Mouse Cardiac Acyl Coenzyme A Synthetase 1 Deficiency Impairs Fatty Acid Oxidation and Induces Cardiac Hypertrophy

Author:

Ellis Jessica M.1,Mentock Shannon M.1,DePetrillo Michael A.1,Koves Timothy R.2,Sen Shiraj3,Watkins Steven M.4,Muoio Deborah M.2,Cline Gary W.5,Taegtmeyer Heinrich3,Shulman Gerald I.56,Willis Monte S.7,Coleman Rosalind A.1

Affiliation:

1. Department of Nutrition, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599

2. Department of Medicine, Duke University, Durham, North Carolina 27708

3. Division of Cardiology, Department of Internal Medicine, University of Texas Medical School at Houston, Houston, Texas 77030

4. Lipomics Technologies, Inc., 2545 Boatman Ave., West Sacramento, California 95691

5. Departments of Internal Medicine and of Cellular and Molecular Physiology, Yale University School of Medicine, New Haven, Connecticut 06520

6. Howard Hughes Medical Institute, Yale University School of Medicine, New Haven, Connecticut 06520

7. Department of Pathology, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599

Abstract

ABSTRACT Long-chain acyl coenzyme A (acyl-CoA) synthetase isoform 1 (ACSL1) catalyzes the synthesis of acyl-CoA from long-chain fatty acids and contributes the majority of cardiac long-chain acyl-CoA synthetase activity. To understand its functional role in the heart, we studied mice lacking ACSL1 globally ( Acsl1 T −/− ) and mice lacking ACSL1 in heart ventricles ( Acsl1 H −/− ) at different times. Compared to littermate controls, heart ventricular ACSL activity in Acsl1 T −/− mice was reduced more than 90%, acyl-CoA content was 65% lower, and long-chain acyl-carnitine content was 80 to 90% lower. The rate of [ 14 C]palmitate oxidation in both heart homogenate and mitochondria was 90% lower than in the controls, and the maximal rates of [ 14 C]pyruvate and [ 14 C]glucose oxidation were each 20% higher. The mitochondrial area was 54% greater than in the controls with twice as much mitochondrial DNA, and the mRNA abundance of Pgc1 α and Err α increased by 100% and 41%, respectively. Compared to the controls, Acsl1 T −/− and Acsl1 H −/− hearts were hypertrophied, and the phosphorylation of S6 kinase, a target of mammalian target of rapamycin (mTOR) kinase, increased 5-fold. Our data suggest that ACSL1 is required to synthesize the acyl-CoAs that are oxidized by the heart, and that without ACSL1, diminished fatty acid (FA) oxidation and compensatory catabolism of glucose and amino acids lead to mTOR activation and cardiac hypertrophy without lipid accumulation or immediate cardiac dysfunction.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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