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足细胞中液流切应力的机械转导信号。

Mechanotransduction signaling in podocytes from fluid flow shear stress.

机构信息

Section of Nephrology, Children's Mercy Hospital and University of Missouri at Kansas City , Kansas City, Missouri.

Renal Research Laboratory, Research and Development, Kansas City Veterans Affairs Medical Center , Kansas City, Missouri.

出版信息

Am J Physiol Renal Physiol. 2018 Jan 1;314(1):F22-F34. doi: 10.1152/ajprenal.00325.2017. Epub 2017 Sep 6.

Abstract

Recently, we and others have found that hyperfiltration-associated increase in biomechanical forces, namely, tensile stress and fluid flow shear stress (FFSS), can directly and distinctly alter podocyte structure and function. The ultrafiltrate flow over the major processes and cell body generates FFSS to podocytes. Our previous work suggests that the cyclooxygenase-2 (COX-2)-PGE-PGE receptor 2 (EP2) axis plays an important role in mechanoperception of FFSS in podocytes. To address mechanotransduction of the perceived stimulus through EP2, cultured podocytes were exposed to FFSS (2 dyn/cm) for 2 h. Total RNA from cells at the end of FFSS treatment, 2-h post-FFSS, and 24-h post-FFSS was used for whole exon array analysis. Differentially regulated genes ( P < 0.01) were analyzed using bioinformatics tools Enrichr and Ingenuity Pathway Analysis to predict pathways/molecules. Candidate pathways were validated using Western blot analysis and then further confirmed to be resulting from a direct effect of PGE on podocytes. Results show that FFSS-induced mechanotransduction as well as exogenous PGE activate the Akt-GSK3β-β-catenin (Ser552) and MAPK/ERK but not the cAMP-PKA signal transduction cascades. These pathways are reportedly associated with FFSS-induced and EP2-mediated signaling in other epithelial cells as well. The current regimen for treating hyperfiltration-mediated injury largely depends on targeting the renin-angiotensin-aldosterone system. The present study identifies specific transduction mechanisms and provides novel information on the direct effect of FFSS on podocytes. These results suggest that targeting EP2-mediated signaling pathways holds therapeutic significance for delaying progression of chronic kidney disease secondary to hyperfiltration.

摘要

最近,我们和其他人发现,与超滤相关的生物力学力的增加,即拉伸应力和流体流动切应力(FFSS),可以直接而明显地改变足细胞的结构和功能。主要突起和细胞体上的超滤液流产生 FFSS 作用于足细胞。我们之前的工作表明,环氧合酶-2(COX-2)-前列腺素 E-PGE 受体 2(EP2)轴在足细胞中 FFSS 的机械感受中起着重要作用。为了解决通过 EP2 感知刺激的机械转导,将培养的足细胞暴露于 FFSS(2 dyn/cm)2 小时。FFSS 处理结束时、FFSS 后 2 小时和 FFSS 后 24 小时的细胞总 RNA 用于全外显子阵列分析。使用生物信息学工具 Enrichr 和 Ingenuity Pathway Analysis 分析差异调节基因(P < 0.01),以预测途径/分子。使用 Western blot 分析验证候选途径,然后进一步确认这些途径是 PGE 对足细胞的直接作用的结果。结果表明,FFSS 诱导的机械转导以及外源性 PGE 激活 Akt-GSK3β-β-catenin(Ser552)和 MAPK/ERK,但不激活 cAMP-PKA 信号转导级联。据报道,这些途径与其他上皮细胞中 FFSS 诱导和 EP2 介导的信号转导有关。目前治疗超滤介导损伤的方案主要依赖于靶向肾素-血管紧张素-醛固酮系统。本研究确定了特定的转导机制,并提供了关于 FFSS 对足细胞直接作用的新信息。这些结果表明,针对 EP2 介导的信号通路具有治疗意义,可以延缓超滤引起的慢性肾脏病的进展。

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Mechanotransduction signaling in podocytes from fluid flow shear stress.足细胞中液流切应力的机械转导信号。
Am J Physiol Renal Physiol. 2018 Jan 1;314(1):F22-F34. doi: 10.1152/ajprenal.00325.2017. Epub 2017 Sep 6.

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