DsbA-L缺乏加重糖尿病肾病小管细胞线粒体功能障碍。

Peng Gao, Ming Yang, Xianghui Chen, Shan Xiong, Jiahao Liu, Lin Sun
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引用次数: 20

摘要

过度线粒体分裂已被确定为糖尿病肾病(DKD)的中心发病机制,但其确切机制尚不清楚。二硫键A氧化还原酶样蛋白(DsbA-L)在肾小管细胞的线粒体中高度表达,但其在DKD中的病理生理作用尚不清楚。我们的生物信息学分析显示,CKD患者小管DsbA-L mRNA水平与eGFR呈正相关,但与Scr和24小时蛋白尿呈负相关。此外,与DsbA-L共表达的基因主要富集于线粒体,并参与氧化磷酸化。在体内,敲除DsbA-L可加重糖尿病小鼠小管细胞线粒体断裂、氧化应激和肾损伤。在体外,我们发现DsbA-L定位于HK-2细胞的线粒体中。高糖(HG, 30 mM)处理降低了DsbA-L的表达,随后增加了线粒体ROS (mtROS)的产生和线粒体断裂。此外,DsbA-L敲低加剧了这些异常,但这种作用被DsbA-L的过表达逆转。从机制上讲,在HG条件下,敲低DsbA-L表达增强了HK-2细胞中JNK的磷酸化。此外,给药JNK抑制剂(SP600125)或mtROS清除剂MitoQ显著减弱了dsba - l敲低的HK-2细胞中JNK的激活和随后的线粒体断裂。此外,DsbA-L的下调还通过JNK途径扩增了线粒体裂变因子(MFF)的基因和蛋白表达,增强了其招募DRP1进入线粒体的能力。综上所述,这些结果将DsbA-L与DKD发病过程中小管损伤期间线粒体动力学的改变联系起来,并揭示了DsbA-L修饰mtROS/JNK/ mff相关线粒体裂变的新机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DsbA-L deficiency exacerbates mitochondrial dysfunction of tubular cells in diabetic kidney disease.

Excessive mitochondrial fission has been identified as the central pathogenesis of diabetic kidney disease (DKD), but the precise mechanisms remain unclear. Disulfide-bond A oxidoreductase-like protein (DsbA-L) is highly expressed in mitochondria in tubular cells of the kidney, but its pathophysiological role in DKD is unknown. Our bioinformatics analysis showed that tubular DsbA-L mRNA levels were positively associated with eGFR but negatively associated with Scr and 24h-proteinuria in CKD patients. Furthermore, the genes that were coexpressed with DsbA-L were mainly enriched in mitochondria and were involved in oxidative phosphorylation. In vivo, knockout of DsbA-L exacerbated diabetic mice tubular cell mitochondrial fragmentation, oxidative stress and renal damage. In vitro, we found that DsbA-L was localized in the mitochondria of HK-2 cells. High glucose (HG, 30 mM) treatment decreased DsbA-L expression followed by increased mitochondrial ROS (mtROS) generation and mitochondrial fragmentation. In addition, DsbA-L knockdown exacerbated these abnormalities, but this effect was reversed by overexpression of DsbA-L. Mechanistically, under HG conditions, knockdown DsbA-L expression accentuated JNK phosphorylation in HK-2 cells. Furthermore, administration of a JNK inhibitor (SP600125) or the mtROS scavenger MitoQ significantly attenuated JNK activation and subsequent mitochondrial fragmentation in DsbA-L-knockdown HK-2 cells. Additionally, the down-regulation of DsbA-L also amplified the gene and protein expression of mitochondrial fission factor (MFF) via the JNK pathway, enhancing its ability to recruit DRP1 to mitochondria. Taken together, these results link DsbA-L to alterations in mitochondrial dynamics during tubular injury in the pathogenesis of DKD and unveil a novel mechanism by which DsbA-L modifies mtROS/JNK/MFF-related mitochondrial fission.

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