Myosin-dependent junction remodelling controls planar cell intercalation and axis elongation
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- 10 June 2004
- journal article
- research article
- Published by Springer Nature in Nature
- Vol. 429 (6992) , 667-671
- https://doi.org/10.1038/nature02590
Abstract
Shaping a developing organ or embryo relies on the spatial regulation of cell division and shape. However, morphogenesis also occurs through changes in cell-neighbourhood relationships produced by intercalation1,2. Intercalation poses a special problem in epithelia because of the adherens junctions, which maintain the integrity of the tissue. Here we address the mechanism by which an ordered process of cell intercalation directs polarized epithelial morphogenesis during germ-band elongation, the developmental elongation of the Drosophila embryo. Intercalation progresses because junctions are spatially reorganized in the plane of the epithelium following an ordered pattern of disassembly and reassembly. The planar remodelling of junctions is not driven by external forces at the tissue boundaries but depends on local forces at cell boundaries. Myosin II is specifically enriched in disassembling junctions, and its planar polarized localization and activity are required for planar junction remodelling and cell intercalation. This simple cellular mechanism provides a general model for polarized morphogenesis in epithelial organs.Keywords
This publication has 29 references indexed in Scilit:
- Adaptation of core mechanisms to generate cell polarityNature, 2003
- Shaping the Vertebrate Body Plan by Polarized Embryonic Cell MovementsScience, 2002
- Composition and Formation of Intercellular Junctions in Epithelial CellsScience, 2002
- Convergent ExtensionDevelopmental Cell, 2002
- Junctions as Organizing Centers in Epithelial Cells? A Fly PerspectiveTraffic, 2002
- Cytomechanics of cadherin-mediated cell—cell adhesionCurrent Opinion in Cell Biology, 1998
- From gradients to stripes in Drosophila embryogenesis: filling in the gapsTrends in Genetics, 1996
- A putative cell signal encoded by the folded gastrulation gene coordinates cell shape changes during Drosophila gastrulationCell, 1994
- Transcriptional regulation of a pair-rule stripe in Drosophila.Genes & Development, 1991
- Molecular genetic dissection of myosin heavy chain functionCell, 1990