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Rewiring Endothelial Sphingolipid Metabolism to Favor S1P Over Ceramide Protects From Coronary Atherosclerosis.
Manzo, Onorina L; Nour, Jasmine; Sasset, Linda; Marino, Alice; Rubinelli, Luisa; Palikhe, Sailesh; Smimmo, Martina; Hu, Yang; Bucci, Maria Rosaria; Borczuk, Alain; Elemento, Olivier; Freed, Julie K; Norata, Giuseppe Danilo; Di Lorenzo, Annarita.
Afiliação
  • Manzo OL; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Nour J; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Sasset L; Department of Excellence of Pharmacological and Biomolecular Sciences, University of Milan, Milano, Italy (J.N., G.D.N.).
  • Marino A; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Rubinelli L; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Palikhe S; Pôle de Recherche Cardiovasculaire, Institut de Recherche Expérimentale et Clinique, Université catholique de Louvain, Brussels, Belgium (A.M.).
  • Smimmo M; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Hu Y; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Bucci MR; Department of Pharmacy, School of Medicine, University of Naples Federico II, Italy (M.S., M.R.B.).
  • Borczuk A; Department of Physiology and Biophysics, Institute for Computational Biomedicine (Y.H., O.E.), Weill Cornell Medicine, New York.
  • Elemento O; Department of Pharmacy, School of Medicine, University of Naples Federico II, Italy (M.S., M.R.B.).
  • Freed JK; Department of Pathology and Laboratory Medicine, Cardiovascular Research Institute, Brain and Mind Research Institute (O.L.M., J.N., L.S., A.M., L.R., S.P., A.B., A.D.L.).
  • Norata GD; Department of Physiology and Biophysics, Institute for Computational Biomedicine (Y.H., O.E.), Weill Cornell Medicine, New York.
  • Di Lorenzo A; Department of Anesthesiology, Medical College of Wisconsin Cardiovascular Center, Medical College of Wisconsin, Milwaukee (J.K.F.).
Circ Res ; 134(8): 990-1005, 2024 Apr 12.
Article em En | MEDLINE | ID: mdl-38456287
ABSTRACT

BACKGROUND:

Growing evidence correlated changes in bioactive sphingolipids, particularly S1P (sphingosine-1-phosphate) and ceramides, with coronary artery diseases. Furthermore, specific plasma ceramide species can predict major cardiovascular events. Dysfunction of the endothelium lining lesion-prone areas plays a pivotal role in atherosclerosis. Yet, how sphingolipid metabolism and signaling change and contribute to endothelial dysfunction and atherosclerosis remain poorly understood.

METHODS:

We used an established model of coronary atherosclerosis in mice, combined with sphingolipidomics, RNA-sequencing, flow cytometry, and immunostaining to investigate the contribution of sphingolipid metabolism and signaling to endothelial cell (EC) activation and dysfunction.

RESULTS:

We demonstrated that hemodynamic stress induced an early metabolic rewiring towards endothelial sphingolipid de novo biosynthesis, favoring S1P signaling over ceramides as a protective response. This finding is a paradigm shift from the current belief that ceramide accrual contributes to endothelial dysfunction. The enzyme SPT (serine palmitoyltransferase) commences de novo biosynthesis of sphingolipids and is inhibited by NOGO-B (reticulon-4B), an ER membrane protein. Here, we showed that NOGO-B is upregulated by hemodynamic stress in myocardial EC of ApoE-/- mice and is expressed in the endothelium lining coronary lesions in mice and humans. We demonstrated that mice lacking NOGO-B specifically in EC (Nogo-A/BECKOApoE-/-) were resistant to coronary atherosclerosis development and progression, and mortality. Fibrous cap thickness was significantly increased in Nogo-A/BECKOApoE-/- mice and correlated with reduced necrotic core and macrophage infiltration. Mechanistically, the deletion of NOGO-B in EC sustained the rewiring of sphingolipid metabolism towards S1P, imparting an atheroprotective endothelial transcriptional signature.

CONCLUSIONS:

These data demonstrated that hemodynamic stress induced a protective rewiring of sphingolipid metabolism, favoring S1P over ceramide. NOGO-B deletion sustained the rewiring of sphingolipid metabolism toward S1P protecting EC from activation under hemodynamic stress and refraining coronary atherosclerosis. These findings also set forth the foundation for sphingolipid-based therapeutics to limit atheroprogression.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Doença da Artéria Coronariana / Aterosclerose Limite: Animals / Humans Idioma: En Revista: Circ Res Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Doença da Artéria Coronariana / Aterosclerose Limite: Animals / Humans Idioma: En Revista: Circ Res Ano de publicação: 2024 Tipo de documento: Article