Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.

The tyrosine kinase c-Src is upregulated in numerous human cancers, implying a role for c-Src in cancer progression. Previously, we have shown that sequestration of activated c-Src into lipid rafts via a transmembrane adaptor, Cbp/PAG1, efficiently suppresses c-Src-induced cell transformation in Csk...

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Main Authors: Takashi Saitou, Kentaro Kajiwara, Chitose Oneyama, Takashi Suzuki, Masato Okada
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3968143?pdf=render
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spelling doaj-b662045c2e0140ca8c043ca2850ca3e52020-11-25T01:20:00ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0193e9347010.1371/journal.pone.0093470Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.Takashi SaitouKentaro KajiwaraChitose OneyamaTakashi SuzukiMasato OkadaThe tyrosine kinase c-Src is upregulated in numerous human cancers, implying a role for c-Src in cancer progression. Previously, we have shown that sequestration of activated c-Src into lipid rafts via a transmembrane adaptor, Cbp/PAG1, efficiently suppresses c-Src-induced cell transformation in Csk-deficient cells, suggesting that the transforming activity of c-Src is spatially regulated via Cbp in lipid rafts. To dissect the molecular mechanisms of the Cbp-mediated regulation of c-Src, a combined analysis was performed that included mathematical modeling and in vitro experiments in a c-Src- or Cbp-inducible system. c-Src activity was first determined as a function of c-Src or Cbp levels, using focal adhesion kinase (FAK) as a crucial c-Src substrate. Based on these experimental data, two mathematical models were constructed, the sequestration model and the ternary model. The computational analysis showed that both models supported our proposal that raft localization of Cbp is crucial for the suppression of c-Src function, but the ternary model, which includes a ternary complex consisting of Cbp, c-Src, and FAK, also predicted that c-Src function is dependent on the lipid-raft volume. Experimental analysis revealed that c-Src activity is elevated when lipid rafts are disrupted and the ternary complex forms in non-raft membranes, indicating that the ternary model accurately represents the system. Moreover, the ternary model predicted that, if Cbp enhances the interaction between c-Src and FAK, Cbp could promote c-Src function when lipid rafts are disrupted. These findings underscore the crucial role of lipid rafts in the Cbp-mediated negative regulation of c-Src-transforming activity, and explain the positive role of Cbp in c-Src regulation under particular conditions where lipid rafts are perturbed.http://europepmc.org/articles/PMC3968143?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Takashi Saitou
Kentaro Kajiwara
Chitose Oneyama
Takashi Suzuki
Masato Okada
spellingShingle Takashi Saitou
Kentaro Kajiwara
Chitose Oneyama
Takashi Suzuki
Masato Okada
Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.
PLoS ONE
author_facet Takashi Saitou
Kentaro Kajiwara
Chitose Oneyama
Takashi Suzuki
Masato Okada
author_sort Takashi Saitou
title Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.
title_short Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.
title_full Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.
title_fullStr Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.
title_full_unstemmed Roles of raft-anchored adaptor Cbp/PAG1 in spatial regulation of c-Src kinase.
title_sort roles of raft-anchored adaptor cbp/pag1 in spatial regulation of c-src kinase.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description The tyrosine kinase c-Src is upregulated in numerous human cancers, implying a role for c-Src in cancer progression. Previously, we have shown that sequestration of activated c-Src into lipid rafts via a transmembrane adaptor, Cbp/PAG1, efficiently suppresses c-Src-induced cell transformation in Csk-deficient cells, suggesting that the transforming activity of c-Src is spatially regulated via Cbp in lipid rafts. To dissect the molecular mechanisms of the Cbp-mediated regulation of c-Src, a combined analysis was performed that included mathematical modeling and in vitro experiments in a c-Src- or Cbp-inducible system. c-Src activity was first determined as a function of c-Src or Cbp levels, using focal adhesion kinase (FAK) as a crucial c-Src substrate. Based on these experimental data, two mathematical models were constructed, the sequestration model and the ternary model. The computational analysis showed that both models supported our proposal that raft localization of Cbp is crucial for the suppression of c-Src function, but the ternary model, which includes a ternary complex consisting of Cbp, c-Src, and FAK, also predicted that c-Src function is dependent on the lipid-raft volume. Experimental analysis revealed that c-Src activity is elevated when lipid rafts are disrupted and the ternary complex forms in non-raft membranes, indicating that the ternary model accurately represents the system. Moreover, the ternary model predicted that, if Cbp enhances the interaction between c-Src and FAK, Cbp could promote c-Src function when lipid rafts are disrupted. These findings underscore the crucial role of lipid rafts in the Cbp-mediated negative regulation of c-Src-transforming activity, and explain the positive role of Cbp in c-Src regulation under particular conditions where lipid rafts are perturbed.
url http://europepmc.org/articles/PMC3968143?pdf=render
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