一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:CD93-targeted resveratrol-loaded PLGA nanoparticles remodel CD8⁺ T cell metabolism through AIF-mediated oxidative phosphorylation to overcome lung cancer immunotherapy resistance.
CD93-targeted resveratrol-loaded PLGA nanoparticles remodel CD8⁺ T cell metabolism through AIF-mediated oxidative phosphorylation to overcome lung cancer immunotherapy resistance.
分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。
肺癌(LC)仍然是全球癌症相关死亡的主要原因,而免疫治疗因治疗耐药导致的疗效有限,凸显了开发新的治疗策略的迫切需求。在本研究中,开发了靶向 CD93 的聚乳酸-羟基乙酸共聚物(PLGA)纳米颗粒包载白藜芦醇(CD93-NPs@RSV),以重塑 CD8+ TIL(肿瘤浸润淋巴细胞)的代谢适应性。该纳米颗粒经过精确设计,并通过动态光散射、透射电子显微镜和体内成像进行了表征,证实了其稳定性和肿瘤靶向能力。机制研究揭示,CD93-NPs@RSV 抑制 CD93 表达,促进凋亡诱导因子(AIF)线粒体转位,并激活氧化磷酸化(OXPHOS),从而增强肿瘤微环境中 T 细胞功能。转录组学和蛋白质组学分析进一步证实了对 CD93-AKT-PAK5-AIF 信号轴的调控。在 Lewis 肺癌模型中,CD93-NPs@RSV 显著抑制肿瘤进展,并与 anti-PD-1 治疗表现出强协同作用,改善了生存结局。
总体而言,我们的研究表明,CD93-NPs@RSV 提供了一种强大的纳米技术驱动方法,通过重编程 T 细胞代谢来逆转免疫治疗耐药。这些发现为精准癌症免疫治疗建立了一个有前景的范式,并凸显了靶向纳米医学在克服 LC 治疗瓶颈方面的转化潜力。
Lung cancer (LC) remains a leading cause of cancer-related mortality worldwide, and the limited efficacy of immunotherapy due to treatment resistance underscores the urgent need for new therapeutic strategies. In the present study, CD93-targeted poly(lactic-co-glycolic acid) (PLGA) nanoparticles encapsulating resveratrol (CD93-NPs@RSV) were developed to remodel the metabolic fitness of CD8 + tumor-infiltrating lymphocytes. The nanoparticles were precisely engineered and characterized using dynamic light scattering, transmission electron microscopy, and in vivo imaging, which confirmed their stability and tumor-targeting capability.
Mechanistic studies revealed that CD93-NPs@RSV suppressed CD93 expression, facilitated apoptosis-inducing factor (AIF) mitochondrial translocation, and activated oxidative phosphorylation (OXPHOS), thereby enhancing T cell function in the tumor microenvironment. Transcriptomic and proteomic analyses further confirmed regulation of the CD93-AKT-PAK5-AIF signaling axis.
In a Lewis LC model, CD93-NPs@RSV significantly inhibited tumor progression and displayed strong synergy with anti-PD-1 therapy, resulting in improved survival outcomes. Collectively, our study demonstrates that CD93-NPs@RSV provide a powerful nanotechnology-driven approach to reverse immunotherapy resistance by reprogramming T cell metabolism.
These findings establish a promising paradigm for precision cancer immunotherapy and underscore the translational potential of targeted nanomedicine in overcoming therapeutic bottlenecks in LC.
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