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Published on: May 26, 2023
Simvastatin protects high glucose-induced H9c2 cells from injury by inducing autophagy
1Department of Cardiology, Inner Mongolia People's Hospital, Hohhot, China.
Insights
Simvastatin protects cardiomyocytes from high glucose injury by activating autophagy, reducing apoptosis, and improving cell viability. This finding supports simvastatin
Area of Science:
- Cardiovascular Research
- Cell Biology
- Pharmacology
Background:
- Simvastatin is a primary treatment for coronary heart disease and atherosclerosis.
- The precise mechanism of simvastatin's protective effects on cardiomyocytes remains incompletely understood.
- High glucose levels are known to induce cardiomyocyte injury, a critical factor in cardiovascular complications.
Purpose of the Study:
- To investigate the protective effects of simvastatin against high glucose-induced injury in H9c2 cardiomyocytes.
- To elucidate the role of autophagy in mediating simvastatin's protective actions.
- To explore potential therapeutic applications of simvastatin, particularly in diabetes-associated cardiovascular diseases.
Main Methods:
- H9c2 cells were exposed to varying glucose concentrations to induce injury.
- Simvastatin pre-treatment was employed to assess its protective effects and impact on autophagy.
- Autophagy inhibition using 3-MA was utilized to confirm the role of autophagy.
- Cell viability (CCK-8), apoptosis (FACS), and protein expression (Western blotting, immunofluorescence) were analyzed.
Main Results:
- High glucose significantly reduced H9c2 cell viability and increased apoptosis.
- Simvastatin treatment attenuated high glucose-induced injury by decreasing apoptosis and modulating Bcl-2, Bax, and caspase-3 expression.
- Simvastatin restored suppressed autophagy, evidenced by increased ATG-5, Beclin1, and LC3II/LC3I, and decreased p62 levels.
Conclusions:
- Simvastatin exerts myocardial protective effects by activating autophagy, thereby mitigating high glucose-induced cardiomyocyte injury.
- The findings provide a mechanistic basis for simvastatin's clinical use in cardiovascular diseases.
- Simvastatin shows potential for treating diabetes-associated cardiovascular complications.
Context:
Simvastatin is the first line therapeutic drug for coronary heart disease and atherosclerosis. The protective effect mechanism of simvastatin on cardiomyocytes is unclear.
Objective:
This study explores the effect of simvastatin on high glucose induced cardiomyocyte injury and the role of autophagy during the process.
Materials And Methods:
H9c2 cells were incubated with different doses of glucose (0, 50, 100, 200 mM) for 24 h to verify the glucose induced injury. The H9c2 cells were pre-treated with simvastatin at different dosages (0, 0.1, 0.5, 1 μM) for 30 min to rescue the injury followed by the autophagy evaluation. 3-MA was used as an autophagy inhibitor to confirm the role of autophagy in simvastatin treated process. CCK-8 assay, FACS assay, confocal microscopy, western blotting and immunofluorescence analysis were conducted to evaluate the high glucose induced injury or protective effects of simvastatin in H9c2 cell line.
Results:
High glucose dramatically decreased H9c2 cell viability (0 mM, 0.58 ± 0.09%; vs. 50 mM, 8.67 ± 0.43%; 100 mM, 16.1 ± 3.56%; 200 mM, 32.9 ± 2.63%), induced significant cell apoptosis (0 mM, 0.96 ± 0.16%, vs. 50 mM, 7.00 ± 0.63%; 100 mM, 12.9 ± 0.78%; 200 mM, 21.8 ± 1.17%) and suppressed cell autophagy. Simvastatin decreased apoptosis and attenuate injury by decreasing cell apoptosis ratio, elevating Bcl-2 expression while decreasing Bax and caspase-3 protein expressions. Meanwhile, simvastatin restored the autophagy depicted by western blotting with increased ATG-5, Beclin1 and LC3II/LC3I protein expression and decreased p62 expression, as well as immunofluorescence with elevated LC3 fluorescence density.
Discussion And Conclusions:
The myocardial protective effect mediated by autophagy activated by simvastatin to some extent elucidated the mechanism of the protective effect of simvastatin on H9c2 cell injury, which provided a certain theoretical basis for the clinical application of simvastatin in the treatment of cardiovascular diseases. In addition, we speculate that simvastatin may be used for diabetes associated cardiovascular diseases.
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