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PMID: 19692590 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Actin machinery and mechanosensitivity in invadopodia, podosomes and focal adhesions.

Journal of cell science ·Vol. 122 ·No. Pt 17 ·2009-09-01 ·Pages 3037-49

Albiges-Rizo C, Destaing O, Fourcade B, Planus E, Block MR

Abstract

The invasiveness of cells is correlated with the presence of dynamic actin-rich membrane structures called invadopodia, which are membrane protrusions that are associated with localized polymerization of sub-membrane actin filaments. Similar to focal adhesions and podosomes, invadopodia are cell-matrix adhesion sites. Indeed, invadopodia share several features with podosomes, but whether they are distinct structures is still a matter of debate. Invadopodia are built upon an N-WASP-dependent branched actin network, and the Rho GTPase Cdc42 is involved in inducing invadopodial-membrane protrusion, which is mediated by actin filaments that are organized in bundles to form an actin core. Actin-core formation is thought to be an early step in invadopodium assembly, and the actin core is perpendicular to the extracellular matrix and the plasma membrane; this contrasts with the tangential orientation of actin stress fibers anchored to focal adhesions. In this Commentary, we attempt to summarize recent insights into the actin dynamics of invadopodia and podosomes, and the forces that are transmitted through these invasive structures. Although the mechanisms underlying force-dependent regulation of invadopodia and podosomes are largely unknown compared with those of focal adhesions, these structures do exhibit mechanosensitivity. Actin dynamics and associated forces might be key elements in discriminating between invadopodia, podosomes and focal adhesions. Targeting actin-regulatory molecules that specifically promote invadopodium formation is an attractive strategy against cancer-cell invasion.

MeSH Terms
Actin Cytoskeleton/chemistry,metabolism Animals Biomechanical Phenomena Cell Membrane Structures/chemistry,metabolism Cells/chemistry,metabolism Focal Adhesions/chemistry,metabolism Humans Mechanotransduction, Cellular Neoplasm Invasiveness Neoplasms/chemistry,metabolism,pathology
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Albiges-Rizo Corinne
INSERM U823 Institut Albert Bonniot, Université Joseph Fourier, CNRS ERL3148, Equipe DySAD, Site Santé, BP 170, Grenoble, France. corinne.albiges-rizo@ujf-grenoble.fr
Destaing Olivier
Fourcade Bertrand
Planus Emmanuelle
Block Marc R
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Article Info
Journal
Journal of cell science
Abbr.
J Cell Sci
ISSN
1477-9137
Published
2009-09-01
Pages
3037-49
Language
English
Region
England
NLM ID
0052457
PMCID
PMC2767377
Subset
IM
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