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Digital Reconstruction of the Neuro-Glia-Vascular Architecture

Astrocytes connect the vasculature to neurons mediating the supply of nutrients and biochemicals. They are involved in a growing number of physiological and pathophysiological processes that result from biophysical, physiological, and molecular interactions in this neuro-glia-vascular ensemble (NGV)...

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Autores principales: Zisis, Eleftherios, Keller, Daniel, Kanari, Lida, Arnaudon, Alexis, Gevaert, Michael, Delemontex, Thomas, Coste, Benoît, Foni, Alessandro, Abdellah, Marwan, Calì, Corrado, Hess, Kathryn, Magistretti, Pierre Julius, Schürmann, Felix, Markram, Henry
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8568010/
https://www.ncbi.nlm.nih.gov/pubmed/34387659
http://dx.doi.org/10.1093/cercor/bhab254
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author Zisis, Eleftherios
Keller, Daniel
Kanari, Lida
Arnaudon, Alexis
Gevaert, Michael
Delemontex, Thomas
Coste, Benoît
Foni, Alessandro
Abdellah, Marwan
Calì, Corrado
Hess, Kathryn
Magistretti, Pierre Julius
Schürmann, Felix
Markram, Henry
author_facet Zisis, Eleftherios
Keller, Daniel
Kanari, Lida
Arnaudon, Alexis
Gevaert, Michael
Delemontex, Thomas
Coste, Benoît
Foni, Alessandro
Abdellah, Marwan
Calì, Corrado
Hess, Kathryn
Magistretti, Pierre Julius
Schürmann, Felix
Markram, Henry
author_sort Zisis, Eleftherios
collection PubMed
description Astrocytes connect the vasculature to neurons mediating the supply of nutrients and biochemicals. They are involved in a growing number of physiological and pathophysiological processes that result from biophysical, physiological, and molecular interactions in this neuro-glia-vascular ensemble (NGV). The lack of a detailed cytoarchitecture severely restricts the understanding of how they support brain function. To address this problem, we used data from multiple sources to create a data-driven digital reconstruction of the NGV at micrometer anatomical resolution. We reconstructed 0.2 mm(3) of the rat somatosensory cortex with 16 000 morphologically detailed neurons, 2500 protoplasmic astrocytes, and its microvasculature. The consistency of the reconstruction with a wide array of experimental measurements allows novel predictions of the NGV organization, allowing the anatomical reconstruction of overlapping astrocytic microdomains and the quantification of endfeet connecting each astrocyte to the vasculature, as well as the extent to which they cover the latter. Structural analysis showed that astrocytes optimize their positions to provide uniform vascular coverage for trophic support and signaling. However, this optimal organization rapidly declines as their density increases. The NGV digital reconstruction is a resource that will enable a better understanding of the anatomical principles and geometric constraints, which govern how astrocytes support brain function.
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spelling pubmed-85680102021-11-05 Digital Reconstruction of the Neuro-Glia-Vascular Architecture Zisis, Eleftherios Keller, Daniel Kanari, Lida Arnaudon, Alexis Gevaert, Michael Delemontex, Thomas Coste, Benoît Foni, Alessandro Abdellah, Marwan Calì, Corrado Hess, Kathryn Magistretti, Pierre Julius Schürmann, Felix Markram, Henry Cereb Cortex Original Article Astrocytes connect the vasculature to neurons mediating the supply of nutrients and biochemicals. They are involved in a growing number of physiological and pathophysiological processes that result from biophysical, physiological, and molecular interactions in this neuro-glia-vascular ensemble (NGV). The lack of a detailed cytoarchitecture severely restricts the understanding of how they support brain function. To address this problem, we used data from multiple sources to create a data-driven digital reconstruction of the NGV at micrometer anatomical resolution. We reconstructed 0.2 mm(3) of the rat somatosensory cortex with 16 000 morphologically detailed neurons, 2500 protoplasmic astrocytes, and its microvasculature. The consistency of the reconstruction with a wide array of experimental measurements allows novel predictions of the NGV organization, allowing the anatomical reconstruction of overlapping astrocytic microdomains and the quantification of endfeet connecting each astrocyte to the vasculature, as well as the extent to which they cover the latter. Structural analysis showed that astrocytes optimize their positions to provide uniform vascular coverage for trophic support and signaling. However, this optimal organization rapidly declines as their density increases. The NGV digital reconstruction is a resource that will enable a better understanding of the anatomical principles and geometric constraints, which govern how astrocytes support brain function. Oxford University Press 2021-08-13 /pmc/articles/PMC8568010/ /pubmed/34387659 http://dx.doi.org/10.1093/cercor/bhab254 Text en © The Author(s) 2021. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Zisis, Eleftherios
Keller, Daniel
Kanari, Lida
Arnaudon, Alexis
Gevaert, Michael
Delemontex, Thomas
Coste, Benoît
Foni, Alessandro
Abdellah, Marwan
Calì, Corrado
Hess, Kathryn
Magistretti, Pierre Julius
Schürmann, Felix
Markram, Henry
Digital Reconstruction of the Neuro-Glia-Vascular Architecture
title Digital Reconstruction of the Neuro-Glia-Vascular Architecture
title_full Digital Reconstruction of the Neuro-Glia-Vascular Architecture
title_fullStr Digital Reconstruction of the Neuro-Glia-Vascular Architecture
title_full_unstemmed Digital Reconstruction of the Neuro-Glia-Vascular Architecture
title_short Digital Reconstruction of the Neuro-Glia-Vascular Architecture
title_sort digital reconstruction of the neuro-glia-vascular architecture
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8568010/
https://www.ncbi.nlm.nih.gov/pubmed/34387659
http://dx.doi.org/10.1093/cercor/bhab254
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