研究概要
本研究为TNBC的整合精准治疗提供了有前景的途径。
中文摘要
由于显著的肿瘤异质性和缺乏有效的治疗选择,三阴性乳腺癌(TNBC)仍然是有效药物开发面临的严峻临床挑战。在此,我们报道了一种靶向HER3的声遗传力学免疫调节纳米平台(HSMIN-LNP),实现了对TNBC的整合协同治疗。HSMIN-LNP采用了一种从头AI设计的HER3靶向微型蛋白(HTIM),并共递送TRPV4(机械感受)质粒以及NFAT驱动的IL-15基因。结果表明,HTIM直接结合并抑制HER3信号传导,抑制下游PI3K/AKT/mTOR通路。这一过程显著削弱了肿瘤细胞的迁移能力。该NPs还表现出均匀稳定的纳米结构,具有高质粒包封效率,并通过TRPV4介导的Ca 2+ /NFAT信号实现超声(US)触发的局部IL-15诱导。在机制上,US激活的TRPV4进一步引发肿瘤细胞中显著的Ca 2+ 超载、活性氧积累、线粒体损伤和凋亡。它同时激活cGAS-STING依赖的炎症和干扰素信号通路,从而促进肿瘤细胞死亡和免疫相关的抗肿瘤反应。体内研究进一步验证,HSMIN-LNP显著增强了树突状细胞成熟、NK细胞和CD8 + T细胞反应,以及记忆T细胞的形成。总之,本研究为TNBC的整合精准治疗提供了一条有前景的途径。
展开英文摘要原文
Due to pronounced tumor heterogeneity and the lack of effective therapeutic options, triple-negative breast cancer (TNBC) remains a formidable clinical challenge for the development of effective medicines. Here, we report a HER3-targeted sonogenetic mechano-immunomodulatory nanoplatform (HSMIN-LNP), achieving integrated synergistic therapy for TNBC. HSMIN-LNP employs a de novo AI-designed HER3-targeting miniprotein (HTIM) and co-delivers the TRPV4 (mechanosensory) plasmid together with an NFAT-promoted IL-15 gene. The results demonstrated that HTIM directly bound and suppressed HER3 signaling, inhibiting the downstream PI3K/AKT/mTOR pathway. This process markedly impaired tumor cell migratory capacity. The NPs also exhibited a uniform and stable nanostructure with high plasmid encapsulation efficiency and enabled ultrasound (US)-triggered local IL-15 induction through TRPV4-mediated Ca 2+ /NFAT signaling. Mechanistically, US-activated TRPV4 further elicited pronounced Ca 2+ overload, reactive oxygen species accumulation, mitochondrial damage, and apoptosis in tumor cells. It simultaneously activated cGAS-STING-dependent inflammatory and interferon signaling pathways, thereby contributing to tumor cell death and immune-associated antitumor responses. In vivo studies further verified that HSMIN-LNP significantly enhanced dendritic cell maturation, NK cell and CD8 + T cell responses, as well as memory T cell formation. Collectively, this study provides a promising avenue for integrated precision therapy of TNBC.
论文信息
- 作者
- Song J、Liu Y、Zhao S、Zhu C、Guo H、Chang J、Kang J
- 单位
- School of Life Sciences, Faculty of Medicine, Tianjin University, Tianjin, China.China
- 期刊
- Advanced science (Weinheim, Baden-Wurttemberg, Germany)2026 Sep 16