Literature DB >> 30146488

Quiescent Endothelial Cells Upregulate Fatty Acid β-Oxidation for Vasculoprotection via Redox Homeostasis.

Joanna Kalucka1, Laura Bierhansl2, Nadine Vasconcelos Conchinha2, Rindert Missiaen2, Ilaria Elia3, Ulrike Brüning2, Samantha Scheinok4, Lucas Treps2, Anna Rita Cantelmo2, Charlotte Dubois2, Pauline de Zeeuw2, Jermaine Goveia2, Annalisa Zecchin2, Federico Taverna2, Francisco Morales-Rodriguez2, Aleksandra Brajic2, Lena-Christin Conradi2, Sandra Schoors2, Ulrike Harjes2, Kim Vriens3, Gregor-Alexander Pilz5, Rongyuan Chen6, Richard Cubbon7, Bernard Thienpont8, Bert Cruys2, Brian W Wong2, Bart Ghesquière9, Mieke Dewerchin2, Katrien De Bock2, Xavier Sagaert10, Sebastian Jessberger5, Elizabeth A V Jones11, Bernard Gallez4, Diether Lambrechts8, Massimiliano Mazzone12, Guy Eelen2, Xuri Li13, Sarah-Maria Fendt3, Peter Carmeliet14.   

Abstract

Little is known about the metabolism of quiescent endothelial cells (QECs). Nonetheless, when dysfunctional, QECs contribute to multiple diseases. Previously, we demonstrated that proliferating endothelial cells (PECs) use fatty acid β-oxidation (FAO) for de novo dNTP synthesis. We report now that QECs are not hypometabolic, but upregulate FAO >3-fold higher than PECs, not to support biomass or energy production but to sustain the tricarboxylic acid cycle for redox homeostasis through NADPH regeneration. Hence, endothelial loss of FAO-controlling CPT1A in CPT1AΔEC mice promotes EC dysfunction (leukocyte infiltration, barrier disruption) by increasing endothelial oxidative stress, rendering CPT1AΔEC mice more susceptible to LPS and inflammatory bowel disease. Mechanistically, Notch1 orchestrates the use of FAO for redox balance in QECs. Supplementation of acetate (metabolized to acetyl-coenzyme A) restores endothelial quiescence and counters oxidative stress-mediated EC dysfunction in CPT1AΔEC mice, offering therapeutic opportunities. Thus, QECs use FAO for vasculoprotection against oxidative stress-prone exposure.
Copyright © 2018 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  CPT1A; angiogenesis; endothelial cell dysfunction; endothelial cells; fatty acid β-oxidation; metabolism; quiescence; redox homeostasis

Mesh:

Substances:

Year:  2018        PMID: 30146488     DOI: 10.1016/j.cmet.2018.07.016

Source DB:  PubMed          Journal:  Cell Metab        ISSN: 1550-4131            Impact factor:   27.287


  72 in total

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