压电1
机械转化
机械敏感通道
胶质瘤
神经科学
焦点粘着
离子通道
细胞生物学
整合素
细胞外基质
血管生成
生物
化学
细胞
信号转导
癌症研究
受体
生物化学
遗传学
作者
Xin Chen,Siyi Wanggou,Ankur Bodalia,Min Zhu,Weifan Dong,Jerry Fan,Wen Yin,Hyun-Kee Min,Malini Hu,Diana Draghici,Wenkun Dou,Feng Li,Fiona J. Coutinho,Heather Whetstone,Michelle Kushida,Peter B. Dirks,Yuanquan Song,Chi‐chung Hui,Yu Sun,Lu‐Yang Wang
出处
期刊:Neuron
[Cell Press]
日期:2018-10-18
卷期号:100 (4): 799-815.e7
被引量:409
标识
DOI:10.1016/j.neuron.2018.09.046
摘要
Alteration of tissue mechanical properties is a physical hallmark of solid tumors including gliomas. How tumor cells sense and regulate tissue mechanics is largely unknown. Here, we show that mechanosensitive ion channel Piezo regulates mitosis and tissue stiffness of Drosophila gliomas, but not non-transformed brains. PIEZO1 is overexpressed in aggressive human gliomas and its expression inversely correlates with patient survival. Deleting PIEZO1 suppresses the growth of glioblastoma stem cells, inhibits tumor development, and prolongs mouse survival. Focal mechanical force activates prominent PIEZO1-dependent currents from glioma cell processes, but not soma. PIEZO1 localizes at focal adhesions to activate integrin-FAK signaling, regulate extracellular matrix, and reinforce tissue stiffening. In turn, a stiffer mechanical microenvironment elevates PIEZO1 expression to promote glioma aggression. Therefore, glioma cells are mechanosensory in a PIEZO1-dependent manner, and targeting PIEZO1 represents a strategy to break the reciprocal, disease-aggravating feedforward circuit between tumor cell mechanotransduction and the aberrant tissue mechanics. VIDEO ABSTRACT.
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