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Deficiency in AMP-activated protein kinase exaggerates high fat diet-induced cardiac hypertrophy and contractile
Subat Turdi1, Machender R Kandadi, Junxing Zhao
1Division of Pharmaceutical Sciences, Center for Cardiovascular Research and Alternative Medicine, University of Wyoming, Laramie, WY 82071, USA.
Abstract:
AMPK, a metabolic sensor, protects against ischemic injury and cardiac hypertrophy although its role in obesity is unclear. This study was designed to examine the impact of AMPK deficiency on cardiac dysfunction following high fat feeding. Adult WT and transgenic mice overexpressing a kinase dead (KD) α2 isoform (K45R mutation) of AMPK were fed a low or high fat diet for 20 weeks. DEXA was used to confirm adiposity. Wheat germ agglutinin immunostaining was used to evaluate myocardial histology. Myocardial function was evaluated using echocardiography and edge-detection. AMPK activity was analyzed using fluorescence polarization assays. [1-(14)C] oleate was used to determine fatty acid oxidation. Expression of AMPK, α1, α2, ACC, Akt, the Glut-4 translocation mediator Akt substrate of 160KD (AS160), mTOR, total and membrane Glut-4 was evaluated using Western blot. AMPK activity was decreased in KD mice regardless of diet regimen. High fat diet led to obesity, glucose intolerance and cardiac hypertrophy with accentuated glucose intolerance, dampened fatty acid oxidation and cardiac hypertrophy in KD mice. High fat feeding triggered lower fractional shortening, increased LV mass, left ventricular end diastolic/systolic diameter, decreased PS, ± dL/dt, prolonged TR(90) and intracellular Ca(2+) mishandling with a more pronounced effect in KD mice. High fat diet and AMPK KD lessened AMPKα2 isoform activity and ACC phosphorylation. AMPK deficiency unveiled or accentuated high fat diet-induced decrease in phosphorylation of Akt and AS160, membrane fraction of Glut-4 and mTOR expression (a greater mTOR phosphorylation). Taken together, these data suggest that AMPK deficiency exacerbates obesity-induced cardiac hypertrophy and contractile dysfunction, possibly associated with AS160 and mTOR signaling.
Insights
AMPK deficiency worsens cardiac dysfunction and hypertrophy in obese mice. This suggests AMPK is crucial for maintaining heart health during high-fat diets.
Area of Science:
- Cardiology
- Metabolism
- Molecular Biology
Background:
- AMP-activated protein kinase (AMPK) is a key metabolic sensor.
- Its role in obesity-related cardiac dysfunction is not well understood.
- This study investigates AMPK's impact on heart health during high-fat feeding.
Purpose of the Study:
- To examine the effect of AMPK deficiency on cardiac dysfunction in mice fed a high-fat diet.
- To elucidate the molecular mechanisms underlying AMPK's protective role in obesity-induced cardiac conditions.
Main Methods:
- Adult wild-type (WT) and AMPK kinase-dead (KD) α2 isoform mice were fed low or high-fat diets for 20 weeks.
- Assessed adiposity (DEXA), myocardial histology, cardiac function (echocardiography), fatty acid oxidation, and protein expression (Western blot).
- Measured AMPK activity and phosphorylation of key signaling proteins like ACC, Akt, AS160, and mTOR.
Main Results:
- AMPK deficiency reduced AMPK activity and exacerbated high-fat diet-induced obesity, glucose intolerance, and cardiac hypertrophy.
- KD mice showed impaired cardiac function, including reduced fractional shortening and increased LV mass.
- AMPK deficiency accentuated decreases in Akt/AS160 phosphorylation and impaired glucose transporter 4 (Glut-4) translocation, alongside altered mTOR signaling.
Conclusions:
- AMPK deficiency exacerbates obesity-induced cardiac hypertrophy and contractile dysfunction.
- These effects are potentially mediated by dysregulation of AS160 and mTOR signaling pathways.
- AMPK plays a vital protective role against high-fat diet-induced cardiac complications.
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