Hydrogen Sulfide Modulates Endothelial–Mesenchymal Transition in Heart Failure

Author:

Li Zhen1ORCID,Xia Huijing2,Sharp Thomas E.2ORCID,LaPenna Kyle B.2ORCID,Katsouda Antonia3,Elrod John W.4ORCID,Pfeilschifter Josef5,Beck Karl-Friedrich5,Xu Shi6ORCID,Xian Ming6,Goodchild Traci T.2,Papapetropoulos Andreas3ORCID,Lefer David J.1ORCID

Affiliation:

1. Department of Cardiac Surgery, Smidt Heart Institute, Cedars-Sinai Medical Center, Los Angeles, CA (Z.L., D.J.L.).

2. Cardiovascular Center of Excellence, Louisiana State University Health Sciences Center, New Orleans (H.X., T.E.S., K.B.L., T.T.G.).

3. Laboratory of Pharmacology, Faculty of Pharmacy, National and Kapodistrian University of Athens, Greece; Center of Clinical, Experimental Surgery & Translational Research, Biomedical Research Foundation of the Academy of Athens, Greece (A.K., A.P.).

4. Cardiovascular Research Center, Lewis Katz School of Medicine at Temple University, Philadelphia, PA (J.W.E.).

5. Institute of Pharmacology and Toxicology, Goethe University, Frankfurt am Main, Germany (J.P., K.-F.B.).

6. Department of Chemistry, Brown University, Providence, RI (S.X., M.X.).

Abstract

Background: Hydrogen sulfide is a critical endogenous signaling molecule that exerts protective effects in the setting of heart failure. Cystathionine γ-lyase (CSE), 1 of 3 hydrogen-sulfide–producing enzyme, is predominantly localized in the vascular endothelium. The interaction between the endothelial CSE–hydrogen sulfide axis and endothelial-mesenchymal transition, an important pathological process contributing to the formation of fibrosis, has yet to be investigated. Methods: Endothelial-cell–specific CSE knockout and Endothelial cell-CSE overexpressing mice were subjected to transverse aortic constriction to induce heart failure with reduced ejection fraction. Cardiac function, vascular reactivity, and treadmill exercise capacity were measured to determine the severity of heart failure. Histological and gene expression analyses were performed to investigate changes in cardiac fibrosis and the activation of endothelial–mesenchymal transition. Results: Endothelial-cell–specific CSE knockout mice exhibited increased endothelial–mesenchymal transition and reduced nitric oxide bioavailability in the myocardium, which was associated with increased cardiac fibrosis, impaired cardiac and vascular function, and worsened exercise performance. In contrast, genetic overexpression of CSE in endothelial cells led to increased myocardial nitric oxide, decreased endothelial–mesenchymal transition and cardiac fibrosis, preserved cardiac and endothelial function, and improved exercise capacity. Conclusions: Our data demonstrate that endothelial CSE modulates endothelial–mesenchymal transition and ameliorate the severity of pressure-overload–induced heart failure, in part, through nitric oxide-related mechanisms. These data further suggest that endothelium-derived hydrogen sulfide is a potential therapeutic for the treatment of heart failure with reduced ejection fraction.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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