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自噬障碍介导严重低血糖诱导的糖尿病小鼠心脏恶化。

Mitophagy disorder mediates cardiac deterioration induced by severe hypoglycemia in diabetic mice.

机构信息

Department of Endocrinology, Fujian Medical University Union Hospital, Fuzhou, 350000, China.

Department of Endocrinology, Fujian Medical University Union Hospital, Fuzhou, 350000, China.

出版信息

Mol Cell Endocrinol. 2023 Sep 15;575:111994. doi: 10.1016/j.mce.2023.111994. Epub 2023 Jun 16.

DOI:10.1016/j.mce.2023.111994
PMID:37330037
Abstract

Severe hypoglycemia is closely related to adverse cardiovascular outcomes in patients with diabetes; however, the specific mechanism remains unclear. We previously found that severe hypoglycemia aggravated myocardial injury and cardiac dysfunction in diabetic mice, and that the mechanism of damage was related to mitochondrial oxidative stress and dysfunction. Based on the key regulatory role of mitophagy in mitochondrial quality control, this study aimed to further explore whether the myocardial damage caused by severe hypoglycemia is related to insufficient mitophagy and to clarify their underlying regulatory relationship. After severe hypoglycemia, mitochondrial reactive oxygen species increased, mitochondrial membrane potential and ATP content decreased, and pathological mitochondrial damage was aggravated in the myocardium of diabetic mice. This was accompanied by decreased mitochondrial biosynthesis, increased fusion, and downregulated PTEN-induced kinase 1 (PINK1)/Parkin-dependent mitophagy. Treating diabetic mice with the mitophagy activator and polyphenol metabolite urolithin A activated PINK1/Parkin-dependent mitophagy, reduced myocardial oxidative stress and mitochondrial damage associated with severe hypoglycemia, improved mitochondrial function, alleviated myocardial damage, and ultimately improved cardiac function. Thus, we provide insight into the prevention and treatment of diabetic myocardial injury caused by hypoglycemia to reduce adverse cardiovascular outcomes in patients with diabetes.

摘要

严重低血糖与糖尿病患者的不良心血管结局密切相关;然而,具体机制尚不清楚。我们之前发现严重低血糖可加重糖尿病小鼠的心肌损伤和心功能障碍,其损伤机制与线粒体氧化应激和功能障碍有关。基于自噬在维持线粒体质量控制中的关键调节作用,本研究旨在进一步探讨严重低血糖引起的心肌损伤是否与自噬不足有关,并阐明其潜在的调节关系。在严重低血糖后,糖尿病小鼠心肌中线粒体活性氧增加,线粒体膜电位和 ATP 含量降低,病理性线粒体损伤加重。同时伴有线粒体生物合成减少、融合增加以及 PTEN 诱导的激酶 1(PINK1)/Parkin 依赖性自噬下调。用自噬激活剂和多酚代谢物乌索酸 A 处理糖尿病小鼠可激活 PINK1/Parkin 依赖性自噬,减轻与严重低血糖相关的心肌氧化应激和线粒体损伤,改善线粒体功能,减轻心肌损伤,最终改善心功能。因此,我们深入了解了低血糖引起的糖尿病性心肌损伤的预防和治疗,以减少糖尿病患者的不良心血管结局。

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