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A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells

Sensory‐independent Ca(2+) spiking regulates the development of mammalian sensory systems. In the immature cochlea, inner hair cells (IHCs) fire spontaneous Ca(2+) action potentials (APs) that are generated either intrinsically or by intercellular Ca(2+) waves in the nonsensory cells. The extent to...

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Autores principales: Carlton, Adam J, Jeng, Jing‐Yi, Grandi, Fiorella C, De Faveri, Francesca, Ceriani, Federico, De Tomasi, Lara, Underhill, Anna, Johnson, Stuart L, Legan, Kevin P, Kros, Corné J, Richardson, Guy P, Mustapha, Mirna, Marcotti, Walter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9929643/
https://www.ncbi.nlm.nih.gov/pubmed/36594367
http://dx.doi.org/10.15252/embj.2022112118
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author Carlton, Adam J
Jeng, Jing‐Yi
Grandi, Fiorella C
De Faveri, Francesca
Ceriani, Federico
De Tomasi, Lara
Underhill, Anna
Johnson, Stuart L
Legan, Kevin P
Kros, Corné J
Richardson, Guy P
Mustapha, Mirna
Marcotti, Walter
author_facet Carlton, Adam J
Jeng, Jing‐Yi
Grandi, Fiorella C
De Faveri, Francesca
Ceriani, Federico
De Tomasi, Lara
Underhill, Anna
Johnson, Stuart L
Legan, Kevin P
Kros, Corné J
Richardson, Guy P
Mustapha, Mirna
Marcotti, Walter
author_sort Carlton, Adam J
collection PubMed
description Sensory‐independent Ca(2+) spiking regulates the development of mammalian sensory systems. In the immature cochlea, inner hair cells (IHCs) fire spontaneous Ca(2+) action potentials (APs) that are generated either intrinsically or by intercellular Ca(2+) waves in the nonsensory cells. The extent to which either or both of these Ca(2+) signalling mechansims are required for IHC maturation is unknown. We find that intrinsic Ca(2+) APs in IHCs, but not those elicited by Ca(2+) waves, regulate the maturation and maintenance of the stereociliary hair bundles. Using a mouse model in which the potassium channel Kir2.1 is reversibly overexpressed in IHCs (Kir2.1‐OE), we find that IHC membrane hyperpolarization prevents IHCs from generating intrinsic Ca(2+) APs but not APs induced by Ca(2+) waves. Absence of intrinsic Ca(2+) APs leads to the loss of mechanoelectrical transduction in IHCs prior to hearing onset due to progressive loss or fusion of stereocilia. RNA‐sequencing data show that pathways involved in morphogenesis, actin filament‐based processes, and Rho‐GTPase signaling are upregulated in Kir2.1‐OE mice. By manipulating in vivo expression of Kir2.1 channels, we identify a “critical time period” during which intrinsic Ca(2+) APs in IHCs regulate hair‐bundle function.
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spelling pubmed-99296432023-02-16 A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells Carlton, Adam J Jeng, Jing‐Yi Grandi, Fiorella C De Faveri, Francesca Ceriani, Federico De Tomasi, Lara Underhill, Anna Johnson, Stuart L Legan, Kevin P Kros, Corné J Richardson, Guy P Mustapha, Mirna Marcotti, Walter EMBO J Articles Sensory‐independent Ca(2+) spiking regulates the development of mammalian sensory systems. In the immature cochlea, inner hair cells (IHCs) fire spontaneous Ca(2+) action potentials (APs) that are generated either intrinsically or by intercellular Ca(2+) waves in the nonsensory cells. The extent to which either or both of these Ca(2+) signalling mechansims are required for IHC maturation is unknown. We find that intrinsic Ca(2+) APs in IHCs, but not those elicited by Ca(2+) waves, regulate the maturation and maintenance of the stereociliary hair bundles. Using a mouse model in which the potassium channel Kir2.1 is reversibly overexpressed in IHCs (Kir2.1‐OE), we find that IHC membrane hyperpolarization prevents IHCs from generating intrinsic Ca(2+) APs but not APs induced by Ca(2+) waves. Absence of intrinsic Ca(2+) APs leads to the loss of mechanoelectrical transduction in IHCs prior to hearing onset due to progressive loss or fusion of stereocilia. RNA‐sequencing data show that pathways involved in morphogenesis, actin filament‐based processes, and Rho‐GTPase signaling are upregulated in Kir2.1‐OE mice. By manipulating in vivo expression of Kir2.1 channels, we identify a “critical time period” during which intrinsic Ca(2+) APs in IHCs regulate hair‐bundle function. John Wiley and Sons Inc. 2023-01-03 /pmc/articles/PMC9929643/ /pubmed/36594367 http://dx.doi.org/10.15252/embj.2022112118 Text en © 2023 The Authors. Published under the terms of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Carlton, Adam J
Jeng, Jing‐Yi
Grandi, Fiorella C
De Faveri, Francesca
Ceriani, Federico
De Tomasi, Lara
Underhill, Anna
Johnson, Stuart L
Legan, Kevin P
Kros, Corné J
Richardson, Guy P
Mustapha, Mirna
Marcotti, Walter
A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
title A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
title_full A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
title_fullStr A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
title_full_unstemmed A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
title_short A critical period of prehearing spontaneous Ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
title_sort critical period of prehearing spontaneous ca(2+) spiking is required for hair‐bundle maintenance in inner hair cells
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9929643/
https://www.ncbi.nlm.nih.gov/pubmed/36594367
http://dx.doi.org/10.15252/embj.2022112118
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