足细胞
线粒体分裂
细胞生物学
肾小球硬化
线粒体
第一季
线粒体生物发生
线粒体融合
化学
细胞凋亡
脂毒性
活性氧
内科学
药理学
内分泌学
肾
生物
糖尿病
医学
生物化学
蛋白尿
胰岛素抵抗
线粒体DNA
基因
作者
Xin Qin,Yan Zhao,Jing Gong,Wenya Huang,Hao Su,Fen Yuan,Ke Fang,Dingkun Wang,Jingbin Li,Xin Zou,Lijun Xu,Hui Dong,Fuer Lu
出处
期刊:Theranostics
[Ivyspring International Publisher]
日期:2019-01-01
卷期号:9 (6): 1698-1713
被引量:135
摘要
Elevated levels of plasma free fatty acid (FFA) and disturbed mitochondrial dynamics play crucial roles in the pathogenesis of diabetic kidney disease (DKD).However, the mechanisms by which FFA leads to mitochondrial damage in glomerular podocytes of DKD and the effects of Berberine (BBR) on podocytes are not fully understood.Methods: Using the db/db diabetic mice model and cultured mouse podocytes, we investigated the molecular mechanism of FFA-induced disturbance of mitochondrial dynamics in podocytes and testified the effects of BBR on regulating mitochondrial dysfunction, podocyte apoptosis and glomerulopathy in the progression of DKD.Results: Intragastric administration of BBR for 8 weeks in db/db mice significantly reversed glucose and lipid metabolism disorders, podocyte damage, basement membrane thickening, mesangial expansion and glomerulosclerosis.BBR strongly inhibited podocyte apoptosis, increased reactive oxygen species (ROS) generation, mitochondrial fragmentation and dysfunction both in vivo and in vitro.Mechanistically, BBR could stabilize mitochondrial morphology in podocytes via abolishing palmitic acid (PA)-induced activation of dynamin-related protein 1 (Drp1).Conclusions: Our study demonstrated for the first time that BBR may have a previously unrecognized role in protecting glomerulus and podocytes via positively regulating Drp1-mediated mitochondrial dynamics.It might serve as a novel therapeutic drug for the treatment of DKD.
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