Reduced hepatic mitochondrial respiration following acute high-fat diet is prevented by PGC-1α overexpression

Author:

Morris E. Matthew1,Jackman Matthew R.23,Meers Grace M. E.1,Johnson Ginger C.23,Lopez Jordan L.23,MacLean Paul S.243,Thyfault John P.156

Affiliation:

1. Department of Internal Medicine-Gastroenterology, University of Missouri, Columbia, Missouri;

2. Center for Human Nutrition, University of Colorado Denver, Denver, Colorado;

3. Division of Endocrinology, Diabetes, and Metabolism, Department of Medicine, University of Colorado Denver, Denver, Colorado

4. Department of Physiology and Biophysics, University of Colorado Denver, Denver, Colorado; and

5. Department of Nutrition and Exercise Physiology, University of Missouri, Columbia, Missouri;

6. Research Service, Harry S. Truman Memorial Veterans Hospital, Columbia, Missouri;

Abstract

Changes in substrate utilization and reduced mitochondrial respiratory capacity following exposure to energy-dense, high-fat diets (HFD) are putatively key components in the development of obesity-related metabolic disease. We examined the effect of a 3-day HFD on isolated liver mitochondrial respiration and whole body energy utilization in obesity-prone (OP) rats. We also examined if hepatic overexpression of peroxisomal proliferator-activated receptor-γ coactivator-1α (PGC-1α), a master regulator of mitochondrial respiratory capacity and biogenesis, would modify liver and whole body responses to the HFD. Acute, 3-day HFD (45% kcal) in OP rats resulted in increased daily energy intake, energy balance, weight gain, and adiposity, without an increase in liver triglyceride (triacylglycerol) accumulation. HFD-fed OP rats also displayed decreased whole body substrate switching from the dark to the light cycle, which was paired with reductions in hepatic mitochondrial respiration of multiple substrates in multiple respiratory states. Hepatic PGC-1α overexpression was observed to protect whole body substrate switching, as well as maintain mitochondrial respiration, following the acute HFD. Additionally, liver PGC-1α overexpression did not alter whole body dietary fatty acid oxidation but resulted in greater storage of dietary free fatty acids in liver lipid, primarily as triacylglycerol. Together, these data demonstrate that a short-term HFD can result in a decrease in metabolic flexibility and hepatic mitochondrial respiratory capacity in OP rats that is completely prevented by hepatic overexpression of PGC-1α.

Publisher

American Physiological Society

Subject

Physiology (medical),Gastroenterology,Hepatology,Physiology

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