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Analysis of hydrostatic pressure-induced changes in umbrella cell surface area.

机译:静水压力引起的伞状细胞表面积变化的分​​析。

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All cells experience and respond to external mechanical stimuli including shear stress, compression, and hydrostatic pressure. Cellular responses can include changes in exocytic and endocytic traffic. An excellent system to study how extracellular forces govern membrane trafficking events is the bladder umbrella cell, which lines the inner surface of the mammalian urinary bladder. It is hypothesized that umbrella cells modulate their apical plasma membrane surface area in response to hydrostatic pressure. Understanding the mechanics of this process is hampered by the lack of a suitable model system. We describe a pressure chamber that allows one to increase hydrostatic pressure in a physiological manner while using capacitance to monitor real-time changes in the apical surface area of the umbrella cell. It is demonstrated that application of hydrostatic pressure results in an increase in umbrella cell apical surface area and a change in the morphology of umbrella cells from roughly cuboidal to squamous. This process is dependent on increases in cytoplasmic Ca(2+). This system will be useful in further dissecting the mechanotransduction pathways involved in cell shape change and regulation of exocytic and endocytic traffic in umbrella cells.
机译:所有细胞都会经历并响应外部机械刺激,包括剪切应力,压缩和静水压力。细胞反应可包括胞外和内吞运输的变化。用来研究细胞外力如何控制膜运输事件的优秀系统是膀胱伞细胞,该细胞排列在哺乳动物膀胱的内表面。假设伞细胞响应静水压力来调节其顶质膜表面积。缺乏合适的模型系统阻碍了对这一过程机制的理解。我们描述了一种压力室,该压力室允许人们以生理方式增加静水压力,同时使用电容来监视伞形细胞顶表面面积的实时变化。结果表明,施加静水压力会导致伞状细胞的顶表面积增加,并使伞状细胞的形态从大致长方体变为鳞状。此过程取决于细胞质Ca(2+)的增加。该系统将有助于进一步剖析涉及伞形细胞的细胞形状变化以及细胞外和内吞运输的调控的机械转导途径。

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