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PMID: 12821241 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Increased myocardial NADPH oxidase activity in human heart failure.

Journal of the American College of Cardiology ·Vol. 41 ·No. 12 ·2003-06-18 ·Pages 2164-71

Heymes C, Bendall JK, Ratajczak P, Cave AC, Samuel JL, Hasenfuss G, Shah AM

Abstract

This study was designed to investigate whether nicotinamide adenine dinucleotide 3-phosphate (reduced form) (NADPH) oxidase is expressed in the human heart and whether it contributes to reactive oxygen species (ROS) production in heart failure. A phagocyte-type NADPH oxidase complex is a major source of ROS in the vasculature and is implicated in the pathophysiology of hypertension and atherosclerosis. An increase in myocardial oxidative stress due to excessive production of ROS may be involved in the pathophysiology of congestive heart failure. Recent studies have suggested an important role for myocardial NADPH oxidase in experimental models of cardiac disease. However, it is unknown whether NADPH oxidase is expressed in the human myocardium or if it has any role in human heart failure. Myocardium of explanted nonfailing (n = 9) and end-stage failing (n = 13) hearts was studied for the expression of NADPH oxidase subunits and oxidase activity. The NADPH oxidase subunits p22(phox), gp91(phox), p67(phox), and p47(phox) were all expressed at messenger ribonucleic acid and protein level in cardiomyocytes of both nonfailing and failing hearts. NADPH oxidase activity was significantly increased in end-stage failing versus nonfailing myocardium (5.86 +/- 0.41 vs. 3.72 +/- 0.39 arbitrary units; p < 0.01). The overall level of oxidase subunit expression was unaltered in failing compared with nonfailing hearts. However, there was increased translocation of the regulatory subunit, p47(phox), to myocyte membranes in failing myocardium. This is the first report of the presence of NADPH oxidase in human myocardium. The increase in NADPH oxidase activity in the failing heart may be important in the pathophysiology of cardiac dysfunction by contributing to increased oxidative stress.

MeSH Terms
Adult Gene Expression/genetics,physiology Heart Failure/enzymology,genetics,pathology Humans In Vitro Techniques Luminescent Measurements Middle Aged Myocardium/enzymology,pathology NADP/analysis,genetics,physiology Oxidative Stress/genetics,physiology Reactive Oxygen Species/analysis Reverse Transcriptase Polymerase Chain Reaction
Chemicals
Reactive Oxygen Species NADP
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Heymes Christophe
Department of Cardiology, Guy's King's and St. Thomas's School of Medicine, King's College, London, United Kingdom.
Bendall Jennifer K
Ratajczak Philippe
Cave Alison C
Samuel Jane-Lise
Hasenfuss Gerd
Shah Ajay M
Article Info
Journal
Journal of the American College of Cardiology
Abbr.
J Am Coll Cardiol
ISSN
0735-1097
Published
2003-06-18
Pages
2164-71
Language
English
Region
United States
NLM ID
8301365
Subset
IM
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