Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.

Deregulation of mechanisms that control cell motility plays a key role in tumor progression by promoting tumor cell dissemination. Secreted netrins and their receptors, Deleted in Colorectal Cancer (DCC), neogenin, and the UNC5 homologues, regulate cell and axon migration, cell adhesion, and tissue...

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Main Authors: Andrew A Jarjour, Margaret Durko, Tamarah L Luk, Nathalie Marçal, Masoud Shekarabi, Timothy E Kennedy
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3182204?pdf=render
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spelling doaj-4f73c588eead43d5825edf45a10705ac2020-11-25T02:00:16ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0169e2540810.1371/journal.pone.0025408Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.Andrew A JarjourMargaret DurkoTamarah L LukNathalie MarçalMasoud ShekarabiTimothy E KennedyDeregulation of mechanisms that control cell motility plays a key role in tumor progression by promoting tumor cell dissemination. Secreted netrins and their receptors, Deleted in Colorectal Cancer (DCC), neogenin, and the UNC5 homologues, regulate cell and axon migration, cell adhesion, and tissue morphogenesis. Netrin and netrin receptor expression have previously been shown to be disrupted in invasive tumors, including glioblastoma. We determined that the human glioblastoma cell lines U87, U343, and U373 all express neogenin, UNC5 homologues, and netrin-1 or netrin-3, but only U87 cells express DCC. Using transfilter migration assays, we demonstrate DCC-dependent chemoattractant migration of U87 cells up a gradient of netrin-1. In contrast, U343 and U373 cells, which do not express DCC, were neither attracted nor repelled. Ectopic expression of DCC by U343 and U373 cells resulted in these cells becoming competent to respond to a gradient of netrin-1 as a chemoattractant, and also slowed their rate of spontaneous migration. Here, in addition to netrins' well-characterized chemotropic activity, we demonstrate an autocrine function for netrin-1 and netrin-3 in U87 and U373 cells that slows migration. We provide evidence that netrins promote the maturation of focal complexes, structures associated with cell movement, into focal adhesions. Consistent with this, netrin, DCC, and UNC5 homologues were associated with focal adhesions, but not focal complexes. Disrupting netrin or DCC function did not alter cell proliferation or survival. Our findings provide evidence that DCC can slow cell migration, and that neogenin and UNC5 homologues are not sufficient to substitute for DCC function in these cells. Furthermore, we identify a role for netrins as autocrine inhibitors of cell motility that promote focal adhesion formation. These findings suggest that disruption of netrin signalling may disable a mechanism that normally restrains inappropriate cell migration.http://europepmc.org/articles/PMC3182204?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Andrew A Jarjour
Margaret Durko
Tamarah L Luk
Nathalie Marçal
Masoud Shekarabi
Timothy E Kennedy
spellingShingle Andrew A Jarjour
Margaret Durko
Tamarah L Luk
Nathalie Marçal
Masoud Shekarabi
Timothy E Kennedy
Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
PLoS ONE
author_facet Andrew A Jarjour
Margaret Durko
Tamarah L Luk
Nathalie Marçal
Masoud Shekarabi
Timothy E Kennedy
author_sort Andrew A Jarjour
title Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
title_short Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
title_full Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
title_fullStr Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
title_full_unstemmed Autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
title_sort autocrine netrin function inhibits glioma cell motility and promotes focal adhesion formation.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2011-01-01
description Deregulation of mechanisms that control cell motility plays a key role in tumor progression by promoting tumor cell dissemination. Secreted netrins and their receptors, Deleted in Colorectal Cancer (DCC), neogenin, and the UNC5 homologues, regulate cell and axon migration, cell adhesion, and tissue morphogenesis. Netrin and netrin receptor expression have previously been shown to be disrupted in invasive tumors, including glioblastoma. We determined that the human glioblastoma cell lines U87, U343, and U373 all express neogenin, UNC5 homologues, and netrin-1 or netrin-3, but only U87 cells express DCC. Using transfilter migration assays, we demonstrate DCC-dependent chemoattractant migration of U87 cells up a gradient of netrin-1. In contrast, U343 and U373 cells, which do not express DCC, were neither attracted nor repelled. Ectopic expression of DCC by U343 and U373 cells resulted in these cells becoming competent to respond to a gradient of netrin-1 as a chemoattractant, and also slowed their rate of spontaneous migration. Here, in addition to netrins' well-characterized chemotropic activity, we demonstrate an autocrine function for netrin-1 and netrin-3 in U87 and U373 cells that slows migration. We provide evidence that netrins promote the maturation of focal complexes, structures associated with cell movement, into focal adhesions. Consistent with this, netrin, DCC, and UNC5 homologues were associated with focal adhesions, but not focal complexes. Disrupting netrin or DCC function did not alter cell proliferation or survival. Our findings provide evidence that DCC can slow cell migration, and that neogenin and UNC5 homologues are not sufficient to substitute for DCC function in these cells. Furthermore, we identify a role for netrins as autocrine inhibitors of cell motility that promote focal adhesion formation. These findings suggest that disruption of netrin signalling may disable a mechanism that normally restrains inappropriate cell migration.
url http://europepmc.org/articles/PMC3182204?pdf=render
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