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Published on: April 16, 2018
Melatonin Alleviates Cardiac Dysfunction Via Increasing Sirt1-Mediated Beclin-1 Deacetylation and Autophagy During
Qiang-Zhong Pi1, Xiao-Wen Wang2, Zhao-Lei Jian3
1Department of Cardiology, The First Affiliated Hospital of Chongqing Medical University, Chongqing, 400016, China.
Abstract:
Cardiac dysfunction is a major cause leading to multiple organ failure in sepsis. Beclin-1-dependent autophagy has been evidenced to exert protective effects on hearts in sepsis. However, the mechanisms on how Beclin-1 and autophagy are regulated remains enigmatic. To explore the detailed mechanisms controlling Beclin-1-dependent autophagy in septic heart and whether melatonin could protect against sepsis via regulating cardiac autophagy, adult Sprague-Dawley (SD) rats were subjected to cecal ligation and puncture (CLP) to induce sepsis. Rats were intraperitoneally administrated with 30 mg/kg melatonin within 5-min post-CLP surgery. Our data showed that sepsis induced Becline-1 acetylation and inhibited autophagy in hearts, resulting in impaired cardiac function. However, melatonin treatment facilitated Beclin-1 deacetylation and increased autophagy in septic hearts, thus improved cardiac function. Moreover, melatonin increased the expression and activity of Sirtuin 1 (Sirt1), and inhibition of Sirt1 abolished the protective effects of melatonin on Beclin-1 deacetylation and cardiac function. In conclusion, increased Beclin-1 acetylation was involved in impaired autophagy in septic hearts, while melatonin contributed to Beclin-1 deacetylation via Sirt1, leading to improved autophagy and cardiac function in sepsis. Our study sheds light on the important role of Beclin-1 acetylation in regulating autophagy in sepsis and suggests that melatonin is a potential candidate drug for the treatment of sepsis.
Insights
Sepsis impairs heart function by inhibiting autophagy through Beclin-1 acetylation. Melatonin treatment reverses this by promoting Beclin-1 deacetylation via Sirtuin 1, protecting cardiac function in sepsis.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- Sepsis-induced cardiac dysfunction is a critical factor in multiple organ failure.
- Beclin-1-dependent autophagy is known to protect the heart during sepsis.
- The precise regulatory mechanisms of Beclin-1 and autophagy in sepsis remain unclear.
Purpose of the Study:
- To elucidate the mechanisms controlling Beclin-1-dependent autophagy in septic hearts.
- To investigate the protective potential of melatonin in sepsis by modulating cardiac autophagy.
Main Methods:
- Cecal ligation and puncture (CLP) model in adult Sprague-Dawley rats to induce sepsis.
- Administration of melatonin post-CLP surgery.
- Assessment of cardiac function, Beclin-1 acetylation, autophagy levels, and Sirtuin 1 (Sirt1) expression and activity.
Main Results:
- Sepsis led to increased Beclin-1 acetylation, suppressed autophagy, and impaired cardiac function.
- Melatonin treatment reduced Beclin-1 acetylation, enhanced autophagy, and improved cardiac function in septic rats.
- Melatonin increased Sirt1 expression and activity; Sirt1 inhibition negated melatonin's protective effects.
Conclusions:
- Increased Beclin-1 acetylation contributes to impaired cardiac autophagy in sepsis.
- Melatonin protects cardiac function in sepsis by facilitating Beclin-1 deacetylation through Sirt1 activation.
- Melatonin shows promise as a therapeutic agent for sepsis-related cardiac dysfunction.
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