AMP-Activated Protein Kinase α2 Deficiency Affects Cardiac Cardiolipin Homeostasis and Mitochondrial Function

Author:

Athéa Yoni123,Viollet Benoît4567,Mateo Philippe123,Rousseau Delphine238,Novotova Marta9,Garnier Anne123,Vaulont Sophie4567,Wilding James R.123,Grynberg Alain238,Veksler Vladimir123,Hoerter Jacqueline123,Ventura-Clapier Renée123

Affiliation:

1. Institut National de la Santé et de la Recherche Médicale U769, Châtenay-Malabry, France

2. Université Paris-Sud 11, Châtenay-Malabry, France

3. Institut Fédératif de Recherche 141, Châtenay-Malabry, France

4. Institut Cochin, Département Endocrinologie Métabolisme et Cancer, Paris, France

5. Institut National de la Santé et de la Recherche Médicale U567, Paris, France

6. Centre National de la Recherche Scientifique, Unité Mixte de Recherche 8104, Paris, France

7. Université Paris 5, Faculté de Médecine René Descartes, Unité mixte 3, Paris, France

8. Institut National de la Recherche Agronomique-Unité Mixte de Recherche 1154, Châtenay-Malabry, France

9. Institute of Molecular Physiology and Genetics, Slovak Academy of Sciences, Bratislava, Slovak Republic

Abstract

AMP-activated protein kinase (AMPK) plays an important role in controlling energy homeostasis and is envisioned as a promising target to treat metabolic disorders. In the heart, AMPK is involved in short-term regulation and in transcriptional control of proteins involved in energy metabolism. Here, we investigated whether deletion of AMPKα2, the main cardiac catalytic isoform, alters mitochondrial function and biogenesis. Body weight, heart weight, and AMPKα1 expression were similar in control littermate and AMPKα2−/− mice. Despite normal oxygen consumption in perfused hearts, maximal oxidative capacity, measured using saponin permeabilized cardiac fibers, was ∼30% lower in AMPKα2−/− mice with octanoate, pyruvate, or glutamate plus malate but not with succinate as substrates, showing an impairment at complex I of the respiratory chain. This effect was associated with a 25% decrease in mitochondrial cardiolipin content, the main mitochondrial membrane phospholipid that is crucial for complex I activity, and with a 13% decrease in mitochondrial content of linoleic acid, the main fatty acid of cardiolipins. The decrease in cardiolipin content could be explained by mRNA downregulation of rate-limiting enzymes of both cardiolipin synthesis (CTP:PA cytidylyltransferase) and remodeling (acyl-CoA:lysocardiolipin acyltransferase 1). These data reveal a new role for AMPKα2 subunit in the regulation of cardiac muscle oxidative capacity via cardiolipin homeostasis.

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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