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长链非编码RNA NEAT1通过miR-150-5p-DRP1轴调控线粒体自噬,加速糖尿病肾病肾小管上皮细胞损伤。

LncRNA NEAT1 accelerates renal tubular epithelial cell damage by modulating mitophagy via miR-150-5p-DRP1 axis in diabetic nephropathy.

作者信息

Yang Dan-Yi, Zhou Xiang, Liu Zhi-Wen, Xu Xiang-Qing, Liu Chan

机构信息

Department of Nephrology, The Second Xiangya Hospital, Central South University, Changsha, Hunan Province, PR China.

Hunan Key Laboratory of Kidney Disease and Blood, The Second Xiangya Hospital, Central South University, Changsha, Hunan Province, PR China.

出版信息

Exp Physiol. 2021 Jul;106(7):1631-1642. doi: 10.1113/EP089547. Epub 2021 Jun 1.

Abstract

NEW FINDINGS

What is the central question of this study? Diabetic nephropathy (DN) is a severe complication of diabetes correlated with a higher mortality rate in diabetic patients. Renal tubular injury participates in the pathogenesis of DN. We aimed to uncover the biological function of the NEAT1-miR-150-5p-DRP1 axis in an in vitro model of DN and elaborate the potential mechanisms. What is the main finding and its importance? NEAT1 facilitated high glucose-induced damage in HK-2 cells by reducing mitophagy via the miR-150-5p-DRP1 axis, which sheds light on DN pathogenesis and reveals a potential treatment for DN.

ABSTRACT

Diabetic nephropathy (DN) is a severe complication in diabetic patients, with a high mortality rate. Renal tubular injury is involved in the pathogenesis of DN. In this study, we aimed to uncover the regulatory roles of the NEAT1-miR-150-5p-DRP1 axis in an in vitro model of DN and its possible mechanisms. High glucose-challenged HK-2 cells were used as an in vitro DN model. NEAT1, miR-150-5p and DRP1 levels were assessed by RT-qPCR. Cell viability was determined by the MTT assay. MitoSOX Red and JC-1 were used to evaluate intracellular production of reactive oxygen species and mitochondrial membrane potential, respectively. Lactate dehydrogenase release and superoxide dismutase activity were assessed with commercial kits. The protein levels of DRP1, p62, BECN1(beclin 1) and BNIP3 were determined by western blotting. The interaction between NEAT1 (DRP1) and miR-150-5p was verified by a dual-luciferase reporter assay and an RNA immunoprecipitation assay. Our results showed that in response to high glucose the NEAT1 and DRP1 levels were upregulated, whereas the miR-150-5p level was downregulated in HK-2 cells. Knockdown of NEAT1 or DRP1 in high glucose-challenged HK-2 cells inhibited excessive reactive oxygen species production and lactate dehydrogenase release, increased cell viability, mitochondrial membrane potential and superoxide dismutase activity and enhanced mitophagy. Inhibition of miR-150-5p resulted in the opposite results. Mechanistically, NEAT1 sponged miR-150-5p to increase the DRP1 level. Moreover, silencing of NEAT1 or DRP1 could counteract miR-150-5p inhibition-induced deleterious effects. Collectively, our findings indicate that NEAT1 facilitates high glucose-induced damage in HK-2 cells by suppressing mitophagy via the miR-150-5p-DRP 1 axis, which sheds light on a novel mechanism of DN.

摘要

新发现

本研究的核心问题是什么?糖尿病肾病(DN)是糖尿病的一种严重并发症,与糖尿病患者较高的死亡率相关。肾小管损伤参与了DN的发病机制。我们旨在揭示NEAT1 - miR - 150 - 5p - DRP1轴在DN体外模型中的生物学功能,并阐述其潜在机制。主要发现及其重要性是什么?NEAT1通过miR - 150 - 5p - DRP1轴减少线粒体自噬,促进高糖诱导的HK - 2细胞损伤,这为DN的发病机制提供了新线索,并揭示了一种潜在的DN治疗方法。

摘要

糖尿病肾病(DN)是糖尿病患者的一种严重并发症,死亡率很高。肾小管损伤参与了DN的发病机制。在本研究中,我们旨在揭示NEAT1 - miR - 150 - 5p - DRP1轴在DN体外模型中的调控作用及其可能机制。将高糖刺激的HK - 细胞用作DN体外模型。通过RT - qPCR评估NEAT1、miR - 150 - 5p和DRP1水平。通过MTT法测定细胞活力。分别使用MitoSOX Red和JC - 1评估细胞内活性氧的产生和线粒体膜电位。使用商业试剂盒评估乳酸脱氢酶释放和超氧化物歧化酶活性。通过蛋白质免疫印迹法测定DRP1、p62、BECN1(贝林1)和BNIP3的蛋白水平。通过双荧光素酶报告基因检测和RNA免疫沉淀检测验证NEAT1(DRP1)与miR - 150 - 5p之间的相互作用。我们的结果表明,在高糖刺激下,HK - 2细胞中NEAT1和DRP1水平上调,而miR - 150 - 5p水平下调。在高糖刺激的HK - 2细胞中敲低NEAT1或DRP1可抑制过量活性氧的产生和乳酸脱氢酶的释放,增加细胞活力、线粒体膜电位和超氧化物歧化酶活性,并增强线粒体自噬。抑制miR - 150 - 5p则产生相反的结果。机制上,NEAT1吸附miR - 150 - 5p以增加DRP1水平。此外,沉默NEAT1或DRP1可抵消miR - 150 - 5p抑制诱导的有害作用。总体而言,我们的研究结果表明,NEAT1通过miR - 150 - 5p - DRP1轴抑制线粒体自噬,促进高糖诱导的HK - 2细胞损伤,这为DN的新机制提供了线索。

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