Cargando…

FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation

Inner ear mechanosensory hair cells transduce sound and balance information. Auditory hair cells emerge from a Sox2-positive sensory patch in the inner ear epithelium, which is progressively restricted during development. This restriction depends on the action of signaling molecules. Fibroblast grow...

Descripción completa

Detalles Bibliográficos
Autores principales: Ono, Kazuya, Kita, Tomoko, Sato, Shigeru, O'Neill, Paul, Mak, Siu-Shan, Paschaki, Marie, Ito, Masataka, Gotoh, Noriko, Kawakami, Kiyoshi, Sasai, Yoshiki, Ladher, Raj K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3900395/
https://www.ncbi.nlm.nih.gov/pubmed/24465223
http://dx.doi.org/10.1371/journal.pgen.1004118
_version_ 1782300686348713984
author Ono, Kazuya
Kita, Tomoko
Sato, Shigeru
O'Neill, Paul
Mak, Siu-Shan
Paschaki, Marie
Ito, Masataka
Gotoh, Noriko
Kawakami, Kiyoshi
Sasai, Yoshiki
Ladher, Raj K.
author_facet Ono, Kazuya
Kita, Tomoko
Sato, Shigeru
O'Neill, Paul
Mak, Siu-Shan
Paschaki, Marie
Ito, Masataka
Gotoh, Noriko
Kawakami, Kiyoshi
Sasai, Yoshiki
Ladher, Raj K.
author_sort Ono, Kazuya
collection PubMed
description Inner ear mechanosensory hair cells transduce sound and balance information. Auditory hair cells emerge from a Sox2-positive sensory patch in the inner ear epithelium, which is progressively restricted during development. This restriction depends on the action of signaling molecules. Fibroblast growth factor (FGF) signalling is important during sensory specification: attenuation of Fgfr1 disrupts cochlear hair cell formation; however, the underlying mechanisms remain unknown. Here we report that in the absence of FGFR1 signaling, the expression of Sox2 within the sensory patch is not maintained. Despite the down-regulation of the prosensory domain markers, p27(Kip1), Hey2, and Hes5, progenitors can still exit the cell cycle to form the zone of non-proliferating cells (ZNPC), however the number of cells that form sensory cells is reduced. Analysis of a mutant Fgfr1 allele, unable to bind to the adaptor protein, Frs2/3, indicates that Sox2 maintenance can be regulated by MAP kinase. We suggest that FGF signaling, through the activation of MAP kinase, is necessary for the maintenance of sensory progenitors and commits precursors to sensory cell differentiation in the mammalian cochlea.
format Online
Article
Text
id pubmed-3900395
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-39003952014-01-24 FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation Ono, Kazuya Kita, Tomoko Sato, Shigeru O'Neill, Paul Mak, Siu-Shan Paschaki, Marie Ito, Masataka Gotoh, Noriko Kawakami, Kiyoshi Sasai, Yoshiki Ladher, Raj K. PLoS Genet Research Article Inner ear mechanosensory hair cells transduce sound and balance information. Auditory hair cells emerge from a Sox2-positive sensory patch in the inner ear epithelium, which is progressively restricted during development. This restriction depends on the action of signaling molecules. Fibroblast growth factor (FGF) signalling is important during sensory specification: attenuation of Fgfr1 disrupts cochlear hair cell formation; however, the underlying mechanisms remain unknown. Here we report that in the absence of FGFR1 signaling, the expression of Sox2 within the sensory patch is not maintained. Despite the down-regulation of the prosensory domain markers, p27(Kip1), Hey2, and Hes5, progenitors can still exit the cell cycle to form the zone of non-proliferating cells (ZNPC), however the number of cells that form sensory cells is reduced. Analysis of a mutant Fgfr1 allele, unable to bind to the adaptor protein, Frs2/3, indicates that Sox2 maintenance can be regulated by MAP kinase. We suggest that FGF signaling, through the activation of MAP kinase, is necessary for the maintenance of sensory progenitors and commits precursors to sensory cell differentiation in the mammalian cochlea. Public Library of Science 2014-01-23 /pmc/articles/PMC3900395/ /pubmed/24465223 http://dx.doi.org/10.1371/journal.pgen.1004118 Text en © 2014 Ono et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ono, Kazuya
Kita, Tomoko
Sato, Shigeru
O'Neill, Paul
Mak, Siu-Shan
Paschaki, Marie
Ito, Masataka
Gotoh, Noriko
Kawakami, Kiyoshi
Sasai, Yoshiki
Ladher, Raj K.
FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation
title FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation
title_full FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation
title_fullStr FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation
title_full_unstemmed FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation
title_short FGFR1-Frs2/3 Signalling Maintains Sensory Progenitors during Inner Ear Hair Cell Formation
title_sort fgfr1-frs2/3 signalling maintains sensory progenitors during inner ear hair cell formation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3900395/
https://www.ncbi.nlm.nih.gov/pubmed/24465223
http://dx.doi.org/10.1371/journal.pgen.1004118
work_keys_str_mv AT onokazuya fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT kitatomoko fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT satoshigeru fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT oneillpaul fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT maksiushan fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT paschakimarie fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT itomasataka fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT gotohnoriko fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT kawakamikiyoshi fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT sasaiyoshiki fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation
AT ladherrajk fgfr1frs23signallingmaintainssensoryprogenitorsduringinnerearhaircellformation