Cargando…

Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding

The neuroglial extracellular matrix (ECM) provides critical support and physiological cues for the proper growth, differentiation, and function of neuronal cells in the brain. However, in most in vitro settings that study neural physiology, cells are grown as monolayers on stiff surfaces that maximi...

Descripción completa

Detalles Bibliográficos
Autores principales: Vo, Andy N., Kundu, Srikanya, Strong, Caroline, Jung, Olive, Lee, Emily, Song, Min Jae, Boutin, Molly E., Raghunath, Michael, Ferrer, Marc
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9317039/
https://www.ncbi.nlm.nih.gov/pubmed/35883574
http://dx.doi.org/10.3390/cells11142131
_version_ 1784754960577069056
author Vo, Andy N.
Kundu, Srikanya
Strong, Caroline
Jung, Olive
Lee, Emily
Song, Min Jae
Boutin, Molly E.
Raghunath, Michael
Ferrer, Marc
author_facet Vo, Andy N.
Kundu, Srikanya
Strong, Caroline
Jung, Olive
Lee, Emily
Song, Min Jae
Boutin, Molly E.
Raghunath, Michael
Ferrer, Marc
author_sort Vo, Andy N.
collection PubMed
description The neuroglial extracellular matrix (ECM) provides critical support and physiological cues for the proper growth, differentiation, and function of neuronal cells in the brain. However, in most in vitro settings that study neural physiology, cells are grown as monolayers on stiff surfaces that maximize adhesion and proliferation, and, therefore, they lack the physiological cues that ECM in native neuronal tissues provides. Macromolecular crowding (MMC) is a biophysical phenomenon based on the principle of excluded volume that can be harnessed to induce native ECM deposition by cells in culture. Here, we show that MMC using two species of Ficoll with vitamin C supplementation significantly boosts deposition of relevant brain ECM by cultured human astrocytes. Dopaminergic neurons cocultured on this astrocyte–ECM bed prepared under MMC treatment showed longer and denser neuronal extensions, a higher number of pre ad post synaptic contacts, and increased physiological activity, as evidenced by higher frequency calcium oscillation, compared to standard coculture conditions. When the pharmacological activity of various compounds was tested on MMC-treated cocultures, their responses were enhanced, and for apomorphine, a D2-receptor agonist, it was inverted in comparison to control cell culture conditions, thus emulating responses observed in in vivo settings. These results indicate that macromolecular crowding can harness the ECM-building potential of human astrocytes in vitro forming an ultra-flat 3D microenvironment that makes neural cultures more physiological and pharmacological relevant.
format Online
Article
Text
id pubmed-9317039
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-93170392022-07-27 Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding Vo, Andy N. Kundu, Srikanya Strong, Caroline Jung, Olive Lee, Emily Song, Min Jae Boutin, Molly E. Raghunath, Michael Ferrer, Marc Cells Article The neuroglial extracellular matrix (ECM) provides critical support and physiological cues for the proper growth, differentiation, and function of neuronal cells in the brain. However, in most in vitro settings that study neural physiology, cells are grown as monolayers on stiff surfaces that maximize adhesion and proliferation, and, therefore, they lack the physiological cues that ECM in native neuronal tissues provides. Macromolecular crowding (MMC) is a biophysical phenomenon based on the principle of excluded volume that can be harnessed to induce native ECM deposition by cells in culture. Here, we show that MMC using two species of Ficoll with vitamin C supplementation significantly boosts deposition of relevant brain ECM by cultured human astrocytes. Dopaminergic neurons cocultured on this astrocyte–ECM bed prepared under MMC treatment showed longer and denser neuronal extensions, a higher number of pre ad post synaptic contacts, and increased physiological activity, as evidenced by higher frequency calcium oscillation, compared to standard coculture conditions. When the pharmacological activity of various compounds was tested on MMC-treated cocultures, their responses were enhanced, and for apomorphine, a D2-receptor agonist, it was inverted in comparison to control cell culture conditions, thus emulating responses observed in in vivo settings. These results indicate that macromolecular crowding can harness the ECM-building potential of human astrocytes in vitro forming an ultra-flat 3D microenvironment that makes neural cultures more physiological and pharmacological relevant. MDPI 2022-07-06 /pmc/articles/PMC9317039/ /pubmed/35883574 http://dx.doi.org/10.3390/cells11142131 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
Vo, Andy N.
Kundu, Srikanya
Strong, Caroline
Jung, Olive
Lee, Emily
Song, Min Jae
Boutin, Molly E.
Raghunath, Michael
Ferrer, Marc
Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding
title Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding
title_full Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding
title_fullStr Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding
title_full_unstemmed Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding
title_short Enhancement of Neuroglial Extracellular Matrix Formation and Physiological Activity of Dopaminergic Neural Cocultures by Macromolecular Crowding
title_sort enhancement of neuroglial extracellular matrix formation and physiological activity of dopaminergic neural cocultures by macromolecular crowding
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9317039/
https://www.ncbi.nlm.nih.gov/pubmed/35883574
http://dx.doi.org/10.3390/cells11142131
work_keys_str_mv AT voandyn enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT kundusrikanya enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT strongcaroline enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT jungolive enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT leeemily enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT songminjae enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT boutinmollye enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT raghunathmichael enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding
AT ferrermarc enhancementofneuroglialextracellularmatrixformationandphysiologicalactivityofdopaminergicneuralcoculturesbymacromolecularcrowding