, showing abscopal effects on distal STING-L-non-treated tumors. Interestingly, a secondary immune response against non-chimeric antigen receptor-targeted Ags (epitope spreading), as determined by major histocompatibility complex-I-tetramer staining, was fostered and its intensity correlated with the efficacy of the combination. This was consistent with the oligoclonal expansion of host T cells, as revealed by in-depth T-cell receptor repertoire analysis. Moreover, only in the combination group did the activation of endogenous T cells translate into a systemic antitumor response. Importantly, the epitope spreading and the antitumor effects of the combination were fully dependent on host STING signaling and Batf3-dependent DCs, and were partially dependent on Perf release by CART cells. Interestingly, the efficacy of the CART/STING-L treatment also depended on STING signaling in CART cells.
Our data show that 2'3'-cGAMP is a suitable adjuvant to combine with CART-cell therapy, allowing the induction of an endogenous T-cell response that prevents the outgrowth of Ag-loss tumor variants.
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