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:Enhancement of CAR-T cell activity against cholangiocarcinoma by simultaneous knockdown of six inhibitory membrane proteins.
我们的结果显示,敲低六重抑制分子的 PTG-T16R-scFV-CAR-T 细胞在体外和体内均表现出对胆管癌的强大免疫力和长期疗效。该策略为胆管癌提供了一种有效且个性化的免疫细胞治疗。
胆管癌的现有治疗效果不佳。然而,CAR-T(CAR-T)细胞正成为一种潜在的治疗策略。实体瘤在免疫抑制微环境中存在多种不利因素,会损害CAR-T细胞的浸润和功能。本研究旨在通过敲低免疫检查点和免疫抑制分子受体来改善CAR-T细胞的功能。
我们通过免疫组化评估了胆管癌组织中表皮生长因子受体(EGFR)和B7同源物3蛋白(B7H3)抗原的表达,并通过流式细胞术筛选了胆管癌微环境中的特异性免疫检查点。随后,我们构建了靶向EGFR和B7H3抗原的CAR-T细胞。我们通过构建两组小发夹RNA,同时敲低了CAR-T细胞中的免疫检查点和免疫抑制分子受体,并在体外利用肿瘤细胞系和胆管癌类器官模型,以及在体内利用人源化小鼠模型,评估了工程化CAR-T细胞的抗肿瘤活性。
我们观察到胆管癌组织中EGFR和B7H3抗原高表达。EGFR-CAR-T和B7H3-CAR-T细胞表现出特异性抗肿瘤活性。我们发现胆管癌微环境中浸润的CD8+ T细胞上程序性细胞死亡蛋白1(PD-1)、T细胞免疫球蛋白和黏蛋白结构域包含蛋白3(Tim-3)以及T细胞免疫球蛋白和ITIM结构域(Tigit)大量存在。随后我们降低了CAR-T细胞表面这3种蛋白的表达,命名为PTG-scFV-CAR-T细胞。此外,我们敲低了PTG-scFV-CAR-T细胞中转化生长因子β受体(TGF R)、白细胞介素-10受体(IL-10R)和白细胞介素-6受体(IL-6R)的表达。这些细胞被命名为PTG-T16R-scFV-CAR-T细胞,在体外能有效杀伤肿瘤细胞,并在胆管癌类器官模型中促进肿瘤细胞凋亡。最后,PTG-T16R-scFv-CAR-T细胞在体内对肿瘤生长表现出更强的抑制作用,并在延长小鼠生存期方面更具优势。
BACKGROUND: Existing treatments for cholangiocarcinoma have poor efficacy. However, chimeric antigen receptor-T (CAR-T) cells are emerging as a potential therapeutic strategy. Solid tumors possess multiple adverse factors in an immunosuppressive microenvironment that impair CAR-T cell infiltration and function. This study aimed to improve the function of CAR-T cells through knock down immune checkpoints and immunosuppressive molecular receptors. METHODS: We evaluated the expression of epidermal growth factor receptor (EGFR) and B7 homolog 3 protein (B7H3) antigens in cholangiocarcinoma tissues using immunohistochemistry and screened specific immune checkpoints in the cholangiocarcinoma microenvironment via flow cytometry. Subsequently, we engineered CAR-T cells targeting EGFR and B7H3 antigens. We simultaneously knocked down immune checkpoints and immunosuppressive molecular receptors in CAR-T cells by constructing two clusters of small hairpin RNAs and evaluated the engineered CAR-T cells for antitumor activity both in vitro, using tumor cell lines and cholangiocarcinoma organoid models, and in vivo, using humanized mouse models. RESULTS: We observed high expression of EGFR and B7H3 antigens in cholangiocarcinoma tissues. EGFR-CAR-T and B7H3-CAR-T cells demonstrated specific anti-tumor activity. We found an abundance of programmed cell death protein 1 (PD-1), T cell immunoglobulin and mucin domain-containing protein 3 (Tim-3), and T cell immunoglobulin and ITIM domain (Tigit) on infiltrated CD8 + T cells in the cholangiocarcinoma microenvironment. We then decreased the expression of these 3 proteins on the surface of CAR-T cells, named PTG-scFV-CAR-T cells. Furthermore, we knocked-down the expression of transforming growth factor beta receptor (TGF R), interleukin-10 receptor (IL-10R), and interleukin-6 receptor (IL-6R) of PTG-scFV-CAR-T cells. Those cells, named PTG-T16R-scFV-CAR-T cells, potently killed tumor cells in vitro and promoted apoptosis of tumor cells in a cholangiocarcinoma organoid model. Finally, the PTG-T16R-scFv-CAR-T cells showed greater inhibitory effect on tumor growth in vivo, and were superior in prolonging the survival of mice. CONCLUSIONS: Our results revealed that PTG-T16R-scFV-CAR-T cells with knockdown of sextuplet inhibitory molecules exhibited strong immunity against cholangiocarcinoma and long-term efficacy both in vitro and in vivo. This strategy provides an effective and personalized immune cell therapy against cholangiocarcinoma.
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