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Updated: May 11, 2026

Activating Autophagy by Aerobic Exercise in Mice
Published on: February 3, 2017
Autophagy inhibition rescues against leptin-induced cardiac contractile dysfunction
Machender R Kandadi, Nathan D Roe, Jun Ren1
1Center for Cardiovascular Research and Alternative Medicine, University of Wyoming College of Health Sciences, Laramie, Wyoming 82071. jren@uwyo.edu.
Insights
Leptin impairs heart muscle function by increasing oxidative stress, activating AMPK, and promoting autophagy. Inhibiting these processes can protect against leptin-induced cardiac dysfunction.
Area of Science:
- Cardiology
- Cell Biology
- Molecular Medicine
Background:
- Leptin hormone influences heart function, but mechanisms of leptin-induced cardiomyocyte dysfunction remain unclear.
- Autophagy, a cellular degradation process, is implicated in various cardiac conditions.
Purpose of the Study:
- To investigate the role of autophagy in leptin-induced cardiac contractile anomalies.
- To elucidate the signaling pathways involved in leptin's effects on cardiomyocytes.
Main Methods:
- Cardiomyocyte contractile function assessed using IonOptix edge detection.
- Autophagy markers (LC3-II, Beclin1, Atg 5, p62) and AMPK activation evaluated by immunoblotting.
- Autophagosome formation visualized using GFP-LC3 puncta.
Main Results:
- Leptin suppressed cardiomyocyte contractility, an effect reversed by autophagy inhibition.
- Leptin increased superoxide generation, AMPK activation, and autophagy.
- Inhibition of reactive oxygen species (ROS) and AMPK attenuated leptin-induced effects.
Conclusions:
- Leptin impairs cardiac function via a pathway involving superoxide generation, AMPK activation, and autophagy.
- Targeting these mechanisms may offer therapeutic strategies for leptin-related cardiac dysfunction.
Abstract:
Leptin hormone plays a vital role in the pathophysiological changes in heart geometry and function. Nonetheless, the precise mechanism(s) triggering leptin-induced cardiomyocyte contractile dysfunction is not well understood. The present study was designed to examine if autophagy plays a role in leptin-induced cardiac contractile anomalies. Cardiomyocyte contractile function was evaluated using an IonOptix edge detection system in cardiomyocytes following treatment with leptin in the presence or absence of the autophagy inhibiting chemical 3-methyladenine (3-MA). Immunoblotting was employed to evaluate expression of AMPK, Beclin1, Atg 5, p62 and LC3-II. GFP-LC3 puncta was used to assess autophagosome formation. Leptin suppressed cardiac contractile function as evidenced by decreased peak shortening, maximal velocity of shortening and relengthening, increased time-to-90% relengthening, all the observed effects were reduced or obliterated by autophagy inhibition. Leptin promoted superoxide generation, AMPK activation and overt autophagy induction. Leptin promoted autophagy as evidenced by enhanced LC3-II, Beclin, Atg 5 and decreased p62 levels. Pharmacological inhibition of reactive oxygen species (ROS) using tempol significantly attenuated leptin-induced autophagosome formation and cardiac contractile anomalies. In addition, genetic deletion of AMPKα2 or pharmacological inhibition of AMPK using compound C abrogated leptin or superoxide induced cardiac contractile dysfunction and autophagosome formation. In summary, our data revealed that leptin impairs cardiac contractile function through a superoxide generation-AMPK activation-and autophagy dependent mechanism.
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