Literature DB >> 26279486

Cortical Tension Allocates the First Inner Cells of the Mammalian Embryo.

Chaminda R Samarage1, Melanie D White2, Yanina D Álvarez2, Juan Carlos Fierro-González2, Yann Henon1, Edwin C Jesudason3, Stephanie Bissiere4, Andreas Fouras5, Nicolas Plachta6.   

Abstract

Every cell in our body originates from the pluripotent inner mass of the embryo, yet it is unknown how biomechanical forces allocate inner cells in vivo. Here we discover subcellular heterogeneities in tensile forces, generated by actomyosin cortical networks, which drive apical constriction to position the first inner cells of living mouse embryos. Myosin II accumulates specifically around constricting cells, and its disruption dysregulates constriction and cell fate. Laser ablations of actomyosin networks reveal that constricting cells have higher cortical tension, generate tension anisotropies and morphological changes in adjacent regions of neighboring cells, and require their neighbors to coordinate their own changes in shape. Thus, tensile forces determine the first spatial segregation of cells during mammalian development. We propose that, unlike more cohesive tissues, the early embryo dissipates tensile forces required by constricting cells via their neighbors, thereby allowing confined cell repositioning without jeopardizing global architecture.
Copyright © 2015 Elsevier Inc. All rights reserved.

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Year:  2015        PMID: 26279486     DOI: 10.1016/j.devcel.2015.07.004

Source DB:  PubMed          Journal:  Dev Cell        ISSN: 1534-5807            Impact factor:   12.270


  52 in total

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2.  ROCK and RHO Playlist for Preimplantation Development: Streaming to HIPPO Pathway and Apicobasal Polarity in the First Cell Differentiation.

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3.  Transcriptional Regulation and Genes Involved in First Lineage Specification During Preimplantation Development.

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Review 6.  Tension, contraction and tissue morphogenesis.

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

Review 7.  Cytoskeletal control of early mammalian development.

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8.  MRCK-1 Drives Apical Constriction in C. elegans by Linking Developmental Patterning to Force Generation.

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Review 9.  A toolbox to explore the mechanics of living embryonic tissues.

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Review 10.  Shaping Cell Fate: Influence of Topographical Substratum Properties on Embryonic Stem Cells.

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