Literature DB >> 24768691

Reconstruction of the mouse otocyst and early neuroblast lineage at single-cell resolution.

Robert Durruthy-Durruthy1, Assaf Gottlieb2, Byron H Hartman1, Jörg Waldhaus1, Roman D Laske1, Russ Altman2, Stefan Heller3.   

Abstract

The otocyst harbors progenitors for most cell types of the mature inner ear. Developmental lineage analyses and gene expression studies suggest that distinct progenitor populations are compartmentalized to discrete axial domains in the early otocyst. Here, we conducted highly parallel quantitative RT-PCR measurements on 382 individual cells from the developing otocyst and neuroblast lineages to assay 96 genes representing established otic markers, signaling-pathway-associated transcripts, and novel otic-specific genes. By applying multivariate cluster, principal component, and network analyses to the data matrix, we were able to readily distinguish the delaminating neuroblasts and to describe progressive states of gene expression in this population at single-cell resolution. It further established a three-dimensional model of the otocyst in which each individual cell can be precisely mapped into spatial expression domains. Our bioinformatic modeling revealed spatial dynamics of different signaling pathways active during early neuroblast development and prosensory domain specification.
Copyright © 2014 Elsevier Inc. All rights reserved.

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Year:  2014        PMID: 24768691      PMCID: PMC4051200          DOI: 10.1016/j.cell.2014.03.036

Source DB:  PubMed          Journal:  Cell        ISSN: 0092-8674            Impact factor:   41.582


  54 in total

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2.  Emx2 and early hair cell development in the mouse inner ear.

Authors:  Matthew Holley; Charlotte Rhodes; Adam Kneebone; Michel K Herde; Michelle Fleming; Karen P Steel
Journal:  Dev Biol       Date:  2010-02-10       Impact factor: 3.582

3.  Fgf3 is required for dorsal patterning and morphogenesis of the inner ear epithelium.

Authors:  Ekaterina P Hatch; C Albert Noyes; Xiaofen Wang; Tracy J Wright; Suzanne L Mansour
Journal:  Development       Date:  2007-09-12       Impact factor: 6.868

4.  Notch signalling is needed to maintain, but not to initiate, the formation of prosensory patches in the chick inner ear.

Authors:  Nicolas Daudet; Linda Ariza-McNaughton; Julian Lewis
Journal:  Development       Date:  2007-06       Impact factor: 6.868

5.  Early regionalization of the otic placode and its regulation by the Notch signaling pathway.

Authors:  Gina Abelló; Safia Khatri; Fernando Giráldez; Berta Alsina
Journal:  Mech Dev       Date:  2007-04-20       Impact factor: 1.882

6.  Sox2 signaling in prosensory domain specification and subsequent hair cell differentiation in the developing cochlea.

Authors:  Alain Dabdoub; Chandrakala Puligilla; Jennifer M Jones; Bernd Fritzsch; Kathryn S E Cheah; Larysa H Pevny; Matthew W Kelley
Journal:  Proc Natl Acad Sci U S A       Date:  2008-11-14       Impact factor: 11.205

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8.  Lmx1a maintains proper neurogenic, sensory, and non-sensory domains in the mammalian inner ear.

Authors:  Soo Kyung Koo; Jennifer K Hill; Chan Ho Hwang; Zheng Shi Lin; Kathleen J Millen; Doris K Wu
Journal:  Dev Biol       Date:  2009-06-18       Impact factor: 3.582

9.  Mutation in ankyrin repeats of the mouse Notch2 gene induces early embryonic lethality.

Authors:  Y Hamada; Y Kadokawa; M Okabe; M Ikawa; J R Coleman; Y Tsujimoto
Journal:  Development       Date:  1999-08       Impact factor: 6.868

10.  The Notch ligand JAG1 is required for sensory progenitor development in the mammalian inner ear.

Authors:  Amy E Kiernan; Jingxia Xu; Thomas Gridley
Journal:  PLoS Genet       Date:  2006-01-13       Impact factor: 5.917

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  63 in total

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

2.  High-throughput spatial mapping of single-cell RNA-seq data to tissue of origin.

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Review 3.  Computational and analytical challenges in single-cell transcriptomics.

Authors:  Oliver Stegle; Sarah A Teichmann; John C Marioni
Journal:  Nat Rev Genet       Date:  2015-01-28       Impact factor: 53.242

4.  Single cell expression analysis reveals anatomical and cell cycle-dependent transcriptional shifts during heart development.

Authors:  Guang Li; Lei Tian; William Goodyer; Eric J Kort; Jan W Buikema; Adele Xu; Joseph C Wu; Stefan Jovinge; Sean M Wu
Journal:  Development       Date:  2019-06-14       Impact factor: 6.868

Review 5.  Strategies for the acquisition of transcriptional and epigenetic information in single cells.

Authors:  Guang Li; Elda Dzilic; Nick Flores; Alice Shieh; Sean M Wu
Journal:  J Thorac Dis       Date:  2017-03       Impact factor: 2.895

Review 6.  Single cells get together: High-resolution approaches to study the dynamics of early mouse development.

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Journal:  Semin Cell Dev Biol       Date:  2015-07-13       Impact factor: 7.727

7.  Single-cell analysis delineates a trajectory toward the human early otic lineage.

Authors:  Megan Ealy; Daniel C Ellwanger; Nina Kosaric; Andres P Stapper; Stefan Heller
Journal:  Proc Natl Acad Sci U S A       Date:  2016-07-11       Impact factor: 11.205

8.  Single-Cell Transcriptome Analysis of Developing and Regenerating Spiral Ganglion Neurons.

Authors:  Kelvin Y Kwan
Journal:  Curr Pharmacol Rep       Date:  2016-08-04

Review 9.  Clustering single cells: a review of approaches on high-and low-depth single-cell RNA-seq data.

Authors:  Vilas Menon
Journal:  Brief Funct Genomics       Date:  2018-07-01       Impact factor: 4.241

10.  Spatially multiplexed RNA in situ hybridization to reveal tumor heterogeneity.

Authors:  Lena Voith von Voithenberg; Anna Fomitcheva Khartchenko; Deborah Huber; Peter Schraml; Govind V Kaigala
Journal:  Nucleic Acids Res       Date:  2020-02-20       Impact factor: 16.971

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