粒体自噬
恩帕吉菲
安普克
MFN2型
再灌注损伤
第一季
线粒体分裂
心功能曲线
线粒体ROS
药理学
线粒体
细胞生物学
缺血
氧化应激
医学
内科学
化学
内分泌学
线粒体融合
生物
细胞凋亡
自噬
蛋白激酶A
激酶
生物化学
糖尿病
心力衰竭
2型糖尿病
基因
线粒体DNA
作者
Chen Cai,Zhaoze Guo,Xing Chang,Ziying Li,Feng Wu,Jing He,Tiantian Cao,Kangrong Wang,Nengxian Shi,Hao Zhou,Sam Toan,David Muid,Ying Tan
出处
期刊:Redox biology
[Elsevier]
日期:2022-03-18
卷期号:52: 102288-102288
被引量:103
标识
DOI:10.1016/j.redox.2022.102288
摘要
Mitophagy preserves microvascular structure and function during myocardial ischemia/reperfusion (I/R) injury. Empagliflozin, an anti-diabetes drug, may also protect mitochondria. We explored whether empagliflozin could reduce cardiac microvascular I/R injury by enhancing mitophagy. In mice, I/R injury induced luminal stenosis, microvessel wall damage, erythrocyte accumulation and perfusion defects in the myocardial microcirculation. Additionally, I/R triggered endothelial hyperpermeability and myocardial neutrophil infiltration, which upregulated adhesive factors and endothelin-1 but downregulated vascular endothelial cadherin and endothelial nitric oxide synthase in heart tissue. In vitro, I/R impaired the endothelial barrier function and integrity of cardiac microvascular endothelial cells (CMECs), while empagliflozin preserved CMEC homeostasis and thus maintained cardiac microvascular structure and function. I/R activated mitochondrial fission, oxidative stress and apoptotic signaling in CMECs, whereas empagliflozin normalized mitochondrial fission and fusion, neutralized supraphysiologic reactive oxygen species concentrations and suppressed mitochondrial apoptosis. Empagliflozin exerted these protective effects by activating FUNDC1-dependent mitophagy through the AMPKα1/ULK1 pathway. Both in vitro and in vivo, genetic ablation of AMPKα1 or FUNDC1 abolished the beneficial effects of empagliflozin on the myocardial microvasculature and CMECs. Taken together, the preservation of mitochondrial function through an activation of the AMPKα1/ULK1/FUNDC1/mitophagy pathway is the working mechanism of empagliflozin in attenuating cardiac microvascular I/R injury.
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