Mitochondrial Oxidative Stress Mediates Angiotensin II–Induced Cardiac Hypertrophy and Gαq Overexpression–Induced Heart Failure

Author:

Dai Dao-Fu1,Johnson Simon C.1,Villarin Jason J.1,Chin Michael T.1,Nieves-Cintrón Madeline1,Chen Tony1,Marcinek David J.1,Dorn Gerald W.1,Kang Y. James1,Prolla Tomas A.1,Santana Luis F.1,Rabinovitch Peter S.1

Affiliation:

1. From the Departments of Pathology (D.-F.D., S.C.J., T.C., P.S.R.), Radiology (J.J.V., D.J.M.), Cardiovascular Medicine (M.T.C.), Physiology and Biophysics (M.N.-C., L.F.S.), University of Washington, Seattle; Department of Internal Medicine (G.W.D.), Washington University School of Medicine, St Louis, MO; Departments of Medicine and Pharmacology and Toxicology (Y.J.K.), University of Louisville School of Medicine, KY; and Department of Genetics and Medical Genetics (T.A.P.), University of...

Abstract

Rationale: Mitochondrial dysfunction has been implicated in several cardiovascular diseases; however, the roles of mitochondrial oxidative stress and DNA damage in hypertensive cardiomyopathy are not well understood. Objective: We evaluated the contribution of mitochondrial reactive oxygen species (ROS) to cardiac hypertrophy and failure by using genetic mouse models overexpressing catalase targeted to mitochondria and to peroxisomes. Methods and Results: Angiotensin II increases mitochondrial ROS in cardiomyocytes, concomitant with increased mitochondrial protein carbonyls, mitochondrial DNA deletions, increased autophagy and signaling for mitochondrial biogenesis in hearts of angiotensin II–treated mice. The causal role of mitochondrial ROS in angiotensin II–induced cardiomyopathy is shown by the observation that mice that overexpress catalase targeted to mitochondria, but not mice that overexpress wild-type peroxisomal catalase, are resistant to cardiac hypertrophy, fibrosis and mitochondrial damage induced by angiotensin II, as well as heart failure induced by overexpression of Gαq. Furthermore, primary damage to mitochondrial DNA, induced by zidovudine administration or homozygous mutation of mitochondrial polymerase γ, is also shown to contribute directly to the development of cardiac hypertrophy, fibrosis and failure. Conclusions: These data indicate the critical role of mitochondrial ROS in cardiac hypertrophy and failure and support the potential use of mitochondrial-targeted antioxidants for prevention and treatment of hypertensive cardiomyopathy.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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