Literature DB >> 27209239

Identification of new regulators of embryonic patterning and morphogenesis in Xenopus gastrulae by RNA sequencing.

Ivan K Popov1, Taejoon Kwon2, David K Crossman3, Michael R Crowley3, John B Wallingford4, Chenbei Chang5.   

Abstract

During early vertebrate embryogenesis, cell fate specification is often coupled with cell acquisition of specific adhesive, polar and/or motile behaviors. In Xenopus gastrulae, tissues fated to form different axial structures display distinct motility. The cells in the early organizer move collectively and directionally toward the animal pole and contribute to anterior mesendoderm, whereas the dorsal and the ventral-posterior trunk tissues surrounding the blastopore of mid-gastrula embryos undergo convergent extension and convergent thickening movements, respectively. While factors regulating cell lineage specification have been described in some detail, the molecular machinery that controls cell motility is not understood in depth. To gain insight into the gene battery that regulates both cell fates and motility in particular embryonic tissues, we performed RNA sequencing (RNA-seq) to investigate differentially expressed genes in the early organizer, the dorsal and the ventral marginal zone of Xenopus gastrulae. We uncovered many known signaling and transcription factors that have been reported to play roles in embryonic patterning during gastrulation. We also identified many uncharacterized genes as well as genes that encoded extracellular matrix (ECM) proteins or potential regulators of actin cytoskeleton. Co-expression of a selected subset of the differentially expressed genes with activin in animal caps revealed that they had distinct ability to block activin-induced animal cap elongation. Most of these factors did not interfere with mesodermal induction by activin, but an ECM protein, EFEMP2, inhibited activin signaling and acted downstream of the activated type I receptor. By focusing on a secreted protein kinase PKDCC1, we showed with overexpression and knockdown experiments that PKDCC1 regulated gastrulation movements as well as anterior neural patterning during early Xenopus development. Overall, our studies identify many differentially expressed signaling and cytoskeleton regulators in different embryonic regions of Xenopus gastrulae and imply their functions in regulating cell fates and/or behaviors during gastrulation.
Copyright © 2016 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Convergent extension; Dorsal and ventral marginal zone; Organizer; PKDCC1; RNA-seq

Mesh:

Substances:

Year:  2016        PMID: 27209239      PMCID: PMC5116012          DOI: 10.1016/j.ydbio.2016.05.014

Source DB:  PubMed          Journal:  Dev Biol        ISSN: 0012-1606            Impact factor:   3.582


  89 in total

1.  Activation of Gbetagamma signaling downstream of Wnt-11/Xfz7 regulates Cdc42 activity during Xenopus gastrulation.

Authors:  Alfredo Penzo-Mendèz; Muriel Umbhauer; Alexandre Djiane; Jean-Claude Boucaut; Jean-François Riou
Journal:  Dev Biol       Date:  2003-05-15       Impact factor: 3.582

2.  Expression cloning of noggin, a new dorsalizing factor localized to the Spemann organizer in Xenopus embryos.

Authors:  W C Smith; R M Harland
Journal:  Cell       Date:  1992-09-04       Impact factor: 41.582

3.  Regional requirements for Dishevelled signaling during Xenopus gastrulation: separable effects on blastopore closure, mesendoderm internalization and archenteron formation.

Authors:  Andrew J Ewald; Sara M Peyrot; J Michael Tyszka; Scott E Fraser; John B Wallingford
Journal:  Development       Date:  2004-11-17       Impact factor: 6.868

4.  The cytoplasmic tyrosine kinase Arg regulates gastrulation via control of actin organization.

Authors:  Gustavo Bonacci; Jason Fletcher; Madhav Devani; Harsh Dwivedi; Ray Keller; Chenbei Chang
Journal:  Dev Biol       Date:  2012-01-18       Impact factor: 3.582

Review 5.  Formation and function of Spemann's organizer.

