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Targeting mitochondrial dynamics by regulating Mfn2 for therapeutic intervention in diabetic cardiomyopathy

机译:通过调节Mfn2靶向线粒体动力学以治疗糖尿病性心肌病

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Increasing evidence has implicated the important role of mitochondrial pathology in diabetic cardiomyopathy (DCM), while the underlying mechanism remains largely unclear. The aim of this study was to investigate the role of mitochondrial dynamics in the pathogenesis of DCM and its underlying mechanisms. Methods : Obese diabetic (db/db) and lean control (db/+) mice were used in this study. Mitochondrial dynamics were analyzed by transmission electron microscopy in vivo and by confocal microscopy in vitro . Results : Diabetic hearts from 12-week-old db/db mice showed excessive mitochondrial fission and significant reduced expression of Mfn2, while there was no significant alteration or slight change in the expression of other dynamic-related proteins. Reconstitution of Mfn2 in diabetic hearts inhibited mitochondrial fission and prevented the progression of DCM. In an in-vitro study, cardiomyocytes cultured in high-glucose and high-fat (HG/HF) medium showed excessive mitochondrial fission and decreased Mfn2 expression. Reconstitution of Mfn2 restored mitochondrial membrane potential, suppressed mitochondrial oxidative stress and improved mitochondrial function in HG/HF-treated cardiomyocytes through promoting mitochondrial fusion. In addition, the down-regulation of Mfn2 expression in HG/HF-treated cardiomyocytes was induced by reduced expression of PPARα, which positively regulated the expression of Mfn2 by directly binding to its promoter. Conclusion : Our study provides the first evidence that imbalanced mitochondrial dynamics induced by down-regulated Mfn2 contributes to the development of DCM. Targeting mitochondrial dynamics by regulating Mfn2 might be a potential therapeutic strategy for DCM.
机译:越来越多的证据表明线粒体病理学在糖尿病性心肌病(DCM)中起着重要作用,而其潜在机制仍不清楚。这项研究的目的是调查线粒体动力学在DCM的发病机制中的作用及其潜在机制。方法:本研究使用了肥胖糖尿病小鼠(db / db)和瘦身对照组(db / +)。通过体内透射电子显微镜和体外共聚焦显微镜分析线粒体动力学。结果:来自12周龄db / db小鼠的糖尿病心脏显示线粒体过度分裂,Mfn2的表达显着降低,而其他动态相关蛋白的表达则没有显着改变或轻微改变。糖尿病心脏中Mfn2的重建抑制线粒体裂变并阻止了DCM的发展。在一项体外研究中,在高葡萄糖和高脂肪(HG / HF)培养基中培养的心肌细胞显示出过量的线粒体裂变并降低了Mfn2表达。重组Mfn2可通过促进线粒体融合来恢复线粒体膜电位,抑制线粒体氧化应激并改善HG / HF处理的心肌细胞的线粒体功能。另外,通过减少PPARα的表达诱导了HG / HF处理过的心肌细胞中Mfn2表达的下调,PPARα的表达通过直接与其启动子结合而积极调节了Mfn2的表达。结论:我们的研究提供了第一个证据,即下调Mfn2诱导的线粒体动力学失衡有助于DCM的发展。通过调节Mfn2靶向线粒体动力学可能是DCM的潜在治疗策略。

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