压电1
机械转化
尿路上皮
机械反应
尿路上皮细胞
生物
细胞生物学
解剖
医学
泌尿系统
机械敏感通道
神经科学
内科学
离子通道
受体
作者
Marianela G. Dalghi,Wily G. Ruiz,Dennis R. Clayton,Nicolás Montalbetti,Stephanie L. Daugherty,Jonathan M. Beckel,Marcelo D. Carattino,Gerard Apodaca
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2021-08-31
卷期号:6 (19)
被引量:75
标识
DOI:10.1172/jci.insight.152984
摘要
The mechanisms that link visceral mechanosensation to the perception of internal organ status (i.e., interoception) remain elusive. In response to bladder filling, the urothelium releases ATP, which is hypothesized to stimulate voiding function by communicating the degree of bladder fullness to subjacent tissues, including afferent nerve fibers. To determine if PIEZO channels function as mechanosensors in these events, we generated conditional urothelial Piezo1-, Piezo2-, and dual Piezo1/2-knockout (KO) mice. While functional PIEZO1 channels were expressed in all urothelial cell layers, Piezo1-KO mice had a limited phenotype. Piezo2 expression was limited to a small subset of superficial umbrella cells, yet male Piezo2-KO mice exhibited incontinence (i.e., leakage) when their voiding behavior was monitored during their active dark phase. Dual Piezo1/2-KO mice had the most affected phenotype, characterized by decreased urothelial responses to mechanical stimulation, diminished ATP release, bladder hypoactivity in anesthetized Piezo1/2-KO females but not males, and urinary incontinence in both male and female Piezo1/2-KO mice during their dark phase but not inactive light one. Our studies reveal that the urothelium functions in a sex- and circadian rhythm-dependent manner to link urothelial PIEZO1/2 channel-driven mechanotransduction to normal voiding function and behavior, and in the absence of these signals, bladder dysfunction ensues.
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