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Inhibition of endothelial notch signaling impairs fatty acid transport and leads to metabolic and vascular remodeling of the adult heart

  • Markus Jabs
  • , Adam J. Rose
  • , Lorenz H. Lehmann
  • , Jacqueline Taylor
  • , Iris Moll
  • , Tjeerd P. Sijmonsma
  • , Stefanie E. Herberich
  • , Sven W. Sauer
  • , Gernot Poschet
  • , Giuseppina Federico
  • , Carolin Mogler
  • , Eva Maria Weis
  • , Hellmut G. Augustin
  • , Minhong Yan
  • , Norbert Gretz
  • , Roland M. Schmid
  • , Ralf H. Adams
  • , Hermann Joseph Gröne
  • , Rüdiger Hell
  • , Jürgen G. Okun
  • Johannes Backs, Peter P. Nawroth, Stephan Herzig, Andreas Fischer
  • German Cancer Research Center
  • Universitätsklinikum Heidelberg
  • Monash University
  • Center for Cardiovascular Research, Partner Site Heidelberg/Mannheim (L.H.L
  • Heidelberg University
  • German Cancer Research Center
  • Institute for Pathology
  • Technical University of Munich
  • Genentech, Inc
  • University of Münster
  • Helmholtz Zentrum München German Research Center for Environmental Health

Research output: Contribution to journalArticlepeer-review

140 Scopus citations

Abstract

Background: Nutrients are transported through endothelial cells before being metabolized in muscle cells. However, little is known about the regulation of endothelial transport processes. Notch signaling is a critical regulator of metabolism and angiogenesis during development. Here, we studied how genetic and pharmacological manipulation of endothelial Notch signaling in adult mice affects endothelial fatty acid transport, cardiac angiogenesis, and heart function. Methods: Endothelial-specific Notch inhibition was achieved by conditional genetic inactivation of Rbp-jκ in adult mice to analyze fatty acid metabolism and heart function. Wild-type mice were treated with neutralizing antibodies against the Notch ligand Delta-like 4. Fatty acid transport was studied in cultured endothelial cells and transgenic mice. Results: Treatment of wild-type mice with Delta-like 4 neutralizing antibodies for 8 weeks impaired fractional shortening and ejection fraction in the majority of mice. Inhibition of Notch signaling specifically in the endothelium of adult mice by genetic ablation of Rbp-jκ caused heart hypertrophy and failure. Impaired heart function was preceded by alterations in fatty acid metabolism and an increase in cardiac blood vessel density. Endothelial Notch signaling controlled the expression of endothelial lipase, Angptl4, CD36, and Fabp4, which are all needed for fatty acid transport across the vessel wall. In endothelial-specific Rbp-jκ-mutant mice, lipase activity and transendothelial transport of long-chain fatty acids to muscle cells were impaired. In turn, lipids accumulated in the plasma and liver. The attenuated supply of cardiomyocytes with long-chain fatty acids was accompanied by higher glucose uptake, increased concentration of glycolysis intermediates, and mTOR-S6K signaling. Treatment with the mTOR inhibitor rapamycin or displacing glucose as cardiac substrate by feeding a ketogenic diet prolonged the survival of endothelial-specific Rbp-jκ-deficient mice. Conclusions: This study identifies Notch signaling as a novel regulator of fatty acid transport across the endothelium and as an essential repressor of angiogenesis in the adult heart. The data imply that the endothelium controls cardiomyocyte metabolism and function.

Original languageEnglish
Pages (from-to)2592-2608
Number of pages17
JournalCirculation
Volume137
Issue number24
DOIs
StatePublished - 12 Jun 2018
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • angiogenesis
  • animal model cardiovascular disease
  • endothelial cell
  • metabolism

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