Literature DB >> 15517579

Assembly and remodeling of the fibrillar fibronectin extracellular matrix during gastrulation and neurulation in Xenopus laevis.

Lance A Davidson1, Raymond Keller, Douglas W DeSimone.   

Abstract

Fibronectin, a major component of the extracellular matrix is critical for processes of cell traction and cell motility. Whole-mount confocal imaging of the three-dimensional architecture of the extracellular matrix is used to describe dynamic assembly and remodeling of fibronectin fibrils during gastrulation and neurulation in the early frog embryo. As previously reported, fibrils first appear under the prospective ectoderm. We describe here the first evidence for regulated assembly of fibrils along the somitic mesoderm/endoderm boundary as well as at the notochord/somitic mesoderm boundary and clearing of fibrils from the dorsal and ventral surfaces of the notochord that occurs over the course of a few hours. As gastrulation proceeds, fibrils are restored to the dorsal surface of the notochord, where the notochord contacts the prospective floor plate. As the neural folds form, fibrils are again remodeled as deep neural plate cells move medially. The process of neural tube closure leaves a region of the ectoderm overlying the neural crest transiently bare of fibrils. Fibrils are assembled surrounding the dorsal surface of the neural tube as the neural tube lumen is restored. Copyright (c) 2004 Wiley-Liss, Inc.

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Year:  2004        PMID: 15517579     DOI: 10.1002/dvdy.20217

Source DB:  PubMed          Journal:  Dev Dyn        ISSN: 1058-8388            Impact factor:   3.780


  53 in total

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Review 7.  Dynamic determinations: patterning the cell behaviours that close the amphibian blastopore.

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Review 8.  The extracellular matrix in development and morphogenesis: a dynamic view.

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10.  Fibronectin fibrillogenesis regulates three-dimensional neovessel formation.

Authors:  Xiaoming Zhou; R Grant Rowe; Nobuaki Hiraoka; Jerry P George; Denis Wirtz; Deane F Mosher; Ismo Virtanen; Michael A Chernousov; Stephen J Weiss
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