下调和上调
重编程
免疫系统
机械转化
细胞生物学
巨噬细胞
机械敏感通道
癌症研究
甘露糖受体
微泡
外体
化学
机械生物学
细胞毒性T细胞
细胞因子
肿瘤微环境
生物
炎症
先天免疫系统
小RNA
压电1
癌细胞
肿瘤进展
血管生成
纳米载体
免疫疗法
作者
Zichen Yang,Rongjie Li,Lulu An,Xiaoyou Zhang,Jianwei Cheng,Yanni Cai,Li Yang,Haiqing Dong,Yongyong Li,Yan Li
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-12-03
卷期号:19 (49): 41746-41764
被引量:1
标识
DOI:10.1021/acsnano.5c14785
摘要
Mechanosensitive signaling pathways in immune cells drive exhaustion and ultimately facilitate tumor immune escape. In situ mechanical modulation strategies, leveraging the tumor's mechanical features, may provide a distinctive perspective for immunotherapy. We repurpose conventional silica nanocarriers from mere "drug delivery vehicles" into "Piezo1 mechanotransduction modulators" by precisely tuning their mechanical properties to directly intervene in tumor-associated macrophages (TAMs) mechanosignaling. Our study revealed that Piezo1 acts as a mechano-immunological switch in tumors: its downregulation in large tumors promotes M2-like TAMs polarization, whereas its upregulation in small tumors drives M1-mediated antitumor immunity. This directly couples mechanical cues to immune reprogramming during cancer progression. To target this pathway, we engineered mesoporous silica nanoparticles (mSNs) with tunable stiffness (253-1084.5 MPa), which were loaded with the Piezo1 agonist Yoda1 and TAMs-targeting peptide CRV (YmSNs@CRV) to precisely modulate TAMs mechanosignaling. Results demonstrated that softer 20% mSN achieved dual regulation of both macrophage phenotypic reprogramming and exosome-mediated communication via Piezo1 activation. Specifically, softer 20% mSNs enhanced pro-inflammatory markers (CD80), increased cytokine secretion, and promoted exosome production 5-fold more effectively than stiffer 80% mSNs. Proteomic analysis revealed that exosomes from 20% mSN-treated macrophages activated the TCR signaling, amplifying immune responses. In vivo, 20% YmSNs@CRV improved tumor penetration, repolarized TAMs toward an antitumor phenotype, and boosted cytotoxic T cell infiltration, significantly inhibiting tumor growth. This study integrates the mechanical characteristics of tumor tissues and proposes an "in situ mechanical dual-regulation" strategy, which combines mechano-regulated TAMs reprogramming with exosome-triggered immune responses, introducing a distinctive mechano-immunotherapeutic paradigm.
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