机械转化
子宫
细胞生物学
离子通道
平滑肌
基因剔除小鼠
生物
压电1
缝隙连接
化学
肌肉收缩
肌层
信号转导
内分泌学
内科学
下调和上调
解剖
基因表达
怀孕
基因敲除
基因表达调控
神经科学
表型
心肌细胞
医学
感觉系统
电生理学
基因
作者
Yunxiao Zhang,Sejal A Kini,Sassan A Mishkanian,Renhao Luo,Saba Heydari Seradj,Verina H. Leung,Yu Wang,M. Rocío Servín-Vences,William T. Keenan,Utku M. Sönmez,Oleg Yarishkin,Manuel Sanchez-Alavez,Yuejia Liu,Xin Jin,Darren J. Lipomi,Ye Li,Michael Petrascheck,Antonina I. Frolova,Sarah K. England,Ardem Patapoutian
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-09-18
被引量:1
标识
DOI:10.1101/2025.09.17.676899
摘要
Abstract Mechanical forces are extensively involved in pregnancy and parturition, but their precise roles and mechanisms remain poorly understood. Here, we identify mechanically activated ion channels PIEZO1 and PIEZO2 as key mechanotransducers required for labor progression. Genetic deletion of Piezo1 and Piezo2 in mice resulted in weakened uterine contractions and severe parturition defects. Tissue-specific knockouts revealed that deletion in either the uterus or sensory neurons alone caused modest defects, whereas combined loss significantly impaired labor, demonstrating additive effects. Single-nuclei sequencing showed that loss of PIEZO reduced expression of connexin43 ( Gja1 ), a gap junction protein in uterine smooth muscle cells, suggesting a mechanistic link to impaired contraction. These findings highlight the critical role of PIEZO channels in mechanotransduction during parturition and suggest therapeutic targets for labor dysfunction.
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