Mechanotherapy enhances nanodrug uptake by overcoming the actin cytoskeleton damping effect

细胞外基质 生物物理学 变硬 化学 细胞骨架 刚度 膜 软化 细胞外 基质(化学分析) 肌动蛋白 内吞作用 成纤维细胞 肌动蛋白细胞骨架 跨膜蛋白 材料科学 纳米颗粒 细胞生物学 纳米技术 机械转化
作者
Hao Wu,Shen Xue,Tian Zhao,H W Zhang,Yungchang Chen,Jiaxuan Yu,Ye Huang,Xiangyan Chen,Weijie Wu,Ran Yan,Xiang Qin,Shun Li,Chuan Zheng,Fengming You,Yiyao Liu,Tingting Li
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (41): e2600686123-e2600686123
标识
DOI:10.1073/pnas.2600686123
摘要

Efficient nanodrug therapy in solid tumors is limited not only by extracellular barriers but also by the mechanical state of the plasma membrane (PM). Although mechanotherapy remodels the extracellular matrix (ECM) and improves tissue-level delivery, its effect on transmembrane transport remains unclear. Here, we show that matrix stiffness is transmitted to the PM through the actomyosin cytoskeleton and thereby regulates nanoparticle (NP) uptake. Within a hepatocellular carcinoma-relevant stiffness range, matrix stiffening promoted excessive F-actin polymerization and stress-fiber formation, producing a mechanically damped PM-actin interface that resisted membrane deformation and suppressed NP uptake. Pharmacological and genetic perturbations indicated that this mechanical barrier was reversible. In vivo, β-aminopropionitrile-mediated tumor softening loosened ECM architecture, increased NP penetration, and promoted cellular uptake by reducing F-actin-associated mechanical resistance. Intratumoral spatial analyses and paired bilateral tumor experiments further supported local regulation of NP uptake by the actomyosin state under matched matrix conditions. Combined tumor softening and donafenib-loaded PLGA NPs reduced endpoint tumor weight by 87.8% relative to free donafenib but increased pulmonary metastasis, revealing a potential efficacy-safety trade-off. These findings identify a multiscale mechanical mechanism linking tumor-matrix mechanics to nanomedicine delivery and the PM-actin interface as a potential therapeutic target.
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