肿瘤细胞治疗研究
英文原题:Combined targeting of mesothelin and tenascin-C enhances CAR-T cell function and tumor microenvironment modulation in ovarian cancer.
Combined targeting of mesothelin and tenascin-C enhances CAR-T cell function and tumor microenvironment modulation in ovarian cancer.
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在卵巢癌模型中,联合靶向 MSLN 和 TNC 与 CAR-T 细胞活化改善及更广泛的微环境重塑相关。
CAR-T(CAR-T)细胞疗法治疗实体瘤的疗效受到细胞外基质致密沉积和免疫抑制性肿瘤微环境的限制。Tenascin-C(TNC)是一种富集于卵巢癌间质中的细胞外基质蛋白,可能构成限制T细胞接触肿瘤的间质信号,同时也是间皮素(MSLN)的互补靶点。本研究评估联合靶向MSLN和TNC能否增强CAR-T 细胞功能并重塑卵巢癌微环境。
采用编码第二代CAR构建体的单一慢病毒载体制备靶向MSLN和/或TNC的CAR-T 细胞,包括串联双靶点CAR,以及分泌抗TNC单链可变片段、并可带有膜锚定型PD-L1结合模块的MSLN靶向CAR-T 细胞。使用3批健康供者细胞评估CAR表达和功能。通过流式细胞术和qPCR验证SKOV3细胞及卵巢癌相关成纤维细胞(CAF)的靶点表达。功能研究包括NFAT报告实验、细胞因子释放、细胞毒性、免疫突触定量、黏附实验、CAF共培养,以及采用随机分组并盲法测量肿瘤的异种移植模型。
在不同供者来源细胞中,TNC+MSLN双靶点CAR-T 细胞的CAR表达具有可重复性;在富含TNC的条件下,其NFAT活化增强,CD69/CD25上调增加,IFN-γ、TNF-α和IL-2分泌也高于单靶点对照。与MSLN-CAR-T 细胞相比,双靶点CAR-T 细胞表现出更强的肿瘤细胞杀伤、更大且极化程度更高的免疫突触,以及更强的肿瘤细胞黏附能力。在CAF共培养中,分泌抗TNC抗体的CAR-T 细胞可部分逆转抑制,降低PD-1和Tim-3表达;探索性分析还发现LAG-3和TIGIT同步下降。在体内,联合靶向间质延缓了肿瘤生长,增加肿瘤内CD4⁺和CD8⁺细胞浸润,提高CAR-T 细胞持久性,并减少细胞外基质沉积和CAF相关标志物。
在卵巢癌模型中,联合靶向MSLN和TNC与CAR-T 细胞活化增强及更广泛的微环境重塑相关。这些数据支持进一步评估间质共靶向作为卵巢癌CAR-T 治疗的辅助策略;仍需验证靶点依赖性、安全性及长期持久性。
The efficacy of chimeric antigen receptor T (CAR-T) cell therapy in solid tumors is limited by dense extracellular matrix deposition and an immunosuppressive tumor microenvironment. Tenascin-C (TNC), an extracellular matrix protein enriched in ovarian cancer stroma, may provide a stromal cue that restricts T-cell engagement while offering a complementary target to mesothelin (MSLN). This study evaluated whether combined targeting of MSLN and TNC could enhance CAR-T-cell function and remodel the ovarian cancer microenvironment.
CAR-T cells targeting MSLN and/or TNC were generated using single lentiviral vectors encoding second-generation CAR constructs, including tandem dual-target CARs and MSLN-directed CAR-T cells secreting an anti-TNC single-chain variable fragment with or without a membrane-tethered PD-L1-binding module. CAR expression and function were evaluated across three healthy-donor batches. Target expression on SKOV3 cells and ovarian cancer-associated fibroblasts (CAFs) was validated by flow cytometry and qPCR. Functional studies included NFAT reporter assays, cytokine release, cytotoxicity, immune synapse quantification, adhesion assays, CAF co-culture, and xenograft studies with randomized treatment allocation and blinded tumor measurements.
Dual-target TNC+MSLN CAR-T cells demonstrated reproducible CAR expression across donors, enhanced NFAT activation in TNC-rich conditions, increased CD69/CD25 upregulation, and greater IFN- , TNF- , and IL-2 secretion than single-target controls. Compared with MSLN-CAR-T cells, dual-target CAR-T cells showed improved tumor-cell killing, larger and more polarized immune synapses, and stronger tumor-cell adhesion. In CAF co-culture, anti-TNC-secreting CAR-T cells partially reversed suppression, reduced PD-1 and Tim-3 expression, and showed concordant reductions in LAG-3 and TIGIT in exploratory analyses. In vivo, combination stromal targeting delayed tumor growth, increased intratumoral CD4 + and CD8 + infiltration, improved CAR-T persistence, and reduced extracellular matrix deposition and CAF-associated markers.
Combined targeting of MSLN and TNC was associated with improved CAR-T-cell activation and broader microenvironmental remodeling in ovarian cancer models. These data support further evaluation of stromal co-targeting as an adjunct strategy for CAR-T therapy in ovarian cancer, while additional validation of target dependence, safety, and long-term persistence remains necessary.
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