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Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids

Astrocyte reactivity can directly modulate nervous system function and immune responses during disease and injury. However, the consequence of human astrocyte reactivity in response to specific contexts and within neural networks is obscure. Here, we devised a straightforward bioengineered neural or...

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Autores principales: Cvetkovic, Caroline, Patel, Rajan, Shetty, Arya, Hogan, Matthew K., Anderson, Morgan, Basu, Nupur, Aghlara-Fotovat, Samira, Ramesh, Srivathsan, Sardar, Debosmita, Veiseh, Omid, Ward, Michael E., Deneen, Benjamin, Horner, Philip J., Krencik, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Rockefeller University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8842185/
https://www.ncbi.nlm.nih.gov/pubmed/35139144
http://dx.doi.org/10.1083/jcb.202107135
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author Cvetkovic, Caroline
Patel, Rajan
Shetty, Arya
Hogan, Matthew K.
Anderson, Morgan
Basu, Nupur
Aghlara-Fotovat, Samira
Ramesh, Srivathsan
Sardar, Debosmita
Veiseh, Omid
Ward, Michael E.
Deneen, Benjamin
Horner, Philip J.
Krencik, Robert
author_facet Cvetkovic, Caroline
Patel, Rajan
Shetty, Arya
Hogan, Matthew K.
Anderson, Morgan
Basu, Nupur
Aghlara-Fotovat, Samira
Ramesh, Srivathsan
Sardar, Debosmita
Veiseh, Omid
Ward, Michael E.
Deneen, Benjamin
Horner, Philip J.
Krencik, Robert
author_sort Cvetkovic, Caroline
collection PubMed
description Astrocyte reactivity can directly modulate nervous system function and immune responses during disease and injury. However, the consequence of human astrocyte reactivity in response to specific contexts and within neural networks is obscure. Here, we devised a straightforward bioengineered neural organoid culture approach entailing transcription factor–driven direct differentiation of neurons and astrocytes from human pluripotent stem cells combined with genetically encoded tools for dual cell-selective activation. This strategy revealed that Gq-GPCR activation via chemogenetics in astrocytes promotes a rise in intracellular calcium followed by induction of immediate early genes and thrombospondin 1. However, astrocytes also undergo NF-κB nuclear translocation and secretion of inflammatory proteins, correlating with a decreased evoked firing rate of cocultured optogenetic neurons in suboptimal conditions, without overt neurotoxicity. Altogether, this study clarifies the intrinsic reactivity of human astrocytes in response to targeting GPCRs and delivers a bioengineered approach for organoid-based disease modeling and preclinical drug testing.
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spelling pubmed-88421852022-10-04 Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids Cvetkovic, Caroline Patel, Rajan Shetty, Arya Hogan, Matthew K. Anderson, Morgan Basu, Nupur Aghlara-Fotovat, Samira Ramesh, Srivathsan Sardar, Debosmita Veiseh, Omid Ward, Michael E. Deneen, Benjamin Horner, Philip J. Krencik, Robert J Cell Biol Tools Astrocyte reactivity can directly modulate nervous system function and immune responses during disease and injury. However, the consequence of human astrocyte reactivity in response to specific contexts and within neural networks is obscure. Here, we devised a straightforward bioengineered neural organoid culture approach entailing transcription factor–driven direct differentiation of neurons and astrocytes from human pluripotent stem cells combined with genetically encoded tools for dual cell-selective activation. This strategy revealed that Gq-GPCR activation via chemogenetics in astrocytes promotes a rise in intracellular calcium followed by induction of immediate early genes and thrombospondin 1. However, astrocytes also undergo NF-κB nuclear translocation and secretion of inflammatory proteins, correlating with a decreased evoked firing rate of cocultured optogenetic neurons in suboptimal conditions, without overt neurotoxicity. Altogether, this study clarifies the intrinsic reactivity of human astrocytes in response to targeting GPCRs and delivers a bioengineered approach for organoid-based disease modeling and preclinical drug testing. Rockefeller University Press 2022-02-09 /pmc/articles/PMC8842185/ /pubmed/35139144 http://dx.doi.org/10.1083/jcb.202107135 Text en © 2022 Cvetkovic et al. https://creativecommons.org/licenses/by-nc-sa/4.0/http://www.rupress.org/terms/This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms/). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 International license, as described at https://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Tools
Cvetkovic, Caroline
Patel, Rajan
Shetty, Arya
Hogan, Matthew K.
Anderson, Morgan
Basu, Nupur
Aghlara-Fotovat, Samira
Ramesh, Srivathsan
Sardar, Debosmita
Veiseh, Omid
Ward, Michael E.
Deneen, Benjamin
Horner, Philip J.
Krencik, Robert
Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids
title Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids
title_full Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids
title_fullStr Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids
title_full_unstemmed Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids
title_short Assessing Gq-GPCR–induced human astrocyte reactivity using bioengineered neural organoids
title_sort assessing gq-gpcr–induced human astrocyte reactivity using bioengineered neural organoids
topic Tools
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8842185/
https://www.ncbi.nlm.nih.gov/pubmed/35139144
http://dx.doi.org/10.1083/jcb.202107135
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