Multi‐omics analysis of ion channels expressed by chicken embryo vestibular type I and type II hair cells

Abstract Balance and gaze rely on the rapid and accurate detection and signalling of head movements by vestibular type I and type II hair cells. Signal transduction and transmission involve several types of ion channels, which are acquired progressively during hair cell differentiation and whose identity is known only in part. In the present study, we adopted a multi‐omics approach to identify the molecular nature of ion channels expressed by chicken vestibular hair cells between embryonic day 15 and embryonic day 21, the day of hatching, when both type I and II hair cells appear functionally mature. Type I hair cells are characterized by the expression of a low‐voltage‐activated outward rectifying K + current, termed I KL . In adult mice, I KL is carried by the K V 1.8 α‐subunit, although it is still debatable whether the K V 7.4 α‐subunit contributes to I KL in immature mouse type I hair cells. In this study, no effect of linopirdine, a specific blocker of K V 7 channels, was found in either immature or mature type I or II hair cells. Furthermore, whole‐organ RT‐PCR and transcriptome analysis showed no expression of the K V 7.4 α‐subunit transcript, while detecting the transcript for the K V 1.8 subunit. Its expression in type I and II hair cells was finally confirmed by patch‐sequencing experiments. Further analysis of the transcriptomes of individual hair cells revealed the presence of transcripts for several other α and auxiliary subunits of Na + , K + and Ca 2+ channels, which are, presumably, responsible for the ionic currents recorded in both birds and mammals.

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Publication Details

Journal
Experimental Physiology
Published
2026-09-15
DOI
https://doi.org/10.1113/ep094078
Primary Topic
Hearing, Cochlea, Tinnitus, Genetics
Type
article
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Multi‐omics analysis of ion channels expressed by chicken embryo vestibular type I and type II hair cells

Mariarosa Polimeni, Umberto Laforenza, Roberta Giunta, Francesca Borgo et al.
Experimental Physiology
Hearing, Cochlea, Tinnitus, Genetics
article

Multi‐omics analysis of ion channels expressed by chicken embryo vestibular type I and type II hair cells

Mariarosa Polimeni, Umberto Laforenza, Roberta Giunta, Francesca Borgo, Giulia Cheli, Sergio Masetto, Lazarevic Dejan, Francesca Stella, Eleonora Guidi, Giancarlo Russo
article en

Abstract

Abstract Balance and gaze rely on the rapid and accurate detection and signalling of head movements by vestibular type I and type II hair cells. Signal transduction and transmission involve several types of ion channels, which are acquired progressively during hair cell differentiation and whose identity is known only in part. In the present study, we adopted a multi‐omics approach to identify the molecular nature of ion channels expressed by chicken vestibular hair cells between embryonic day 15 and embryonic day 21, the day of hatching, when both type I and II hair cells appear functionally mature. Type I hair cells are characterized by the expression of a low‐voltage‐activated outward rectifying K + current, termed I KL . In adult mice, I KL is carried by the K V 1.8 α‐subunit, although it is still debatable whether the K V 7.4 α‐subunit contributes to I KL in immature mouse type I hair cells. In this study, no effect of linopirdine, a specific blocker of K V 7 channels, was found in either immature or mature type I or II hair cells. Furthermore, whole‐organ RT‐PCR and transcriptome analysis showed no expression of the K V 7.4 α‐subunit transcript, while detecting the transcript for the K V 1.8 subunit. Its expression in type I and II hair cells was finally confirmed by patch‐sequencing experiments. Further analysis of the transcriptomes of individual hair cells revealed the presence of transcripts for several other α and auxiliary subunits of Na + , K + and Ca 2+ channels, which are, presumably, responsible for the ionic currents recorded in both birds and mammals.

Experimental Physiology
Vita-Salute San Raffaele University (IT), University of Pavia (IT)
Openalex Percentile: Top 13%
Hearing, Cochlea, Tinnitus, Genetics
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