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Epithelial Mesenchymal Interactions, the ECM and Limb Development

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Journal J Anat
Date 2003 Feb 18
PMID 12587919
Citations 10
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Abstract

It has been long since recognized that cellular interactions are not always direct, i.e. they do not always take place between cells contacting each other, or between cells that emit soluble factors and other cells, which respond to it. In contrast, cross-talk between cells is frequently based on signals attached to the extracellular matrix (ECM). Thus besides proximate cell-to-cell contact, certain interactions are mediated by the ECM in a sequence: cell-to-matrix, matrix-to-cell. ECM-mediated interactions may take place within a group or sheet of cells or across adjacent cell sheets. A modified mat-like ECM, the basement membrane, separates adjacent cell sheets and mediates their interactions. Since cell sheets separated by basement membranes are an elementary feature of metazoan histology, interactions with the basement membrane have considerable importance. Recently accumulated evidence emphasizes the importance of ECM-mediated interactions. It is becoming increasingly evident that the ECM functions not only as an architectural component, but it is involved also in signal transduction. This evidence derives from four main sources: from the structure of receptor-ligand complexes, from Drosophila and C elegans genetics, from cell biological observations and from the analysis of mammalian development. In this review, I will touch upon recent evidence, illustrated by examples of FGF signalling in vertebrate limb development. Although the involvement of matrix components is not yet proven for all cases directly, the strength of multiple indications suggests that a better understanding of ECM-mediated interactions will shed new light on cell differentiation.

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References
1.
Burgess W, Maciag T . The heparin-binding (fibroblast) growth factor family of proteins. Annu Rev Biochem. 1989; 58:575-606. DOI: 10.1146/annurev.bi.58.070189.003043. View

2.
Vlodavsky I, Friedmann Y, Elkin M, Aingorn H, Atzmon R, Bitan M . Mammalian heparanase: gene cloning, expression and function in tumor progression and metastasis. Nat Med. 1999; 5(7):793-802. DOI: 10.1038/10518. View

3.
Keshet E, Lyman S, Williams D, Anderson D, Jenkins N, Copeland N . Embryonic RNA expression patterns of the c-kit receptor and its cognate ligand suggest multiple functional roles in mouse development. EMBO J. 1991; 10(9):2425-35. PMC: 452938. DOI: 10.1002/j.1460-2075.1991.tb07782.x. View

4.
Miki T, Bottaro D, Fleming T, Smith C, Burgess W, Chan A . Determination of ligand-binding specificity by alternative splicing: two distinct growth factor receptors encoded by a single gene. Proc Natl Acad Sci U S A. 1992; 89(1):246-50. PMC: 48213. DOI: 10.1073/pnas.89.1.246. View

5.
Orr-Urtreger A, Givol D, Yayon A, Yarden Y, Lonai P . Developmental expression of two murine fibroblast growth factor receptors, flg and bek. Development. 1991; 113(4):1419-34. DOI: 10.1242/dev.113.4.1419. View