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Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network

The cerebral arterial network covering the brain cortex has multiscale anastomosis structures with sparse intermediate anastomoses (O[10(2)] μm in diameter) and dense pial networks (O[10(1)] μm in diameter). Recent studies indicate that collateral blood supply by cerebral arterial anastomoses has an...

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Autores principales: Otani, Tomohiro, Nishimura, Nozomi, Yamashita, Hiroshi, Ii, Satoshi, Yamada, Shigeki, Watanabe, Yoshiyuki, Oshima, Marie, Wada, Shigeo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10519592/
https://www.ncbi.nlm.nih.gov/pubmed/37683012
http://dx.doi.org/10.1371/journal.pcbi.1011452
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author Otani, Tomohiro
Nishimura, Nozomi
Yamashita, Hiroshi
Ii, Satoshi
Yamada, Shigeki
Watanabe, Yoshiyuki
Oshima, Marie
Wada, Shigeo
author_facet Otani, Tomohiro
Nishimura, Nozomi
Yamashita, Hiroshi
Ii, Satoshi
Yamada, Shigeki
Watanabe, Yoshiyuki
Oshima, Marie
Wada, Shigeo
author_sort Otani, Tomohiro
collection PubMed
description The cerebral arterial network covering the brain cortex has multiscale anastomosis structures with sparse intermediate anastomoses (O[10(2)] μm in diameter) and dense pial networks (O[10(1)] μm in diameter). Recent studies indicate that collateral blood supply by cerebral arterial anastomoses has an essential role in the prognosis of acute ischemic stroke caused by large vessel occlusion. However, the physiological importance of these multiscale morphological properties—and especially of intermediate anastomoses—is poorly understood because of innate structural complexities. In this study, a computational model of multiscale anastomoses in whole-brain-scale cerebral arterial networks was developed and used to evaluate collateral blood supply by anastomoses during middle cerebral artery occlusion. Morphologically validated cerebral arterial networks were constructed by combining medical imaging data and mathematical modeling. Sparse intermediate anastomoses were assigned between adjacent main arterial branches; the pial arterial network was modeled as a dense network structure. Blood flow distributions in the arterial network during middle cerebral artery occlusion simulations were computed. Collateral blood supply by intermediate anastomoses increased sharply with increasing numbers of anastomoses and provided one-order-higher flow recoveries to the occluded region (15%–30%) compared with simulations using a pial network only, even with a small number of intermediate anastomoses (≤10). These findings demonstrate the importance of sparse intermediate anastomoses, which are generally considered redundant structures in cerebral infarction, and provide insights into the physiological significance of the multiscale properties of arterial anastomoses.
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spelling pubmed-105195922023-09-26 Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network Otani, Tomohiro Nishimura, Nozomi Yamashita, Hiroshi Ii, Satoshi Yamada, Shigeki Watanabe, Yoshiyuki Oshima, Marie Wada, Shigeo PLoS Comput Biol Research Article The cerebral arterial network covering the brain cortex has multiscale anastomosis structures with sparse intermediate anastomoses (O[10(2)] μm in diameter) and dense pial networks (O[10(1)] μm in diameter). Recent studies indicate that collateral blood supply by cerebral arterial anastomoses has an essential role in the prognosis of acute ischemic stroke caused by large vessel occlusion. However, the physiological importance of these multiscale morphological properties—and especially of intermediate anastomoses—is poorly understood because of innate structural complexities. In this study, a computational model of multiscale anastomoses in whole-brain-scale cerebral arterial networks was developed and used to evaluate collateral blood supply by anastomoses during middle cerebral artery occlusion. Morphologically validated cerebral arterial networks were constructed by combining medical imaging data and mathematical modeling. Sparse intermediate anastomoses were assigned between adjacent main arterial branches; the pial arterial network was modeled as a dense network structure. Blood flow distributions in the arterial network during middle cerebral artery occlusion simulations were computed. Collateral blood supply by intermediate anastomoses increased sharply with increasing numbers of anastomoses and provided one-order-higher flow recoveries to the occluded region (15%–30%) compared with simulations using a pial network only, even with a small number of intermediate anastomoses (≤10). These findings demonstrate the importance of sparse intermediate anastomoses, which are generally considered redundant structures in cerebral infarction, and provide insights into the physiological significance of the multiscale properties of arterial anastomoses. Public Library of Science 2023-09-08 /pmc/articles/PMC10519592/ /pubmed/37683012 http://dx.doi.org/10.1371/journal.pcbi.1011452 Text en © 2023 Otani et al 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 use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Otani, Tomohiro
Nishimura, Nozomi
Yamashita, Hiroshi
Ii, Satoshi
Yamada, Shigeki
Watanabe, Yoshiyuki
Oshima, Marie
Wada, Shigeo
Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
title Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
title_full Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
title_fullStr Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
title_full_unstemmed Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
title_short Computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
title_sort computational modeling of multiscale collateral blood supply in a whole-brain-scale arterial network
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10519592/
https://www.ncbi.nlm.nih.gov/pubmed/37683012
http://dx.doi.org/10.1371/journal.pcbi.1011452
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