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高血糖诱导的足细胞损伤和线粒体分裂通过 ROCK1-Drp1 信号增加血栓素/前列腺素受体。

Increased thromboxane/prostaglandin receptors contribute to high glucose-induced podocyte injury and mitochondrial fission through ROCK1-Drp1 signaling.

机构信息

Division of Nephrology, Department of Medicine, the Fifth Affiliated Hospital Sun Yat-Sen University, Zhuhai, Guangdong, 519000, China; Guangdong Provincial Key Laboratory of Biomedical Imaging, the Fifth Affiliated Hospital Sun Yat-Sen University, Zhuhai, Guangdong, 519000, China.

Department of Nephrology, The First People's Hospital of Foshan, Foshan, Guangdong, 528000, China.

出版信息

Int J Biochem Cell Biol. 2022 Oct;151:106281. doi: 10.1016/j.biocel.2022.106281. Epub 2022 Aug 20.

Abstract

Excessive mitochondrial fission in podocytes serves as a central hub for the pathogenesis of diabetic nephropathy (DN), and the thromboxane/prostaglandin receptor (TP receptor) plays a potential role in DN. However, regulation of the TP receptor during mitochondrial dynamics disorder in podocytes remains unknown. Here, we firstly reported novel mechanistic details of TP receptor effects on mitochondrial dynamics in podocytes under diabetic conditions. Expression of the TP receptor was significantly upregulated in podocytes under diabetic conditions both in vivo and in vitro. S18886 attenuated podocyte mitochondrial fission, glomerular injury and renal dysfunction in diabetic mice. Furthermore, inhibition of the TP receptor by both genetic and pharmacological methods dramatically reduced mitochondrial fission and attenuated podocyte injury induced by high glucose through regulating dynamin-related protein 1 (Drp1) phosphorylation and its subsequent translocation to mitochondria. In contrast, TP receptor overexpression and application of TP receptor agonist U46619 in these podocytes showed the opposite effect on mitochondrial fission and podocyte injury. Furthermore, treatment with Y27632, an inhibitor of Rho-associated kinase1 (ROCK1), significantly blunted more fragmented mitochondria and reduced podocyte injuries in podocytes with TP receptor overexpression or after U46619 treatment. Finally, pharmacological inhibition of Drp1 alleviated excessive mitochondrial fragmentation and podocyte damage in TP receptor overexpressing podocytes. Our data suggests that increased expression of the TP receptor can occur in a human cultured podocyte cell line and in podocytes derived from streptozotocin (STZ)-induced diabetic mice, which contributes to mitochondrial excessive fission and podocyte injury via ROCK1-Drp1 signaling.

摘要

在足细胞中,过度的线粒体裂变是糖尿病肾病 (DN) 发病机制的核心枢纽,血栓素/前列腺素受体 (TP 受体) 在 DN 中发挥潜在作用。然而,在足细胞中线粒体动力学紊乱过程中,TP 受体的调节作用尚不清楚。在这里,我们首次报道了 TP 受体在糖尿病条件下影响足细胞中线粒体动力学的新的机制细节。在体内和体外,糖尿病条件下的足细胞中 TP 受体的表达显著上调。在糖尿病小鼠中,S18886 可减轻足细胞的线粒体裂变、肾小球损伤和肾功能障碍。此外,通过调节动力相关蛋白 1 (Drp1) 的磷酸化及其随后向线粒体的易位,遗传和药理学方法抑制 TP 受体可显著减少线粒体裂变,并减轻高糖诱导的足细胞损伤。相反,在这些足细胞中过表达 TP 受体或应用 TP 受体激动剂 U46619 可对线粒体裂变和足细胞损伤产生相反的作用。此外,用 Rho 相关激酶 1 (ROCK1) 的抑制剂 Y27632 处理可显著减轻更多碎片化的线粒体,并减少过表达 TP 受体或在 U46619 处理后的足细胞中的足细胞损伤。最后,抑制 Drp1 可减轻过表达 TP 受体的足细胞中过多的线粒体裂变和足细胞损伤。我们的数据表明,TP 受体的表达增加可发生在人培养的足细胞系和链脲佐菌素 (STZ) 诱导的糖尿病小鼠的足细胞中,这有助于通过 ROCK1-Drp1 信号通路导致线粒体过度裂变和足细胞损伤。

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