细胞外基质
材料科学
癌症研究
刚度
软化
癌细胞
基质(化学分析)
恶性转化
间充质干细胞
生物医学工程
上皮-间质转换
纳米技术
生物物理学
癌症
细胞生物学
医学
病理
复合材料
生物
内科学
转移
作者
Yufeng Shou,Xin Yong Teo,Xianlei Li,Zhicheng Le,Ling Liu,Xinhong Sun,Win Jonhson,Jun Ding,Chwee Teck Lim,Andy Tay
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-01-12
卷期号:17 (3): 2851-2867
被引量:30
标识
DOI:10.1021/acsnano.2c11278
摘要
High extracellular matrix stiffness is a prominent feature of malignant tumors associated with poor clinical prognosis. To elucidate mechanistic connections between increased matrix stiffness and tumor progression, a variety of hydrogel scaffolds with dynamic changes in stiffness have been developed. These approaches, however, are not biocompatible at high temperature, strong irradiation, and acidic/basic pH, often lack reversibility (can only stiffen and not soften), and do not allow study on the same cell population longitudinally. In this work, we develop a dynamic 3D magnetic hydrogel whose matrix stiffness can be wirelessly and reversibly stiffened and softened multiple times with different rates of change using an external magnet. With this platform, we found that matrix stiffness increased tumor malignancy including denser cell organization, epithelial-to-mesenchymal transition and hypoxia. More interestingly, these malignant transformations could be halted or reversed with matrix softening (i.e., mechanical rescue), to potentiate drug efficacy attributing to reduced solid stress from matrix and downregulation of cell mechano-transductors including YAP1. We propose that our platform can be used to deepen understanding of the impact of matrix softening on cancer biology, an important but rarely studied phenomenon.
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