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Canagliflozin Mediates Mitophagy Through the AMPK/PINK1/Parkin Pathway to Alleviate ISO-induced Cardiac Remodeling
Shaolin Gong1, Yuan Sui1, Mengxuan Xiao1
1Department of Cardiology, The First Affiliated Hospital, Jiangxi Medical College, Nanchang University, Nanchang, Jiangxi, China ; and.
Abstract:
Heart failure has always been a prevalent, disabling, and potentially life-threatening disease. For the treatment of heart failure, controlling cardiac remodeling is very important. In recent years, clinical trials have shown that sodium-glucose cotransporter-2 (SGLT-2) inhibitors not only excel in lowering glucose levels but also demonstrate favorable cardiovascular protective effects. However, the precise mechanisms behind the cardiovascular benefits of SGLT-2 inhibitors remain elusive. In this research, we assessed the impact of canagliflozin (CANA, an SGLT-2 inhibitor) on cardiac remodeling progression in mice and preliminarily elucidated the possible mechanism of action of the SGLT-2 inhibitor. Our results indicate that the administration of canagliflozin significantly attenuates myocardial hypertrophy and fibrosis and enhances cardiac ejection function in mice with isoprenaline (ISO)-induced cardiac remodeling. Notably, excessive mitophagy, along with mitochondrial structural abnormalities observed in ISO-induced cardiac remodeling, was mitigated by canagliflozin treatment, thereby attenuating cardiac remodeling progression. Furthermore, the differential expression of AMPK/PINK1/Parkin pathway-related proteins in ISO-induced cardiac remodeling was effectively reversed by canagliflozin, suggesting the therapeutic potential of targeting this pathway with the drug. Thus, our study indicates that canagliflozin holds promise in mitigating cardiac injury, enhancing cardiac function, and potentially exerting cardioprotective effects by modulating mitochondrial function and mitophagy through the AMPK/PINK1/Parkin pathway.
Insights
Sodium-glucose cotransporter-2 (SGLT-2) inhibitors like canagliflozin reduce cardiac remodeling in mice. This cardioprotective effect involves modulating mitochondrial function and mitophagy via the AMPK/PINK1/Parkin pathway.
Area of Science:
- Cardiology
- Pharmacology
- Mitochondrial Biology
Background:
- Heart failure is a major health concern, with cardiac remodeling a key factor in its progression.
- Sodium-glucose cotransporter-2 (SGLT-2) inhibitors show cardiovascular benefits beyond glucose control, but mechanisms are unclear.
- Controlling cardiac remodeling is crucial for effective heart failure treatment.
Purpose of the Study:
- To investigate the impact of canagliflozin on cardiac remodeling in a mouse model.
- To explore the underlying mechanisms of canagliflozin's cardioprotective effects, focusing on mitochondrial function and mitophagy.
Main Methods:
- Induction of cardiac remodeling in mice using isoprenaline (ISO).
- Administration of canagliflozin (CANA) to assess its effects on cardiac structure and function.
- Analysis of mitochondrial function, mitophagy, and the AMPK/PINK1/Parkin pathway.
Main Results:
- Canagliflozin significantly attenuated myocardial hypertrophy and fibrosis in ISO-induced cardiac remodeling.
- Cardiac ejection function was enhanced by canagliflozin treatment.
- Canagliflozin mitigated excessive mitophagy and mitochondrial abnormalities, reversing altered AMPK/PINK1/Parkin pathway protein expression.
Conclusions:
- Canagliflozin demonstrates potential in mitigating cardiac injury and enhancing cardiac function.
- Modulation of mitochondrial function and mitophagy via the AMPK/PINK1/Parkin pathway is a likely mechanism for canagliflozin's cardioprotective effects.
- Canagliflozin shows promise as a therapeutic agent for heart failure by targeting cardiac remodeling.
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