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:Synthetic NKG2D receptor (SNR) armored CAR-T cells overcome antigen heterogeneity of solid tumor.
SNR CAR-T细胞方法解决了肿瘤抗原异质性和抑制性肿瘤微环境的问题,为实体瘤提供了一种有前景的治疗策略,并为其未来的临床应用铺平了道路。
CAR-T 细胞疗法在血液系统恶性肿瘤中已展现出显著成功;然而,由于肿瘤抗原异质性,其对实体瘤的有效性仍然有限。NKG2DLs,包括 MICA/B 和 ULBP 家族,是应激诱导的分子,在肿瘤细胞表面及肿瘤微环境组分中频繁上调,为免疫治疗提供了有吸引力的靶点。为了将靶向能力拓展至传统 Claudin18.2 导向的 CAR-T 细胞之外,我们设计了一种合成 NKG2D 受体(SNR)。该 SNR 由 NKG2D 的胞外域与 DAP10 和 DAP12 的胞内信号结构域融合而成,能够有效靶向 NKG2D 配体(NKG2DLs)。
通过免疫组化在胃癌组织芯片上检测NKG2DLs和CLDN18.2的表达。我们通过2A自剪切肽将CLDN18.2 CAR与SNR连接,设计了SNR CAR-T细胞。我们利用体外实验、患者来源异种移植(PDX)模型和鼠同基因模型评估了其细胞毒性、肿瘤浸润、持久性和抗肿瘤疗效。此外,还进行了转录组分析和流式细胞术以评估耗竭和记忆标志物。
SNR CAR-T细胞对CLDN18.2异质性表达的肿瘤细胞表现出增强的细胞毒性,在体外有效裂解CLDN18.2阳性和NKG2DL阳性的肿瘤细胞。在PDX和小鼠模型中,与常规CAR-T细胞相比,SNR CAR-T细胞表现出更优的抗肿瘤疗效,导致显著的肿瘤消退和CAR-T扩增。此外,SNR CAR-T细胞显示耗竭标志物表达降低,记忆相关标志物表达增加。观察到肿瘤微环境中肿瘤浸润、增殖和细胞毒性增强,以及髓源性抑制细胞(MDSCs)和肿瘤新生血管减少。重要的是,SNR CAR-T细胞治疗耐受性良好,所有接受治疗的动物均未观察到显著毒性。
BACKGROUND: CAR-T cell therapy has demonstrated remarkable success in hematologic malignancies; however, its effectiveness against solid tumors remains limited due to tumor antigen heterogeneity. NKG2DLs, including MICA/B and the ULBP family, are stress-induced molecules frequently upregulated on the surface of tumor cells and components of the tumor microenvironment, providing attractive targets for immunotherapy. To broaden the targeting capability beyond conventional Claudin18.2-directed CAR-T cells, we engineered a Synthetic NKG2D Receptor (SNR). The SNR comprises the extracellular domain of NKG2D fused with the intracellular signaling domains of DAP10 and DAP12, enabling effective targeting of NKG2D ligands (NKG2DLs). METHODS: Expression of NKG2DLs and CLDN18.2 were detected by immunohistochemistry on a gastric cancer tissue microarray. We designed SNR CAR-T cells by linking CLDN18.2 CAR with SNR by a 2A self-cleaving peptide. We assessed their cytotoxicity, tumor infiltration, persistence, and antitumor efficacy using in vitro assays, patient-derived xenograft (PDX) models, and murine syngeneic models. Additionally, transcriptomic analysis and flow cytometry were performed to evaluate exhaustion and memory markers. RESULTS: SNR CAR-T cells demonstrated enhanced cytotoxicity against tumor cells with heterogeneous CLDN18.2 expression, effectively lysing both CLDN18.2-positive and NKG2DL-positive tumor cells in vitro. In PDX and murine models, SNR CAR-T cells exhibited superior antitumor efficacy, leading to significant tumor regression and CAR-T expansion compared to conventional CAR-T cells. Furthermore, SNR CAR-T cells displayed reduced expression of exhaustion markers and increased expression of memory-associated markers. Enhanced tumor infiltration, proliferation and cytotoxicity within the tumor microenvironment, and a reduced presence of myeloid-derived suppressor cells (MDSCs) and tumor neovasculature were observed. Importantly, SNR CAR-T cell therapy was well-tolerated, with no significant toxicity noted in all the treated animals. CONCLUSION: The SNR CAR-T cell approach addresses tumor antigen heterogeneity and suppressive tumor microenvironment, offering a promising therapeutic strategy for solid tumors and paving the way for its future clinical applications.
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