Literature DB >> 9547240

Development of the mouse inner ear and origin of its sensory organs.

H Morsli1, D Choo, A Ryan, R Johnson, D K Wu.   

Abstract

The molecular mechanisms dictating the morphogenesis and differentiation of the mammalian inner ear are largely unknown. To better elucidate the normal development of this organ, two approaches were taken. First, the membranous labyrinths of mouse inner ears ranging from 10.25 to 17 d postcoitum (dpc) were filled with paint to reveal their gross development. Particular attention was focused on the developing utricle, saccule, and cochlea. Second, we used bone morphogenetic protein 4 (BMP4) and lunatic fringe (Fng) as molecular markers to identify the origin of the sensory structures. Our data showed that BMP4 was an early marker for the superior, lateral, and posterior cristae, whereas Fng served as an early marker for the macula utriculi, macula sacculi, and the sensory portion of the cochlea. The posterior crista was the first organ to appear at 11.5 dpc and was followed by the superior crista, the lateral crista, and the macula utriculi at 12 dpc. The macula sacculi and the cochlea were present at 12 dpc but became distinguishable from each other by 13 dpc. Based on the gene expression patterns, the anterior and lateral cristae may share a common origin. Similarly, three sensory organs, the macula utriculi, macula sacculi, and cochlea, seem to arise from a single region of the otocyst.

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Year:  1998        PMID: 9547240      PMCID: PMC6792659     

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  27 in total

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Journal:  J Laryngol Otol       Date:  1960-12       Impact factor: 1.469

2.  Expression of Radical fringe in limb-bud ectoderm regulates apical ectodermal ridge formation.

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Journal:  Nature       Date:  1997-03-27       Impact factor: 49.962

3.  Radical fringe positions the apical ectodermal ridge at the dorsoventral boundary of the vertebrate limb.

Authors:  C Rodriguez-Esteban; J W Schwabe; J De La Peña; B Foys; B Eshelman; J C Izpisúa Belmonte
Journal:  Nature       Date:  1997-03-27       Impact factor: 49.962

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Journal:  Acta Otolaryngol Suppl       Date:  1971

5.  Sonic hedgehog mediates the polarizing activity of the ZPA.

Authors:  R D Riddle; R L Johnson; E Laufer; C Tabin
Journal:  Cell       Date:  1993-12-31       Impact factor: 41.582

6.  The fate mapping of the eleventh and twelfth day mouse otocyst: an in vitro study of the sites of origin of the embryonic inner ear sensory structures.

Authors:  C W Li; T R Van De Water; R J Ruben
Journal:  J Morphol       Date:  1978-09       Impact factor: 1.804

7.  A family of mammalian Fringe genes implicated in boundary determination and the Notch pathway.

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Journal:  Development       Date:  1997-06       Impact factor: 6.868

Review 8.  Genes and deafness.

Authors:  K P Steel; S D Brown
Journal:  Trends Genet       Date:  1994-12       Impact factor: 11.639

9.  Expression of BDNF and NT-3 mRNA in hair cells of the organ of Corti: quantitative analysis in developing rats.

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Journal:  Hear Res       Date:  1994-02       Impact factor: 3.208

10.  Developmental morphology of the mouse inner ear. A scanning electron microscopic observation.

Authors:  D J Lim; M Anniko
Journal:  Acta Otolaryngol Suppl       Date:  1985
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  176 in total

Review 1.  Development and evolution of inner ear sensory epithelia and their innervation.

Authors:  B Fritzsch; K W Beisel; K Jones; I Fariñas; A Maklad; J Lee; L F Reichardt
Journal:  J Neurobiol       Date:  2002-11-05

2.  Canonical Notch signaling is not necessary for prosensory induction in the mouse cochlea: insights from a conditional mutant of RBPjkappa.

Authors:  Martín L Basch; Takahiro Ohyama; Neil Segil; Andrew K Groves
Journal:  J Neurosci       Date:  2011-06-01       Impact factor: 6.167

3.  FGF/FGFR-2(IIIb) signaling is essential for inner ear morphogenesis.

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Journal:  J Neurosci       Date:  2000-08-15       Impact factor: 6.167

4.  Essential role of BETA2/NeuroD1 in development of the vestibular and auditory systems.

Authors:  M Liu; F A Pereira; S D Price; M J Chu; C Shope; D Himes; R A Eatock; W E Brownell; A Lysakowski; M J Tsai
Journal:  Genes Dev       Date:  2000-11-15       Impact factor: 11.361

5.  Expression and function of FGF10 in mammalian inner ear development.

Authors:  Sarah Pauley; Tracy J Wright; Ulla Pirvola; David Ornitz; Kirk Beisel; Bernd Fritzsch
Journal:  Dev Dyn       Date:  2003-06       Impact factor: 3.780

Review 6.  Molecular conservation and novelties in vertebrate ear development.

Authors:  B Fritzsch; K W Beisel
Journal:  Curr Top Dev Biol       Date:  2003       Impact factor: 4.897

Review 7.  Keeping sensory cells and evolving neurons to connect them to the brain: molecular conservation and novelties in vertebrate ear development.

Authors:  B Fritzsch; K W Beisel
Journal:  Brain Behav Evol       Date:  2004       Impact factor: 1.808

8.  Specification of the mammalian cochlea is dependent on Sonic hedgehog.

Authors:  Martin M Riccomagno; Lenka Martinu; Michael Mulheisen; Doris K Wu; Douglas J Epstein
Journal:  Genes Dev       Date:  2002-09-15       Impact factor: 11.361

9.  Retinoic acid repression of bone morphogenetic protein 4 in inner ear development.

Authors:  Deborah L Thompson; Lisa M Gerlach-Bank; Kate F Barald; Ronald J Koenig
Journal:  Mol Cell Biol       Date:  2003-04       Impact factor: 4.272

10.  Bone morphogenetic protein 4 antagonizes hair cell regeneration in the avian auditory epithelium.

Authors:  Rebecca M Lewis; Jesse J Keller; Liangcai Wan; Jennifer S Stone
Journal:  Hear Res       Date:  2018-05-02       Impact factor: 3.208

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