Literature DB >> 21853378

Serial analysis of gene expression in the chicken otocyst.

Saku T Sinkkonen1, Veronika Starlinger, Deepa J Galaiya, Roman D Laske, Samuel Myllykangas, Kazuo Oshima, Stefan Heller.   

Abstract

The inner ear arises from multipotent placodal precursors that are gradually committed to the otic fate and further differentiate into all inner ear cell types, with the exception of a few immigrating neural crest-derived cells. The otocyst plays a pivotal role during inner ear development: otic progenitor cells sub-compartmentalize into non-sensory and prosensory domains, giving rise to individual vestibular and auditory organs and their associated ganglia. The genes and pathways underlying this progressive subdivision and differentiation process are not entirely known. The goal of this study was to identify a comprehensive set of genes expressed in the chicken otocyst using the serial analysis of gene expression (SAGE) method. Our analysis revealed several hundred transcriptional regulators, potential signaling proteins, and receptors. We identified a substantial collection of genes that were previously known in the context of inner ear development, but we also found many new candidate genes, such as SOX4, SOX5, SOX7, SOX8, SOX11, and SOX18, which previously were not known to be expressed in the developing inner ear. Despite its limitation of not being all-inclusive, the generated otocyst SAGE library is a practical bioinformatics tool to study otocyst gene expression and to identify candidate genes for developmental studies.

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Year:  2011        PMID: 21853378      PMCID: PMC3214236          DOI: 10.1007/s10162-011-0286-z

Source DB:  PubMed          Journal:  J Assoc Res Otolaryngol        ISSN: 1438-7573


  72 in total

1.  Identification and analysis of genes from the mouse otic vesicle and their association with developmental subprocesses through in situ hybridization.

Authors:  Nicola Powles; Christian Babbs; Michael Ficker; Thomas Schimmang; Mark Maconochie
Journal:  Dev Biol       Date:  2004-04-01       Impact factor: 3.582

2.  The expression pattern of opticin during chicken embryogenesis.

Authors:  Elena I Frolova; Valentina M Fokina; David C Beebe
Journal:  Gene Expr Patterns       Date:  2004-05       Impact factor: 1.224

3.  Stem/progenitor cells derived from the cochlear sensory epithelium give rise to spheres with distinct morphologies and features.

Authors:  Marc Diensthuber; Kazuo Oshima; Stefan Heller
Journal:  J Assoc Res Otolaryngol       Date:  2009-02-27

4.  Coordinated molecular control of otic capsule differentiation: functional role of Wnt5a signaling and opposition by sfrp3 activity.

Authors:  Wei Liu; Lijun Li; Geming Li; Frank Garritano; Alan Shanske; Dorothy A Frenz
Journal:  Growth Factors       Date:  2008-12       Impact factor: 2.511

5.  Mapping of Wnt, frizzled, and Wnt inhibitor gene expression domains in the avian otic primordium.

Authors:  Ulrike J Sienknecht; Donna M Fekete
Journal:  J Comp Neurol       Date:  2009-12-20       Impact factor: 3.215

Review 6.  Quo vadis, hair cell regeneration?

Authors:  John V Brigande; Stefan Heller
Journal:  Nat Neurosci       Date:  2009-05-26       Impact factor: 24.884

7.  PTK7 is essential for polarized cell motility and convergent extension during mouse gastrulation.

Authors:  Wei Wei Yen; Margot Williams; Ammasi Periasamy; Mark Conaway; Carol Burdsal; Raymond Keller; Xiaowei Lu; Ann Sutherland
Journal:  Development       Date:  2009-05-13       Impact factor: 6.868

Review 8.  Olfactomedin domain-containing proteins: possible mechanisms of action and functions in normal development and pathology.

Authors:  Stanislav I Tomarev; Naoki Nakaya
Journal:  Mol Neurobiol       Date:  2009-06-26       Impact factor: 5.590

9.  Cross-repressive interactions between Lrig3 and netrin 1 shape the architecture of the inner ear.

Authors:  Victoria E Abraira; Tony Del Rio; Andrew F Tucker; John Slonimsky; Hannah L Keirnes; Lisa V Goodrich
Journal:  Development       Date:  2008-11-12       Impact factor: 6.868

10.  Disorganized innervation and neuronal loss in the inner ear of Slitrk6-deficient mice.

Authors:  Kei-ichi Katayama; Azel Zine; Maya Ota; Yoshifumi Matsumoto; Takashi Inoue; Bernd Fritzsch; Jun Aruga
Journal:  PLoS One       Date:  2009-11-11       Impact factor: 3.240

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  5 in total

Review 1.  Gene expression profiling of the inner ear.

Authors:  Thomas Schimmang; Mark Maconochie
Journal:  J Anat       Date:  2015-09-25       Impact factor: 2.610

2.  Genes Implicated in Rare Congenital Inner Ear and Cochleovestibular Nerve Malformations.

Authors:  Elina Kari; Lorida Llaci; John L Go; Marcus Naymik; James A Knowles; Suzanne M Leal; Sampath Rangasamy; Matthew J Huentelman; Winnie Liang; Rick A Friedman; Isabelle Schrauwen
Journal:  Ear Hear       Date:  2020 Jul/Aug       Impact factor: 3.570

3.  Fgf3 and Fgf16 expression patterns define spatial and temporal domains in the developing chick inner ear.

Authors:  Daniel Olaya-Sánchez; Luis Óscar Sánchez-Guardado; Sho Ohta; Susan C Chapman; Gary C Schoenwolf; Luis Puelles; Matías Hidalgo-Sánchez
Journal:  Brain Struct Funct       Date:  2016-03-19       Impact factor: 3.270

4.  Analysis of FGF-dependent and FGF-independent pathways in otic placode induction.

Authors:  Lu Yang; Paul O'Neill; Kareen Martin; Juan C Maass; Vassil Vassilev; Raj Ladher; Andrew K Groves
Journal:  PLoS One       Date:  2013-01-23       Impact factor: 3.240

5.  SOX7 co-regulates Wnt/β-catenin signaling with Axin-2: both expressed at low levels in breast cancer.

Authors:  Huidi Liu; Emilio Mastriani; Zi-Qiao Yan; Si-Yuan Yin; Zheng Zeng; Hong Wang; Qing-Hai Li; Hong-Yu Liu; Xiaoyu Wang; Hong-Xia Bao; Yu-Jie Zhou; Jun-Jie Kou; Dongsheng Li; Ting Li; Jianrui Liu; Yongfang Liu; Lin Yin; Li Qiu; Liling Gong; Shu-Lin Liu
Journal:  Sci Rep       Date:  2016-05-18       Impact factor: 4.379

  5 in total

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