Liraglutide reduces coronary endothelial cells no-reflow damage through activating MAPK/ERK signaling pathway
Yi Chen1, Chen Liu1, Peng Zhou1
1Department of Cardiology, Fuwai Hospital, National Center for Cardiovascular Diseases, Peking Union Medical College, Chinese Academy of Medical Sciences, Beijing, China.
Insights
Liraglutide, an anti-diabetic drug, protects against coronary no-reflow damage by preventing endothelial cell apoptosis and preserving mitochondrial function via the MAPK/ERK pathway.
Area of Science:
- Cardiovascular Research
- Endothelial Cell Biology
- Pharmacology
Background:
- Coronary no-reflow damage results from endothelial cell injury, with limited therapeutic options.
- Liraglutide, an anti-diabetic medication, demonstrates known cardioprotective effects.
Purpose of the Study:
- To investigate liraglutide's protective role against hydrogen peroxide-induced coronary endothelial cell damage.
- To elucidate the molecular mechanisms underlying liraglutide's effects on endothelial cells.
Main Methods:
- Hydrogen peroxide was used to induce in vitro coronary no-reflow damage in endothelial cells.
- Cell viability, apoptosis, caspase-3 activation, mitochondrial membrane potential, and ERK pathway activation were assessed.
- Liraglutide treatment was administered to evaluate its protective effects.
Main Results:
- Liraglutide significantly improved endothelial cell viability and reduced apoptosis induced by hydrogen peroxide.
- Liraglutide inhibited caspase-3 activation and restored mitochondrial membrane potential.
- Liraglutide promoted ERK pathway activation, suggesting its role in endothelial cell survival.
Conclusions:
- Liraglutide attenuates hydrogen peroxide-mediated endothelial cell damage.
- The protective effects of liraglutide involve the modulation of the MAPK/ERK signaling pathway.
- Liraglutide presents a potential therapeutic strategy for coronary no-reflow damage in myocardial infarction.
Abstract:
Coronary no-reflow damage is caused by endothelial cell damage although little drug is available to intervene in coronary no-reflow. Liraglutide is a kind of anti-diabetic drug and its cardioprotective role has been widely reported. In this study, we explored the role of liraglutide in regulating coronary endothelial cell damage. We used hydrogen peroxide to mimic coronary no-reflow damage in vitro. After exposure to hydrogen peroxide, endothelial cells' viability was significantly reduced, an effect that was followed by an increase in cell apoptosis. Interestingly, liraglutide treatment obviously upregulated endothelial cell viability and thus prevented cell apoptosis. Further, we also found that liraglutide inhibited the activation of caspase-3 in hydrogen peroxide-treated endothelial cells. Besides, cellular metabolism, as reflected by mitochondrial membrane potential, was disrupted by hydrogen peroxide and reversed to normal levels with liraglutide. Further, we found that the ERK pathway is a potential downstream effector of liraglutide. Administration of liraglutide significantly promoted the activation of ERK and this effect may contribute to endothelial cell survival. Altogether, our results illustrated that hydrogen peroxide-mediated endothelial cell damage could be attenuated by liraglutide through modulation of the MAPK/ERK signaling pathway. This finding will pave a novel road for the intervention of coronary no-reflow damage in patients suffering from myocardial infarction.
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