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Ectoderm to mesoderm transition by downregulation of actomyosin contractility

bioRxiv, ISSN: 2692-8205
2019
  • 2
    Citations
  • 0
    Usage
  • 0
    Captures
  • 1
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    2
    • Citation Indexes
      2
      • CrossRef
        2
  • Mentions
    1
    • Blog Mentions
      1
      • 1

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October in preprints

Welcome to our monthly trawl for developmental biology (and related) preprints.  The preprints this month are hosted on bioRxiv and arXiv – use these links to get to the section you want.   Developmental biology | Patterning & signalling | Morphogenesis & mechanics | Genes & genomes | Stem cells, regeneration & disease modelling | Plant development Evo-devo & evo Cell biology Modelling Tools & res

Article Description

Collective migration of cohesive tissues is a fundamental process in morphogenesis, and is particularly well illustrated during gastrulation by the rapid and massive internalization of the mesoderm, which contrasts with the much more modest movements of the ectoderm. In the Xenopus embryo, the differences in morphogenetic capabilities of ectoderm and mesoderm can be connected to the properties of individual cells, which, when studied in vitro, show opposite intrinsic organizations, cohesive for ectoderm, dispersive for mesoderm. Surprisingly, we find these seemingly deep differences can be accounted for simply by differences in Rock-dependent actomyosin contractility. We show that Rock inhibition is sufficient to rapidly unleash motility in the ectoderm and confer it with mesoderm-like properties. In the mesoderm, this motility is dependent on two RhoA negative regulators, the small GTPase Rnd1 and the RhoGAP Shirin/Dlc2/ArhGAP37. Both are absolutely essential for gastrulation. At the cellular and tissue level, the two regulators show overlapping yet distinct functions. They both contribute to decrease cortical tension and confer motility, but Shirin tends to increase tissue fluidity and stimulate dispersion, while Rnd1 tends to favour more compact collective migration. Thus, each is able to contribute to a specific property of the migratory behaviour of the mesoderm.

Bibliographic Details

Leily Kashkooli; David Rozema; Lina Espejo-Ramirez; François Fagotto; Paul Lasko

Cold Spring Harbor Laboratory

Biochemistry, Genetics and Molecular Biology; Agricultural and Biological Sciences; Immunology and Microbiology; Neuroscience; Pharmacology, Toxicology and Pharmaceutics

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