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Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model

Ischemic stroke and cerebral infarction triggered by the blockage of blood supply can cause damage to the brain via a complex series of pathological changes. Recently, diverse therapies have emerged as promising candidates for the treatment of stroke. These treatments exert therapeutic effects by ac...

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Autores principales: Yoon, Jeong Seon, Jo, Darong, Lee, Hye-Sun, Yoo, Seung-Wan, Lee, Tae-Young, Hwang, Woo Sup, Choi, Jung-Mi, Kim, Eunhee, Kim, Sung-Soo, Suh-Kim, Haeyoung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Korean Society for Brain and Neural Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6120968/
https://www.ncbi.nlm.nih.gov/pubmed/30181691
http://dx.doi.org/10.5607/en.2018.27.4.287
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author Yoon, Jeong Seon
Jo, Darong
Lee, Hye-Sun
Yoo, Seung-Wan
Lee, Tae-Young
Hwang, Woo Sup
Choi, Jung-Mi
Kim, Eunhee
Kim, Sung-Soo
Suh-Kim, Haeyoung
author_facet Yoon, Jeong Seon
Jo, Darong
Lee, Hye-Sun
Yoo, Seung-Wan
Lee, Tae-Young
Hwang, Woo Sup
Choi, Jung-Mi
Kim, Eunhee
Kim, Sung-Soo
Suh-Kim, Haeyoung
author_sort Yoon, Jeong Seon
collection PubMed
description Ischemic stroke and cerebral infarction triggered by the blockage of blood supply can cause damage to the brain via a complex series of pathological changes. Recently, diverse therapies have emerged as promising candidates for the treatment of stroke. These treatments exert therapeutic effects by acting on diverse target molecules and cells in different time windows from the acute to chronic phases. Here, using immunohistochemistry, we show pathophysiological changes in the brain microenvironment at the hyperacute (within 6 h), acute (1~3 days), subacute (7 days), and chronic (1 month) phases following ischemic injury. Ischemic injury in rats was induced by occluding the middle cerebral artery and was validated by magnetic resonance imaging. The progression of damage to the brain was evaluated by immunohistochemistry for NeuN(+) neurons, GFAP(+) astrocytes, and Iba1(+) microglia, and by the emergence of the cell death-related molecules such as AIF, FAF1, and activated caspase-3. Our data regarding the spatial and temporal information on pathophysiological changes may warrant the investigation of the timing of administration of therapeutic treatments in preclinical studies with an animal model of stroke.
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spelling pubmed-61209682018-09-04 Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model Yoon, Jeong Seon Jo, Darong Lee, Hye-Sun Yoo, Seung-Wan Lee, Tae-Young Hwang, Woo Sup Choi, Jung-Mi Kim, Eunhee Kim, Sung-Soo Suh-Kim, Haeyoung Exp Neurobiol Original Article Ischemic stroke and cerebral infarction triggered by the blockage of blood supply can cause damage to the brain via a complex series of pathological changes. Recently, diverse therapies have emerged as promising candidates for the treatment of stroke. These treatments exert therapeutic effects by acting on diverse target molecules and cells in different time windows from the acute to chronic phases. Here, using immunohistochemistry, we show pathophysiological changes in the brain microenvironment at the hyperacute (within 6 h), acute (1~3 days), subacute (7 days), and chronic (1 month) phases following ischemic injury. Ischemic injury in rats was induced by occluding the middle cerebral artery and was validated by magnetic resonance imaging. The progression of damage to the brain was evaluated by immunohistochemistry for NeuN(+) neurons, GFAP(+) astrocytes, and Iba1(+) microglia, and by the emergence of the cell death-related molecules such as AIF, FAF1, and activated caspase-3. Our data regarding the spatial and temporal information on pathophysiological changes may warrant the investigation of the timing of administration of therapeutic treatments in preclinical studies with an animal model of stroke. The Korean Society for Brain and Neural Science 2018-08 2018-08-16 /pmc/articles/PMC6120968/ /pubmed/30181691 http://dx.doi.org/10.5607/en.2018.27.4.287 Text en Copyright © Experimental Neurobiology 2018. http://creativecommons.org/licenses/by-nc/4.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Yoon, Jeong Seon
Jo, Darong
Lee, Hye-Sun
Yoo, Seung-Wan
Lee, Tae-Young
Hwang, Woo Sup
Choi, Jung-Mi
Kim, Eunhee
Kim, Sung-Soo
Suh-Kim, Haeyoung
Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model
title Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model
title_full Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model
title_fullStr Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model
title_full_unstemmed Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model
title_short Spatiotemporal Protein Atlas of Cell Death-Related Molecules in the Rat MCAO Stroke Model
title_sort spatiotemporal protein atlas of cell death-related molecules in the rat mcao stroke model
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6120968/
https://www.ncbi.nlm.nih.gov/pubmed/30181691
http://dx.doi.org/10.5607/en.2018.27.4.287
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