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Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells

While the adaptor SKAP-55 mediates LFA-1 adhesion on T-cells, it is not known whether the adaptor regulates other aspects of signaling. SKAP-55 could potentially act as a node to coordinate the modulation of adhesion with downstream signaling. In this regard, the GTPase p21(ras) and the extracellula...

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Autores principales: Schneider, Helga, Wang, Hongyan, Raab, Monika, Valk, Elke, Smith, Xin, Lovatt, Matt, Wu, Zhonglin, Maqueira-Iglesias, Braudel, Strebhardt, Klaus, Rudd, Christopher E.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2249700/
https://www.ncbi.nlm.nih.gov/pubmed/18320039
http://dx.doi.org/10.1371/journal.pone.0001718
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author Schneider, Helga
Wang, Hongyan
Raab, Monika
Valk, Elke
Smith, Xin
Lovatt, Matt
Wu, Zhonglin
Maqueira-Iglesias, Braudel
Strebhardt, Klaus
Rudd, Christopher E.
author_facet Schneider, Helga
Wang, Hongyan
Raab, Monika
Valk, Elke
Smith, Xin
Lovatt, Matt
Wu, Zhonglin
Maqueira-Iglesias, Braudel
Strebhardt, Klaus
Rudd, Christopher E.
author_sort Schneider, Helga
collection PubMed
description While the adaptor SKAP-55 mediates LFA-1 adhesion on T-cells, it is not known whether the adaptor regulates other aspects of signaling. SKAP-55 could potentially act as a node to coordinate the modulation of adhesion with downstream signaling. In this regard, the GTPase p21(ras) and the extracellular signal-regulated kinase (ERK) pathway play central roles in T-cell function. In this study, we report that SKAP-55 has opposing effects on adhesion and the activation of the p21(ras) -ERK pathway in T-cells. SKAP-55 deficient primary T-cells showed a defect in LFA-1 adhesion concurrent with the hyper-activation of the ERK pathway relative to wild-type cells. RNAi knock down (KD) of SKAP-55 in T-cell lines also showed an increase in p21(ras) activation, while over-expression of SKAP-55 inhibited activation of ERK and its transcriptional target ELK. Three observations implicated the p21(ras) activating exchange factor RasGRP1 in the process. Firstly, SKAP-55 bound to RasGRP1 via its C-terminus, while secondly, the loss of binding abrogated SKAP-55 inhibition of ERK and ELK activation. Thirdly, SKAP-55−/− primary T-cells showed an increased presence of RasGRP1 in the trans-Golgi network (TGN) following TCR activation, the site where p21(ras) becomes activated. Our findings indicate that SKAP-55 has a dual role in regulating p21(ras)-ERK pathway via RasGRP1, as a possible mechanism to restrict activation during T-cell adhesion.
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spelling pubmed-22497002008-03-05 Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells Schneider, Helga Wang, Hongyan Raab, Monika Valk, Elke Smith, Xin Lovatt, Matt Wu, Zhonglin Maqueira-Iglesias, Braudel Strebhardt, Klaus Rudd, Christopher E. PLoS One Research Article While the adaptor SKAP-55 mediates LFA-1 adhesion on T-cells, it is not known whether the adaptor regulates other aspects of signaling. SKAP-55 could potentially act as a node to coordinate the modulation of adhesion with downstream signaling. In this regard, the GTPase p21(ras) and the extracellular signal-regulated kinase (ERK) pathway play central roles in T-cell function. In this study, we report that SKAP-55 has opposing effects on adhesion and the activation of the p21(ras) -ERK pathway in T-cells. SKAP-55 deficient primary T-cells showed a defect in LFA-1 adhesion concurrent with the hyper-activation of the ERK pathway relative to wild-type cells. RNAi knock down (KD) of SKAP-55 in T-cell lines also showed an increase in p21(ras) activation, while over-expression of SKAP-55 inhibited activation of ERK and its transcriptional target ELK. Three observations implicated the p21(ras) activating exchange factor RasGRP1 in the process. Firstly, SKAP-55 bound to RasGRP1 via its C-terminus, while secondly, the loss of binding abrogated SKAP-55 inhibition of ERK and ELK activation. Thirdly, SKAP-55−/− primary T-cells showed an increased presence of RasGRP1 in the trans-Golgi network (TGN) following TCR activation, the site where p21(ras) becomes activated. Our findings indicate that SKAP-55 has a dual role in regulating p21(ras)-ERK pathway via RasGRP1, as a possible mechanism to restrict activation during T-cell adhesion. Public Library of Science 2008-03-05 /pmc/articles/PMC2249700/ /pubmed/18320039 http://dx.doi.org/10.1371/journal.pone.0001718 Text en Schneider et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Schneider, Helga
Wang, Hongyan
Raab, Monika
Valk, Elke
Smith, Xin
Lovatt, Matt
Wu, Zhonglin
Maqueira-Iglesias, Braudel
Strebhardt, Klaus
Rudd, Christopher E.
Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells
title Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells
title_full Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells
title_fullStr Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells
title_full_unstemmed Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells
title_short Adaptor SKAP-55 Binds p21(ras) Activating Exchange Factor RasGRP1 and Negatively Regulates the p21(ras)-ERK Pathway in T-Cells
title_sort adaptor skap-55 binds p21(ras) activating exchange factor rasgrp1 and negatively regulates the p21(ras)-erk pathway in t-cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2249700/
https://www.ncbi.nlm.nih.gov/pubmed/18320039
http://dx.doi.org/10.1371/journal.pone.0001718
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