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Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation

The cation-chloride cotransporters KCC2 and NKCC1 regulate the intracellular Cl(−) concentration and cell volume of neurons and/or glia. The Cl(−) extruder KCC2 is expressed at higher levels than the Cl(−) transporter NKCC1 in mature compared to immature neurons, accounting for the developmental shi...

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Autores principales: Del Turco, Domenico, Paul, Mandy H., Schlaudraff, Jessica, Muellerleile, Julia, Bozic, Fran, Vuksic, Mario, Jedlicka, Peter, Deller, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10244516/
https://www.ncbi.nlm.nih.gov/pubmed/37293543
http://dx.doi.org/10.3389/fnmol.2023.1118746
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author Del Turco, Domenico
Paul, Mandy H.
Schlaudraff, Jessica
Muellerleile, Julia
Bozic, Fran
Vuksic, Mario
Jedlicka, Peter
Deller, Thomas
author_facet Del Turco, Domenico
Paul, Mandy H.
Schlaudraff, Jessica
Muellerleile, Julia
Bozic, Fran
Vuksic, Mario
Jedlicka, Peter
Deller, Thomas
author_sort Del Turco, Domenico
collection PubMed
description The cation-chloride cotransporters KCC2 and NKCC1 regulate the intracellular Cl(−) concentration and cell volume of neurons and/or glia. The Cl(−) extruder KCC2 is expressed at higher levels than the Cl(−) transporter NKCC1 in mature compared to immature neurons, accounting for the developmental shift from high to low Cl(−) concentration and from depolarizing to hyperpolarizing currents through GABA-A receptors. Previous studies have shown that KCC2 expression is downregulated following central nervous system injury, returning neurons to a more excitable state, which can be pathological or adaptive. Here, we show that deafferentation of the dendritic segments of granule cells in the outer (oml) and middle (mml) molecular layer of the dentate gyrus via entorhinal denervation in vivo leads to cell-type- and layer-specific changes in the expression of KCC2 and NKCC1. Microarray analysis validated by reverse transcription-quantitative polymerase chain reaction revealed a significant decrease in Kcc2 mRNA in the granule cell layer 7 days post-lesion. In contrast, Nkcc1 mRNA was upregulated in the oml/mml at this time point. Immunostaining revealed a selective reduction in KCC2 protein expression in the denervated dendrites of granule cells and an increase in NKCC1 expression in reactive astrocytes in the oml/mml. The NKCC1 upregulation is likely related to the increased activity of astrocytes and/or microglia in the deafferented region, while the transient KCC2 downregulation in granule cells may be associated with denervation-induced spine loss, potentially also serving a homeostatic role via boosting GABAergic depolarization. Furthermore, the delayed KCC2 recovery might be involved in the subsequent compensatory spinogenesis.
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spelling pubmed-102445162023-06-08 Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation Del Turco, Domenico Paul, Mandy H. Schlaudraff, Jessica Muellerleile, Julia Bozic, Fran Vuksic, Mario Jedlicka, Peter Deller, Thomas Front Mol Neurosci Molecular Neuroscience The cation-chloride cotransporters KCC2 and NKCC1 regulate the intracellular Cl(−) concentration and cell volume of neurons and/or glia. The Cl(−) extruder KCC2 is expressed at higher levels than the Cl(−) transporter NKCC1 in mature compared to immature neurons, accounting for the developmental shift from high to low Cl(−) concentration and from depolarizing to hyperpolarizing currents through GABA-A receptors. Previous studies have shown that KCC2 expression is downregulated following central nervous system injury, returning neurons to a more excitable state, which can be pathological or adaptive. Here, we show that deafferentation of the dendritic segments of granule cells in the outer (oml) and middle (mml) molecular layer of the dentate gyrus via entorhinal denervation in vivo leads to cell-type- and layer-specific changes in the expression of KCC2 and NKCC1. Microarray analysis validated by reverse transcription-quantitative polymerase chain reaction revealed a significant decrease in Kcc2 mRNA in the granule cell layer 7 days post-lesion. In contrast, Nkcc1 mRNA was upregulated in the oml/mml at this time point. Immunostaining revealed a selective reduction in KCC2 protein expression in the denervated dendrites of granule cells and an increase in NKCC1 expression in reactive astrocytes in the oml/mml. The NKCC1 upregulation is likely related to the increased activity of astrocytes and/or microglia in the deafferented region, while the transient KCC2 downregulation in granule cells may be associated with denervation-induced spine loss, potentially also serving a homeostatic role via boosting GABAergic depolarization. Furthermore, the delayed KCC2 recovery might be involved in the subsequent compensatory spinogenesis. Frontiers Media S.A. 2023-05-24 /pmc/articles/PMC10244516/ /pubmed/37293543 http://dx.doi.org/10.3389/fnmol.2023.1118746 Text en Copyright © 2023 Del Turco, Paul, Schlaudraff, Muellerleile, Bozic, Vuksic, Jedlicka and Deller. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Molecular Neuroscience
Del Turco, Domenico
Paul, Mandy H.
Schlaudraff, Jessica
Muellerleile, Julia
Bozic, Fran
Vuksic, Mario
Jedlicka, Peter
Deller, Thomas
Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation
title Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation
title_full Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation
title_fullStr Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation
title_full_unstemmed Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation
title_short Layer-specific changes of KCC2 and NKCC1 in the mouse dentate gyrus after entorhinal denervation
title_sort layer-specific changes of kcc2 and nkcc1 in the mouse dentate gyrus after entorhinal denervation
topic Molecular Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10244516/
https://www.ncbi.nlm.nih.gov/pubmed/37293543
http://dx.doi.org/10.3389/fnmol.2023.1118746
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