Authors:  R Harland; J Gerhart
Journal:  Annu Rev Cell Dev Biol       Date:  1997       Impact factor: 13.827

6.  Genome-wide view of TGFβ/Foxh1 regulation of the early mesendoderm program.

Authors:  William T Chiu; Rebekah Charney Le; Ira L Blitz; Margaret B Fish; Yi Li; Jacob Biesinger; Xiaohui Xie; Ken W Y Cho
Journal:  Development       Date:  2014-10-30       Impact factor: 6.868

7.  Xenopus Cdc42 regulates convergent extension movements during gastrulation through Wnt/Ca2+ signaling pathway.

Authors:  Sun-Cheol Choi; Jin-Kwan Han
Journal:  Dev Biol       Date:  2002-04-15       Impact factor: 3.582

8.  Wnt/Frizzled activation of Rho regulates vertebrate gastrulation and requires a novel Formin homology protein Daam1.

Authors:  R Habas; Y Kato; X He
Journal:  Cell       Date:  2001-12-28       Impact factor: 41.582

9.  PI3K and Erk MAPK mediate ErbB signaling in Xenopus gastrulation.

Authors:  Shuyi Nie; Chenbei Chang
Journal:  Mech Dev       Date:  2007-07-19       Impact factor: 1.882

10.  edgeR: a Bioconductor package for differential expression analysis of digital gene expression data.

Authors:  Mark D Robinson; Davis J McCarthy; Gordon K Smyth
Journal:  Bioinformatics       Date:  2009-11-11       Impact factor: 6.937

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  11 in total

1.  Multiscale analysis of architecture, cell size and the cell cortex reveals cortical F-actin density and composition are major contributors to mechanical properties during convergent extension.

Authors:  Joseph H Shawky; Uma L Balakrishnan; Carsten Stuckenholz; Lance A Davidson
Journal:  Development       Date:  2018-10-05       Impact factor: 6.868

Review 2.  A gene regulatory program controlling early Xenopus mesendoderm formation: Network conservation and motifs.

Authors:  Rebekah M Charney; Kitt D Paraiso; Ira L Blitz; Ken W Y Cho
Journal:  Semin Cell Dev Biol       Date:  2017-03-22       Impact factor: 7.727

3.  Spemann organizer transcriptome induction by early beta-catenin, Wnt, Nodal, and Siamois signals in Xenopus laevis.

Authors:  Yi Ding; Diego Ploper; Eric A Sosa; Gabriele Colozza; Yuki Moriyama; Maria D J Benitez; Kelvin Zhang; Daria Merkurjev; Edward M De Robertis
Journal:  Proc Natl Acad Sci U S A       Date:  2017-03-27       Impact factor: 11.205

4.  The RhoGEF protein Plekhg5 regulates apical constriction of bottle cells during gastrulation.

Authors:  Ivan K Popov; Heather J Ray; Paul Skoglund; Ray Keller; Chenbei Chang
Journal:  Development       Date:  2018-12-12       Impact factor: 6.868

5.  Transcriptomics of dorso-ventral axis determination in Xenopus tropicalis.

Authors:  Rita S Monteiro; George E Gentsch; James C Smith
Journal:  Dev Biol       Date:  2018-04-27       Impact factor: 3.582

6.  Bmp Signal Gradient Modulates Convergent Cell Movement via Xarhgef3.2 during Gastrulation of Xenopus Embryos.

Authors:  Jaeho Yoon; Vijay Kumar; Ravi Shankar Goutam; Sung-Chan Kim; Soochul Park; Unjoo Lee; Jaebong Kim
Journal:  Cells       Date:  2021-12-24       Impact factor: 6.600

7.  Developmental and Injury-induced Changes in DNA Methylation in Regenerative versus Non-regenerative Regions of the Vertebrate Central Nervous System.

Authors:  Sergei Reverdatto; Aparna Prasad; Jamie L Belrose; Xiang Zhang; Morgan A Sammons; Kurt M Gibbs; Ben G Szaro
Journal:  BMC Genomics       Date:  2022-01-04       Impact factor: 3.969

8.  A temporally resolved transcriptome for developing "Keller" explants of the Xenopus laevis dorsal marginal zone.

Authors:  Anneke D Kakebeen; Robert J Huebner; Asako Shindo; Kujin Kwon; Taejoon Kwon; Andrea E Wills; John B Wallingford
Journal:  Dev Dyn       Date:  2021-01-28       Impact factor: 3.780

9.  The Xenopus animal cap transcriptome: building a mucociliary epithelium.

Authors:  Alessandro Angerilli; Pawel Smialowski; Ralph Aw Rupp
Journal:  Nucleic Acids Res       Date:  2018-09-28       Impact factor: 16.971

10.  Comparative gene expression profiling between optic nerve and spinal cord injury in Xenopus laevis reveals a core set of genes inherent in successful regeneration of vertebrate central nervous system axons.

Authors:  Jamie L Belrose; Aparna Prasad; Morgan A Sammons; Kurt M Gibbs; Ben G Szaro
Journal:  BMC Genomics       Date:  2020-08-05       Impact factor: 3.969

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