Literature DB >> 28432215

Actomyosin-based tissue folding requires a multicellular myosin gradient.

Natalie C Heer1, Pearson W Miller2,3, Soline Chanet1, Norbert Stoop3, Jörn Dunkel3, Adam C Martin4.   

Abstract

Tissue folding promotes three-dimensional (3D) form during development. In many cases, folding is associated with myosin accumulation at the apical surface of epithelial cells, as seen in the vertebrate neural tube and the Drosophila ventral furrow. This type of folding is characterized by constriction of apical cell surfaces, and the resulting cell shape change is thought to cause tissue folding. Here, we use quantitative microscopy to measure the pattern of transcription, signaling, myosin activation and cell shape in the Drosophila mesoderm. We found that cells within the ventral domain accumulate different amounts of active apical non-muscle myosin 2 depending on the distance from the ventral midline. This gradient in active myosin depends on a newly quantified gradient in upstream signaling proteins. A 3D continuum model of the embryo with induced contractility demonstrates that contractility gradients, but not contractility per se, promote changes to surface curvature and folding. As predicted by the model, experimental broadening of the myosin domain in vivo disrupts tissue curvature where myosin is uniform. Our data argue that apical contractility gradients are important for tissue folding.
© 2017. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Epithelia; Fold; Gradient; Myosin; Twist

Mesh:

Substances:

Year:  2017        PMID: 28432215      PMCID: PMC5450837          DOI: 10.1242/dev.146761

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  47 in total

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Authors:  J L Smith; G C Schoenwolf; J Quan
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Journal:  Dev Biol       Date:  1981-07-30       Impact factor: 3.582

5.  Integration of contractile forces during tissue invagination.

Authors:  Adam C Martin; Michael Gelbart; Rodrigo Fernandez-Gonzalez; Matthias Kaschube; Eric F Wieschaus
Journal:  J Cell Biol       Date:  2010-03-01       Impact factor: 10.539

6.  The formation of the Bicoid morphogen gradient requires protein movement from anteriorly localized mRNA.

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7.  RhoA GTPase inhibition organizes contraction during epithelial morphogenesis.

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Review 8.  Genetics and development of neural tube defects.

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Authors:  Philipp Spahn; Rolf Reuter
Journal:  PLoS One       Date:  2013-09-16       Impact factor: 3.240

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Authors:  Adam C Martin; Matthias Kaschube; Eric F Wieschaus
Journal:  Nature       Date:  2008-11-23       Impact factor: 49.962

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  27 in total

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2.  Structural Redundancy in Supracellular Actomyosin Networks Enables Robust Tissue Folding.

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Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2020-08-24       Impact factor: 6.237

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Review 5.  Tension, contraction and tissue morphogenesis.

Authors:  Natalie C Heer; Adam C Martin
Journal:  Development       Date:  2017-12-01       Impact factor: 6.868

6.  A Preferred Curvature-Based Continuum Mechanics Framework for Modeling Embryogenesis.

Authors:  Khaled Khairy; William Lemon; Fernando Amat; Philipp J Keller
Journal:  Biophys J       Date:  2018-01-23       Impact factor: 4.033

Review 7.  Orchestrating morphogenesis: building the body plan by cell shape changes and movements.

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8.  Global shape of Toll activation is determined by wntD enhancer properties.

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9.  Regulation of spatiotemporal limits of developmental gene expression via enhancer grammar.

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Review 10.  On folding morphogenesis, a mechanical problem.

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