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伞状细胞顶膜域拉伸诱导钙信号的计算建模。

Computational modeling of stretch induced calcium signaling at the apical membrane domain in umbrella cells.

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Mumbai, India.

出版信息

Comput Methods Biomech Biomed Engin. 2023 Sep;26(11):1368-1377. doi: 10.1080/10255842.2022.2117549. Epub 2022 Sep 5.

Abstract

The urinary bladder epithelium comprises a specialised population of superficially placed cells called the umbrella cells. The apical membrane domain of umbrella cells has several intriguing morphological properties and is the site for various signaling activities. A key function of umbrella cells is to sense mechanical stimuli as the bladder stretches in response to filling. More specifically, the mechanotransduction of stretch into subcellular signals is brought about by the activation of Piezo1 channels that mediate calcium into the cell interior. The incoming calcium is critical to several aspects of umbrella cell signaling, including regulation of exocytosis, ATP release and downstream purinergic signaling. We report here a computational framework that models stretch-induced mechanotransduction via Piezo1 channels and the resulting calcium signaling in umbrella cells factoring in morphological details of subcellular compartment volumes. Our results show the following: (i) activation of Piezo1 conductance in response to stretch; (ii) development of varying Piezo1 mediated [Ca] profiles in subcellular compartments, namely, the apical sub-plasma membrane space, cytosol and mitochondria. The varying calcium amplitudes and temporal profiles in the subcellular compartments indicate highly specialised roles for stretch-mediated calcium in umbrella cells, including its potential effect on the energetics of mitochondria and the regulation of exocytosis.

摘要

膀胱上皮由一层位于表面的特化细胞组成,称为伞状细胞。伞状细胞的顶膜域具有多种有趣的形态特征,是各种信号活动的发生部位。伞状细胞的一个关键功能是感知机械刺激,因为膀胱在充盈时会伸展。更具体地说,通过激活介导钙内流的 Piezo1 通道,将伸展转化为细胞内的亚细胞信号,从而实现机械刺激的转导。进入细胞内的钙对于伞状细胞信号转导的几个方面至关重要,包括调节胞吐作用、ATP 释放和下游嘌呤能信号转导。我们在这里报告了一个计算框架,该框架通过 Piezo1 通道建模拉伸诱导的机械转导,并考虑了亚细胞隔室体积的形态细节,从而模拟了伞状细胞中的钙信号转导。我们的结果表明:(i)拉伸引起 Piezo1 电导的激活;(ii)在亚细胞隔室(即顶质膜下空间、细胞质和线粒体)中形成不同的 Piezo1 介导的[Ca]分布。亚细胞隔室中钙幅度和时间分布的变化表明,伸展介导的钙在伞状细胞中具有高度特化的作用,包括其对线粒体能量学和胞吐作用调节的潜在影响。

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