Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.

The cerebral cortex performs complex cognitive functions at the expense of tremendous energy consumption. Blood vessels in the brain are known to form stereotypic patterns that facilitate efficient oxygen and nutrient delivery. Yet little is known about how vessel development in the brain is normall...

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Main Authors: Shang Ma, Hyo Jun Kwon, Heidi Johng, Keling Zang, Zhen Huang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS Biology
Online Access:http://europepmc.org/articles/PMC3551952?pdf=render
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spelling doaj-5a52c8a5bb2f438a8c21d8b27d6e23a92021-07-02T06:05:44ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852013-01-01111e100146910.1371/journal.pbio.1001469Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.Shang MaHyo Jun KwonHeidi JohngKeling ZangZhen HuangThe cerebral cortex performs complex cognitive functions at the expense of tremendous energy consumption. Blood vessels in the brain are known to form stereotypic patterns that facilitate efficient oxygen and nutrient delivery. Yet little is known about how vessel development in the brain is normally regulated. Radial glial neural progenitors are well known for their central role in orchestrating brain neurogenesis. Here we show that, in the late embryonic cortex, radial glial neural progenitors also play a key role in brain angiogenesis, by interacting with nascent blood vessels and regulating vessel stabilization via modulation of canonical Wnt signaling. We find that ablation of radial glia results in vessel regression, concomitant with ectopic activation of Wnt signaling in endothelial cells. Direct activation of Wnt signaling also results in similar vessel regression, while attenuation of Wnt signaling substantially suppresses regression. Radial glial ablation and ectopic Wnt pathway activation leads to elevated endothelial expression of matrix metalloproteinases, while inhibition of metalloproteinase activity significantly suppresses vessel regression. These results thus reveal a previously unrecognized role of radial glial progenitors in stabilizing nascent brain vascular network and provide novel insights into the molecular cascades through which target neural tissues regulate vessel stabilization and patterning during development and throughout life.http://europepmc.org/articles/PMC3551952?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Shang Ma
Hyo Jun Kwon
Heidi Johng
Keling Zang
Zhen Huang
spellingShingle Shang Ma
Hyo Jun Kwon
Heidi Johng
Keling Zang
Zhen Huang
Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.
PLoS Biology
author_facet Shang Ma
Hyo Jun Kwon
Heidi Johng
Keling Zang
Zhen Huang
author_sort Shang Ma
title Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.
title_short Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.
title_full Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.
title_fullStr Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.
title_full_unstemmed Radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of Wnt signaling.
title_sort radial glial neural progenitors regulate nascent brain vascular network stabilization via inhibition of wnt signaling.
publisher Public Library of Science (PLoS)
series PLoS Biology
issn 1544-9173
1545-7885
publishDate 2013-01-01
description The cerebral cortex performs complex cognitive functions at the expense of tremendous energy consumption. Blood vessels in the brain are known to form stereotypic patterns that facilitate efficient oxygen and nutrient delivery. Yet little is known about how vessel development in the brain is normally regulated. Radial glial neural progenitors are well known for their central role in orchestrating brain neurogenesis. Here we show that, in the late embryonic cortex, radial glial neural progenitors also play a key role in brain angiogenesis, by interacting with nascent blood vessels and regulating vessel stabilization via modulation of canonical Wnt signaling. We find that ablation of radial glia results in vessel regression, concomitant with ectopic activation of Wnt signaling in endothelial cells. Direct activation of Wnt signaling also results in similar vessel regression, while attenuation of Wnt signaling substantially suppresses regression. Radial glial ablation and ectopic Wnt pathway activation leads to elevated endothelial expression of matrix metalloproteinases, while inhibition of metalloproteinase activity significantly suppresses vessel regression. These results thus reveal a previously unrecognized role of radial glial progenitors in stabilizing nascent brain vascular network and provide novel insights into the molecular cascades through which target neural tissues regulate vessel stabilization and patterning during development and throughout life.
url http://europepmc.org/articles/PMC3551952?pdf=render
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AT hyojunkwon radialglialneuralprogenitorsregulatenascentbrainvascularnetworkstabilizationviainhibitionofwntsignaling
AT heidijohng radialglialneuralprogenitorsregulatenascentbrainvascularnetworkstabilizationviainhibitionofwntsignaling
AT kelingzang radialglialneuralprogenitorsregulatenascentbrainvascularnetworkstabilizationviainhibitionofwntsignaling
AT zhenhuang radialglialneuralprogenitorsregulatenascentbrainvascularnetworkstabilizationviainhibitionofwntsignaling
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