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肾脏上皮细胞是活跃的机械生物学液体泵。

Kidney epithelial cells are active mechano-biological fluid pumps.

机构信息

Department of Mechanical Engineering, Johns Hopkins University, Baltimore, MD, United States.

Institute of NanoBioTechnology, Johns Hopkins University, Baltimore, MD, United States.

出版信息

Nat Commun. 2022 Apr 28;13(1):2317. doi: 10.1038/s41467-022-29988-w.

Abstract

The role of mechanical forces driving kidney epithelial fluid transport and morphogenesis in kidney diseases is unclear. Here, using a microfluidic platform to recapitulate fluid transport activity of kidney cells, we report that renal epithelial cells can actively generate hydraulic pressure gradients across the epithelium. The fluidic flux declines with increasing hydraulic pressure until a stall pressure, in a manner similar to mechanical fluid pumps. For normal human kidney cells, the fluidic flux is from apical to basal, and the pressure is higher on the basal side. For human Autosomal Dominant Polycystic Kidney Disease cells, the fluidic flux is reversed from basal to apical. Molecular and proteomic studies reveal that renal epithelial cells are sensitive to hydraulic pressure gradients, changing gene expression profiles and spatial arrangements of ion exchangers and the cytoskeleton in different pressure conditions. These results implicate mechanical force and hydraulic pressure as important variables during kidney function and morphological change, and provide insights into pathophysiological mechanisms underlying the development and transduction of hydraulic pressure gradients.

摘要

机械力在驱动肾脏上皮细胞液体转运和形态发生中的作用尚不清楚。在这里,我们使用微流控平台来重现肾脏细胞的液体转运活性,报告称肾上皮细胞可以在细胞层主动产生液压压力梯度。随着液压压力的增加,流体通量会下降,直到出现停滞压力,这与机械流体泵的方式类似。对于正常的人类肾脏细胞,流体通量是从顶端到基底的,基底侧的压力更高。对于人类常染色体显性多囊肾病细胞,流体通量是从基底到顶端的反转。分子和蛋白质组学研究表明,肾上皮细胞对液压压力梯度敏感,在不同的压力条件下改变离子交换器和细胞骨架的基因表达谱和空间排列。这些结果表明机械力和液压压力是肾脏功能和形态变化过程中的重要变量,并为水力压力梯度的发展和转导的病理生理机制提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f3d5/9050750/8efdc303012e/41467_2022_29988_Fig1_HTML.jpg

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