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Empagliflozin attenuates cardiac microvascular ischemia/reperfusion through activating the
Chen Cai1, Zhongzhou Guo2, Xing Chang3
1Department of Critical Care Medicine, Nanfang Hospital, Southern Medical University/The First School of Clinical Medicine, Southern Medical University, Guangzhou, 510515, China.
Abstract:
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.
Insights
Empagliflozin protects the heart
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Pharmacology
Background:
- Myocardial ischemia/reperfusion (I/R) injury damages cardiac microvasculature.
- Mitophagy is crucial for maintaining microvascular integrity during I/R.
- Empagliflozin, an anti-diabetic drug, shows potential mitochondrial protective effects.
Purpose of the Study:
- To investigate if empagliflozin reduces cardiac microvascular I/R injury by enhancing mitophagy.
- To elucidate the molecular mechanisms underlying empagliflozin's protective effects.
Main Methods:
- In vivo studies using mouse models of myocardial I/R injury.
- In vitro experiments with cardiac microvascular endothelial cells (CMECs).
- Assessment of microvascular structure, endothelial barrier function, mitochondrial dynamics, oxidative stress, and apoptosis.
- Molecular analysis of the AMPKα1/ULK1/FUNDC1 pathway and mitophagy.
Main Results:
- I/R injury caused microvascular damage, endothelial dysfunction, and mitochondrial dysfunction in CMECs.
- Empagliflozin preserved CMEC homeostasis, normalized mitochondrial function, and reduced oxidative stress and apoptosis.
- Empagliflozin activated FUNDC1-dependent mitophagy via the AMPKα1/ULK1 pathway.
- Genetic deletion of AMPKα1 or FUNDC1 abolished empagliflozin's protective effects.
Conclusions:
- Empagliflozin attenuates cardiac microvascular I/R injury by activating FUNDC1-dependent mitophagy.
- The AMPKα1/ULK1/FUNDC1 pathway mediates empagliflozin's protective mechanism.
- Empagliflozin offers a potential therapeutic strategy for myocardial I/R injury.
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