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Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum

BACKGROUND: Neonatal astrocytes are diverse in origin, and undergo dramatic change in gene expression, morphological differentiation and  syncytial networking throughout development. Neonatal astrocytes also play multifaceted roles in neuronal circuitry establishment. However, the extent to which ne...

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Autores principales: Zhong, Shiying, Du, Yixing, Kiyoshi, Conrad M., Ma, Baofeng, Alford, Catherine C., Wang, Qi, Yang, Yongjie, Liu, Xueyuan, Zhou, Min
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4802662/
https://www.ncbi.nlm.nih.gov/pubmed/27004553
http://dx.doi.org/10.1186/s13041-016-0213-7
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author Zhong, Shiying
Du, Yixing
Kiyoshi, Conrad M.
Ma, Baofeng
Alford, Catherine C.
Wang, Qi
Yang, Yongjie
Liu, Xueyuan
Zhou, Min
author_facet Zhong, Shiying
Du, Yixing
Kiyoshi, Conrad M.
Ma, Baofeng
Alford, Catherine C.
Wang, Qi
Yang, Yongjie
Liu, Xueyuan
Zhou, Min
author_sort Zhong, Shiying
collection PubMed
description BACKGROUND: Neonatal astrocytes are diverse in origin, and undergo dramatic change in gene expression, morphological differentiation and  syncytial networking throughout development. Neonatal astrocytes also play multifaceted roles in neuronal circuitry establishment. However, the extent to which neonatal astrocytes differ from their counterparts in the adult brain remains unknown. RESULTS: Based on ALDH1L1-eGFP expression or sulforhodamine 101 staining, neonatal astrocytes at postnatal day 1–3 can be reliably identified in hippocampal stratum radiatum. They exhibit a more negative resting membrane potential (V(M)), −85 mV, than mature astrocytes, −80 mV and a variably rectifying whole-cell current profile due to complex expression of voltage-gated outward transient K(+) (IK(a)), delayed rectifying K(+) (IK(d)) and inward K(+) (IK(in)) conductances. Differing from NG2 glia, depolarization-induced inward Na(+) currents (INa) could not be detected in neonatal astrocytes. A quasi-physiological V(M) of −69 mV was retained when inwardly rectifying K(ir)4.1 was inhibited by 100 μM Ba(2+) in both wild type and TWIK-1/TREK-1 double gene knockout astrocytes, indicating expression of additional leak K(+) channels yet unknown. In dual patch recording, electrical coupling was detected in 74 % (14/19 pairs) of neonatal astrocytes with largely variable coupling coefficients. The increasing gap junction coupling progressively masked the rectifying K(+) conductances to account for an increasing number of linear voltage-to-current relationship passive astrocytes (PAs). Gap junction inhibition, by 100 μM meclofenamic acid, substantially reduced membrane conductance and converted all the neonatal PAs to variably rectifying astrocytes. The low density expression of leak K(+) conductance in neonatal astrocytes corresponded  to a ~50 % less K(+) uptake capacity compared to adult astrocytes. CONCLUSIONS: Neonatal astrocytes predominantly express a variety of rectifying K(+) conductances, form discrete cell-to-cell gap junction coupling and are deficient in K(+) homeostatic capacity.
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spelling pubmed-48026622016-03-22 Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum Zhong, Shiying Du, Yixing Kiyoshi, Conrad M. Ma, Baofeng Alford, Catherine C. Wang, Qi Yang, Yongjie Liu, Xueyuan Zhou, Min Mol Brain Research BACKGROUND: Neonatal astrocytes are diverse in origin, and undergo dramatic change in gene expression, morphological differentiation and  syncytial networking throughout development. Neonatal astrocytes also play multifaceted roles in neuronal circuitry establishment. However, the extent to which neonatal astrocytes differ from their counterparts in the adult brain remains unknown. RESULTS: Based on ALDH1L1-eGFP expression or sulforhodamine 101 staining, neonatal astrocytes at postnatal day 1–3 can be reliably identified in hippocampal stratum radiatum. They exhibit a more negative resting membrane potential (V(M)), −85 mV, than mature astrocytes, −80 mV and a variably rectifying whole-cell current profile due to complex expression of voltage-gated outward transient K(+) (IK(a)), delayed rectifying K(+) (IK(d)) and inward K(+) (IK(in)) conductances. Differing from NG2 glia, depolarization-induced inward Na(+) currents (INa) could not be detected in neonatal astrocytes. A quasi-physiological V(M) of −69 mV was retained when inwardly rectifying K(ir)4.1 was inhibited by 100 μM Ba(2+) in both wild type and TWIK-1/TREK-1 double gene knockout astrocytes, indicating expression of additional leak K(+) channels yet unknown. In dual patch recording, electrical coupling was detected in 74 % (14/19 pairs) of neonatal astrocytes with largely variable coupling coefficients. The increasing gap junction coupling progressively masked the rectifying K(+) conductances to account for an increasing number of linear voltage-to-current relationship passive astrocytes (PAs). Gap junction inhibition, by 100 μM meclofenamic acid, substantially reduced membrane conductance and converted all the neonatal PAs to variably rectifying astrocytes. The low density expression of leak K(+) conductance in neonatal astrocytes corresponded  to a ~50 % less K(+) uptake capacity compared to adult astrocytes. CONCLUSIONS: Neonatal astrocytes predominantly express a variety of rectifying K(+) conductances, form discrete cell-to-cell gap junction coupling and are deficient in K(+) homeostatic capacity. BioMed Central 2016-03-22 /pmc/articles/PMC4802662/ /pubmed/27004553 http://dx.doi.org/10.1186/s13041-016-0213-7 Text en © Zhong et al. 2016 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Zhong, Shiying
Du, Yixing
Kiyoshi, Conrad M.
Ma, Baofeng
Alford, Catherine C.
Wang, Qi
Yang, Yongjie
Liu, Xueyuan
Zhou, Min
Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
title Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
title_full Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
title_fullStr Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
title_full_unstemmed Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
title_short Electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
title_sort electrophysiological behavior of neonatal astrocytes in hippocampal stratum radiatum
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4802662/
https://www.ncbi.nlm.nih.gov/pubmed/27004553
http://dx.doi.org/10.1186/s13041-016-0213-7
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