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:Coexpression of GITRL confers resistance to Treg cell-mediated immunosuppression to anti-CD19 CAR-NK cells.
Coexpression of GITRL confers resistance to Treg cell-mediated immunosuppression to anti-CD19 CAR-NK cells.
这些数据将 CAR19-GITRL-NK 细胞定位为一种有效的创新策略,将直接肿瘤靶向与主动破坏 Treg 驱动的免疫抑制结合起来,用于治疗 B 细胞白血病和淋巴瘤。
调节性 T 细胞在形成免疫相互作用、限制抗肿瘤免疫和损害工程效应细胞的活性方面发挥着关键作用。克服调节性 T (Treg) 细胞介导的免疫抑制对于释放嵌合抗原受体 (CAR) 细胞疗法的全部治疗潜力至关重要。在这里,我们开发了共表达 GITR 配体 (GITRL) (CAR19-GITRL-NK) 的“装甲”抗 CD19 CAR-NK 细胞,以靶向恶性 B 细胞并局部抵消 Treg 介导的抑制。 GITR 在 Tregs 上高表达,其配体 GITRL 的参与可以调节其功能,为重新编程肿瘤微环境提供合理的策略。
我们使用慢病毒载体生成了具有或不具有 GITRL 共表达的抗 CD19 NK-92 和原代外周血 NK (PB-NK) 细胞,并评估了它们的功能和治疗潜力。对 CAR19-GITRL-NK-92 细胞的扩增、代谢、细胞毒性、细胞因子分泌、脱颗粒和体内抗肿瘤潜力进行了分析。检查了 CAR19-GITRL PB-NK 细胞的细胞毒活性,并在使用 FoxP3 表达载体(iTreg-FoxP3)转导的 T CD4 细胞(用作 Treg 细胞模型)存在的情况下测量其生长。
CAR19-GITRL-NK-92 细胞表现出优异的扩增能力和增强的代谢适应性。从功能上讲,两种 CAR 构建体在体外均增加了 NK-92 的细胞毒性和针对 CD19 Nalm-6 和 Namalwa 细胞的细胞因子分泌。 RNA-Seq 显示,与 CAR19-NK-92 细胞相比,CAR19-GITRL-NK-92 中有 54 个上调基因和 34 个下调基因,与免疫激活、增殖、趋化性和细胞毒性相关的通路富集,包括 NCR2、CD2、CMKLR1、IRF5、KIT 和 PTPN3 表达增加。在体内,CAR19-GITRL-NK-92细胞实现了优异的肿瘤控制和最长的总体生存期。在原代 NK 细胞中,CAR19-GITRL 增强了对 CD19 靶标的杀伤,并且 GITRL 表达减弱了 CAR-NK 细胞中 iTreg-FoxP3 介导的抑制,表明对 Treg 抑制的抵抗机制。
INTRODUCTION: Regulatory T cells play a pivotal role in shaping immune interactions, limiting antitumor immunity, and impairing the activity of engineered effector cells. Overcoming regulatory T (Treg) cell-mediated immunosuppression is critical to unlock the full therapeutic potential of chimeric antigen receptor (CAR)-cell therapies. Here, we develop "armored" anti-CD19 CAR-NK cells coexpressing GITR ligand (GITRL) (CAR19-GITRL-NK) to both target malignant B cells and locally counteract Treg-mediated suppression. GITR is highly expressed on Tregs, and engagement by its ligand GITRL can modulate their function, providing a rational strategy to reprogram the tumor microenvironment. METHODS: We generated anti-CD19 NK-92 and primary peripheral blood NK (PB-NK) cells with or without GITRL coexpression using lentiviral vectors, and evaluated their functionality and therapeutic potential. CAR19-GITRL-NK-92 cells were analyzed regarding their expansion, metabolism, cytotoxicity, cytokine secretion, degranulation, and in vivo antitumor potential. The cytotoxic activity of CAR19-GITRL PB-NK cells was examined, and their growth was measured in the presence of T CD4 cells transduced with FoxP3 expression vector (iTreg-FoxP3) used as a model for Treg cells. RESULTS: CAR19-GITRL-NK-92 cells displayed superior expansion and enhanced metabolic fitness. Functionally, both CAR constructs increased the cytotoxicity of NK-92 and cytokine secretion against CD19 Nalm-6 and Namalwa cells in vitro. RNA-Seq revealed 54 upregulated and 34 downregulated genes in CAR19-GITRL-NK-92 versus CAR19-NK-92 cells, with enrichment of pathways linked to immune activation, proliferation, chemotaxis, and cytotoxicity, including increased expression of NCR2, CD2, CMKLR1, IRF5, KIT, and PTPN3. In vivo , CAR19-GITRL-NK-92 cells achieved superior tumor control and the longest overall survival. In primary NK cells, CAR19-GITRL enhanced killing of CD19 targets, and GITRL expression attenuated iTreg-FoxP3 mediated inhibition in CAR-NK cells, indicating a resistance mechanism to Treg suppression. DISCUSSION: Collectively, these data position CAR19-GITRL-NK cells as a potent and innovative strategy that couples direct tumor targeting with active undermining of Treg-driven immunosuppression for the treatment of B-cell leukemias and lymphomas.
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