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DRP1S600 磷酸化调节糖尿病小鼠的线粒体分裂和肾病进展。

Drp1S600 phosphorylation regulates mitochondrial fission and progression of nephropathy in diabetic mice.

机构信息

Section of Nephrology, The University of Texas at MD Anderson Cancer Center, Houston, Texas, USA.

Department of Pharmacology and Chemical Biology, Baylor College of Medicine, Houston, Texas, USA.

出版信息

J Clin Invest. 2019 May 7;129(7):2807-2823. doi: 10.1172/JCI127277.

Abstract

Phosphorylation of Dynamin-related protein1 (Drp1) represents an important regulatory mechanism for mitochondrial fission. Here we established the role of Drp1 Serine 600 (S600) phosphorylation on mitochondrial fission in vivo, and assessed the functional consequences of targeted elimination of the Drp1S600 phosphorylation site in progression of diabetic nephropathy (DN). We generated a knockin mouse in which S600 was mutated to alanine (Drp1S600A). We found that diabetic Drp1S600A mice exhibited improved biochemical and histological features of DN along with reduced mitochondrial fission and diminished mitochondrial ROS in vivo. Importantly, we observed that the effect of Drp1S600 phosphorylation on mitochondrial fission in the diabetic milieu was stimulus- but not cell type-dependent. Mechanistically, we showed that mitochondrial fission in high glucose conditions occurs through concomitant binding of phospho-Drp1S600 with mitochondrial fission factor (Mff) and actin-related protein 3 (Arp3), ultimately leading to accumulation of F-actin and Drp1 on the mitochondria. Taken together, these findings establish that a single phosphorylation site in Drp1 can regulate mitochondrial fission and progression of DN in vivo, and highlight the stimulus-specific consequences of Drp1S600 phosphorylation on mitochondrial dynamics.

摘要

磷酸化动力相关蛋白 1(Drp1)是线粒体裂变的重要调节机制。本研究旨在体内建立 Drp1 丝氨酸 600(S600)磷酸化在粒体裂变中的作用,并评估靶向消除 Drp1S600 磷酸化位点在糖尿病肾病(DN)进展中的功能后果。我们构建了 S600 突变为丙氨酸的 Drp1 敲入小鼠(Drp1S600A)。研究发现,糖尿病 Drp1S600A 小鼠表现出改善的生化和组织学特征的 DN 以及体内减少的线粒体裂变和减少的线粒体 ROS。重要的是,我们观察到 Drp1S600 磷酸化对糖尿病环境中线粒体裂变的影响是刺激而不是细胞类型依赖性的。在机制上,我们表明高葡萄糖条件下的线粒体裂变是通过磷酸化 Drp1S600 与线粒体裂变因子(Mff)和肌动蛋白相关蛋白 3(Arp3)的同时结合而发生的,最终导致 F-肌动蛋白和 Drp1 在线粒体上的积累。总之,这些发现确立了 Drp1 中的一个单一磷酸化位点可以调节体内线粒体裂变和 DN 的进展,并强调了 Drp1S600 磷酸化对线粒体动力学的刺激特异性后果。

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