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Arterialization requires the timely suppression of cell growth

The formation of arteries is thought to occur by the induction of a highly conserved arterial genetic programme in a subset of vessels that will later experience an increase in oxygenated blood flow(1,2). The initial steps of arterial specification require both the VEGF and Notch signalling pathways...

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Autores principales: Luo, Wen, Garcia-Gonzalez, Irene, Fernández-Chacón, Macarena, Casquero-Garcia, Verónica, Sanchez-Muñoz, Maria S., Mühleder, Severin, Garcia-Ortega, Lourdes, Andrade, Jorge, Potente, Michael, Benedito, Rui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116692/
https://www.ncbi.nlm.nih.gov/pubmed/33299176
http://dx.doi.org/10.1038/s41586-020-3018-x
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author Luo, Wen
Garcia-Gonzalez, Irene
Fernández-Chacón, Macarena
Casquero-Garcia, Verónica
Sanchez-Muñoz, Maria S.
Mühleder, Severin
Garcia-Ortega, Lourdes
Andrade, Jorge
Potente, Michael
Benedito, Rui
author_facet Luo, Wen
Garcia-Gonzalez, Irene
Fernández-Chacón, Macarena
Casquero-Garcia, Verónica
Sanchez-Muñoz, Maria S.
Mühleder, Severin
Garcia-Ortega, Lourdes
Andrade, Jorge
Potente, Michael
Benedito, Rui
author_sort Luo, Wen
collection PubMed
description The formation of arteries is thought to occur by the induction of a highly conserved arterial genetic programme in a subset of vessels that will later experience an increase in oxygenated blood flow(1,2). The initial steps of arterial specification require both the VEGF and Notch signalling pathways(3–5). Here, we combine inducible genetic mosaics and transcriptomics to modulate and define the function of these signalling pathways in cell proliferation, arteriovenous differentiation and mobilization. We show that endothelial cells with high levels of VEGF or Notch signalling are intrinsically biased to mobilize and form arteries; however, they are not genetically pre-determined, and can also form veins. Mechanistically, we found that increased levels of VEGF and Notch signalling in pre-arterial capillaries suppresses MYC-dependent metabolic and cell-cycle activities, and promotes the incorporation of endothelial cells into arteries. Mosaic lineage-tracing studies showed that endothelial cells that lack the Notch–RBPJ transcriptional activator complex rarely form arteries; however, these cells regained the ability to form arteries when the function of MYC was suppressed. Thus, the development of arteries does not require the direct induction of a Notch-dependent arterial differentiation programme, but instead depends on the timely suppression of endothelial cell-cycle progression and metabolism, a process that precedes arterial mobilization and complete differentiation.
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spelling pubmed-71166922021-06-09 Arterialization requires the timely suppression of cell growth Luo, Wen Garcia-Gonzalez, Irene Fernández-Chacón, Macarena Casquero-Garcia, Verónica Sanchez-Muñoz, Maria S. Mühleder, Severin Garcia-Ortega, Lourdes Andrade, Jorge Potente, Michael Benedito, Rui Nature Article The formation of arteries is thought to occur by the induction of a highly conserved arterial genetic programme in a subset of vessels that will later experience an increase in oxygenated blood flow(1,2). The initial steps of arterial specification require both the VEGF and Notch signalling pathways(3–5). Here, we combine inducible genetic mosaics and transcriptomics to modulate and define the function of these signalling pathways in cell proliferation, arteriovenous differentiation and mobilization. We show that endothelial cells with high levels of VEGF or Notch signalling are intrinsically biased to mobilize and form arteries; however, they are not genetically pre-determined, and can also form veins. Mechanistically, we found that increased levels of VEGF and Notch signalling in pre-arterial capillaries suppresses MYC-dependent metabolic and cell-cycle activities, and promotes the incorporation of endothelial cells into arteries. Mosaic lineage-tracing studies showed that endothelial cells that lack the Notch–RBPJ transcriptional activator complex rarely form arteries; however, these cells regained the ability to form arteries when the function of MYC was suppressed. Thus, the development of arteries does not require the direct induction of a Notch-dependent arterial differentiation programme, but instead depends on the timely suppression of endothelial cell-cycle progression and metabolism, a process that precedes arterial mobilization and complete differentiation. 2021-01-01 2020-12-09 /pmc/articles/PMC7116692/ /pubmed/33299176 http://dx.doi.org/10.1038/s41586-020-3018-x Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Luo, Wen
Garcia-Gonzalez, Irene
Fernández-Chacón, Macarena
Casquero-Garcia, Verónica
Sanchez-Muñoz, Maria S.
Mühleder, Severin
Garcia-Ortega, Lourdes
Andrade, Jorge
Potente, Michael
Benedito, Rui
Arterialization requires the timely suppression of cell growth
title Arterialization requires the timely suppression of cell growth
title_full Arterialization requires the timely suppression of cell growth
title_fullStr Arterialization requires the timely suppression of cell growth
title_full_unstemmed Arterialization requires the timely suppression of cell growth
title_short Arterialization requires the timely suppression of cell growth
title_sort arterialization requires the timely suppression of cell growth
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116692/
https://www.ncbi.nlm.nih.gov/pubmed/33299176
http://dx.doi.org/10.1038/s41586-020-3018-x
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