CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:Challenges and breakthroughs: current landscape and future prospects of CAR-T cell therapy clinical trials for solid tumors.
CAR-T 细胞疗法在血液系统恶性肿瘤的治疗中已显示出显著疗效;然而,其在实体瘤中的应用仍面临挑战。
背景:Wilms肿瘤(WT)缺乏精准的分子分型工具,限制了个体化治疗开发。为解决这一问题,我们探究NK细胞相关基因(NKG)能否改进WT分子分型,以发现新的治疗策略。方法:采用一致性聚类对WT进行分子分型,并通过免疫分析算法评估不同WT亚型的免疫微环境。使用CMap数据库筛选可靶向相关亚型的潜在治疗化合物,并通过分子对接和分子动力学模拟阐明其作用机制。随后开展CCK8、流式细胞术和Transwell等体外实验评估肿瘤细胞生物学行为。采用机器学习算法构建预后特征,并通过ROC曲线、校准曲线和一致性指数评价其表现。此外,通过单细胞分析研究标志基因的细胞定位和表达,并用RT-qPCR进行验证。结果:我们开发了新型分子分型工具,将WT分为预后不同的“免疫富集型”和“免疫荒漠型”。CMap数据库筛选出小分子药物TGX-221作为候选调节剂。TGX-221通过双重作用机制显著抑制WT恶性进展:阻断关键致癌Wnt/β-catenin信号通路,并增强肿瘤细胞对NK细胞介导细胞毒性的敏感性。此外,基于HS2ST1、EPI3M和PPP3CA构建的预后特征可有效预测患者结局。值得注意的是,HS2ST1作为一种新型生物标志物,可能通过硫酸乙酰肝素介导的Wnt/β-catenin信号增强促进癌症干细胞样特性,凸显其兼具预后指标和治疗靶点的双重价值。结论:基于NKG的分子分型和预后特征有助于精准识别WT高危患者。TGX-221是有前景的新型候选疗法,HS2ST1则是潜在预后生物标志物。这些发现共同提供风险分层和靶向治疗工具,推动WT精准肿瘤治疗。
Chimeric antigen receptor T-cell (CAR-T) therapy has demonstrated significant efficacy in the treatment of hematological malignancies; however, its application in the solid tumor setting remains challenging. Given that solid tumors account for the vast majority of clinically diagnosed cancers, there is an urgent and significant clinical need to develop effective CAR-T therapy. This review focuses on the latest clinical trials of CAR-T therapy in major solid tumors, including glioma, colorectal, pancreatic, prostate, and lung cancers. It systematically evaluates the results of studies targeting key tumor-associated antigens, such as EGFR, IL13R 2, GD2, B7-H3, CEA, MSLN, PSCA/PSMA, and ROR1. The results indicate that locally delivered, dual-targeted CAR-T cells and engineered CAR-T cells show potential in reducing antigenic escape and enhancing cellular function. Significant survival benefit and tumor remission were observed in some studies. However, antigen heterogeneity-driven escape, tumor immunosuppressive microenvironment, insufficient persistence of CAR-T cells in vivo , and treatment-related toxicity still limit their efficacy and clinical application. To address these challenges, we further discuss various optimization strategies, including target selection, combination of immune checkpoint inhibitors or tumor microenvironment modulators, and optimization of CAR structural design and delivery methods. In the future, through the exploration of multi-dimensional optimization design and combination therapeutic regimen, it is expected to facilitate the broader application and clinical translation of CAR-T therapy in solid tumor treatment.
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