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Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke

Stroke is one of the main causes of death in the US and post-stroke treatment options remain limited. Ischemic stroke is caused by a blood clot that compromises blood supply to the brain, rapidly leading to tissue death at the core of the infarcted area surrounded by a hypoxic and nutrient-starved r...

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Autores principales: Denecke, Kathryn M., McBain, Catherine A., Hermes, Brock G., Teertam, Sireesh Kumar, Farooqui, Mehtab, Virumbrales-Muñoz, María, Panackal, Jennifer, Beebe, David J., Famakin, Bolanle, Ayuso, Jose M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9367413/
https://www.ncbi.nlm.nih.gov/pubmed/35954200
http://dx.doi.org/10.3390/cells11152356
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author Denecke, Kathryn M.
McBain, Catherine A.
Hermes, Brock G.
Teertam, Sireesh Kumar
Farooqui, Mehtab
Virumbrales-Muñoz, María
Panackal, Jennifer
Beebe, David J.
Famakin, Bolanle
Ayuso, Jose M.
author_facet Denecke, Kathryn M.
McBain, Catherine A.
Hermes, Brock G.
Teertam, Sireesh Kumar
Farooqui, Mehtab
Virumbrales-Muñoz, María
Panackal, Jennifer
Beebe, David J.
Famakin, Bolanle
Ayuso, Jose M.
author_sort Denecke, Kathryn M.
collection PubMed
description Stroke is one of the main causes of death in the US and post-stroke treatment options remain limited. Ischemic stroke is caused by a blood clot that compromises blood supply to the brain, rapidly leading to tissue death at the core of the infarcted area surrounded by a hypoxic and nutrient-starved region known as the penumbra. Recent evidence suggests that astrocytes in the penumbral region play a dual role in stroke response, promoting further neural and tissue damage or improving tissue repair depending on the microenvironment. Thus, astrocyte response in the hypoxic penumbra could promote tissue repair after stroke, salvaging neurons in the affected area and contributing to cognitive recovery. However, the complex microenvironment of ischemic stroke, characterized by gradients of hypoxia and nutrients, poses a unique challenge for traditional in vitro models, which in turn hinders the development of novel therapies. To address this challenge, we have developed a novel, polystyrene-based microfluidic device to model the necrotic and penumbral region induced by an ischemic stroke. We demonstrated that when subjected to hypoxia, and nutrient starvation, astrocytes within the penumbral region generated in the microdevice exhibited long-lasting, significantly altered signaling capacity including calcium signaling impairment.
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spelling pubmed-93674132022-08-12 Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke Denecke, Kathryn M. McBain, Catherine A. Hermes, Brock G. Teertam, Sireesh Kumar Farooqui, Mehtab Virumbrales-Muñoz, María Panackal, Jennifer Beebe, David J. Famakin, Bolanle Ayuso, Jose M. Cells Article Stroke is one of the main causes of death in the US and post-stroke treatment options remain limited. Ischemic stroke is caused by a blood clot that compromises blood supply to the brain, rapidly leading to tissue death at the core of the infarcted area surrounded by a hypoxic and nutrient-starved region known as the penumbra. Recent evidence suggests that astrocytes in the penumbral region play a dual role in stroke response, promoting further neural and tissue damage or improving tissue repair depending on the microenvironment. Thus, astrocyte response in the hypoxic penumbra could promote tissue repair after stroke, salvaging neurons in the affected area and contributing to cognitive recovery. However, the complex microenvironment of ischemic stroke, characterized by gradients of hypoxia and nutrients, poses a unique challenge for traditional in vitro models, which in turn hinders the development of novel therapies. To address this challenge, we have developed a novel, polystyrene-based microfluidic device to model the necrotic and penumbral region induced by an ischemic stroke. We demonstrated that when subjected to hypoxia, and nutrient starvation, astrocytes within the penumbral region generated in the microdevice exhibited long-lasting, significantly altered signaling capacity including calcium signaling impairment. MDPI 2022-07-31 /pmc/articles/PMC9367413/ /pubmed/35954200 http://dx.doi.org/10.3390/cells11152356 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Denecke, Kathryn M.
McBain, Catherine A.
Hermes, Brock G.
Teertam, Sireesh Kumar
Farooqui, Mehtab
Virumbrales-Muñoz, María
Panackal, Jennifer
Beebe, David J.
Famakin, Bolanle
Ayuso, Jose M.
Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke
title Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke
title_full Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke
title_fullStr Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke
title_full_unstemmed Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke
title_short Microfluidic Model to Evaluate Astrocyte Activation in Penumbral Region following Ischemic Stroke
title_sort microfluidic model to evaluate astrocyte activation in penumbral region following ischemic stroke
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9367413/
https://www.ncbi.nlm.nih.gov/pubmed/35954200
http://dx.doi.org/10.3390/cells11152356
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