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Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways

BACKGROUND: Intracellular membrane traffic is an essential component of the membrane remodeling that supports lamellipodium extension during cell adhesion. The membrane trafficking pathways that contribute to cell adhesion have not been fully elucidated, but recent studies have implicated SNARE prot...

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Autores principales: Skalski, Michael, Yi, Qing, Kean, Michelle J, Myers, Dennis W, Williams, Karla C, Burtnik, Angela, Coppolino, Marc G
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2925818/
https://www.ncbi.nlm.nih.gov/pubmed/20698987
http://dx.doi.org/10.1186/1471-2121-11-62
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author Skalski, Michael
Yi, Qing
Kean, Michelle J
Myers, Dennis W
Williams, Karla C
Burtnik, Angela
Coppolino, Marc G
author_facet Skalski, Michael
Yi, Qing
Kean, Michelle J
Myers, Dennis W
Williams, Karla C
Burtnik, Angela
Coppolino, Marc G
author_sort Skalski, Michael
collection PubMed
description BACKGROUND: Intracellular membrane traffic is an essential component of the membrane remodeling that supports lamellipodium extension during cell adhesion. The membrane trafficking pathways that contribute to cell adhesion have not been fully elucidated, but recent studies have implicated SNARE proteins. Here, the functions of several SNAREs (SNAP23, VAMP3, VAMP4 and syntaxin13) are characterized during the processes of cell spreading and membrane ruffling. RESULTS: We report the first description of a SNARE complex, containing SNAP23, syntaxin13 and cellubrevin/VAMP3, that is induced by cell adhesion to an extracellular matrix. Impairing the function of the SNAREs in the complex using inhibitory SNARE domains disrupted the recycling endosome, impeded delivery of integrins to the cell surface, and reduced haptotactic cell migration and spreading. Blocking SNAP23 also inhibited the formation of PMA-stimulated, F-actin-rich membrane ruffles; however, membrane ruffle formation was not significantly altered by inhibition of VAMP3 or syntaxin13. In contrast, membrane ruffling, and not cell spreading, was sensitive to inhibition of two SNAREs within the biosynthetic secretory pathway, GS15 and VAMP4. Consistent with this, formation of a complex containing VAMP4 and SNAP23 was enhanced by treatment of cells with PMA. The results reveal a requirement for the function of a SNAP23-syntaxin13-VAMP3 complex in the formation of lamellipodia during cell adhesion and of a VAMP4-SNAP23-containing complex during PMA-induced membrane ruffling. CONCLUSIONS: Our findings suggest that different SNARE-mediated trafficking pathways support membrane remodeling during ECM-induced lamellipodium extension and PMA-induced ruffle formation, pointing to important mechanistic differences between these processes.
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spelling pubmed-29258182010-08-24 Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways Skalski, Michael Yi, Qing Kean, Michelle J Myers, Dennis W Williams, Karla C Burtnik, Angela Coppolino, Marc G BMC Cell Biol Research Article BACKGROUND: Intracellular membrane traffic is an essential component of the membrane remodeling that supports lamellipodium extension during cell adhesion. The membrane trafficking pathways that contribute to cell adhesion have not been fully elucidated, but recent studies have implicated SNARE proteins. Here, the functions of several SNAREs (SNAP23, VAMP3, VAMP4 and syntaxin13) are characterized during the processes of cell spreading and membrane ruffling. RESULTS: We report the first description of a SNARE complex, containing SNAP23, syntaxin13 and cellubrevin/VAMP3, that is induced by cell adhesion to an extracellular matrix. Impairing the function of the SNAREs in the complex using inhibitory SNARE domains disrupted the recycling endosome, impeded delivery of integrins to the cell surface, and reduced haptotactic cell migration and spreading. Blocking SNAP23 also inhibited the formation of PMA-stimulated, F-actin-rich membrane ruffles; however, membrane ruffle formation was not significantly altered by inhibition of VAMP3 or syntaxin13. In contrast, membrane ruffling, and not cell spreading, was sensitive to inhibition of two SNAREs within the biosynthetic secretory pathway, GS15 and VAMP4. Consistent with this, formation of a complex containing VAMP4 and SNAP23 was enhanced by treatment of cells with PMA. The results reveal a requirement for the function of a SNAP23-syntaxin13-VAMP3 complex in the formation of lamellipodia during cell adhesion and of a VAMP4-SNAP23-containing complex during PMA-induced membrane ruffling. CONCLUSIONS: Our findings suggest that different SNARE-mediated trafficking pathways support membrane remodeling during ECM-induced lamellipodium extension and PMA-induced ruffle formation, pointing to important mechanistic differences between these processes. BioMed Central 2010-08-10 /pmc/articles/PMC2925818/ /pubmed/20698987 http://dx.doi.org/10.1186/1471-2121-11-62 Text en Copyright ©2010 Skalski et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Skalski, Michael
Yi, Qing
Kean, Michelle J
Myers, Dennis W
Williams, Karla C
Burtnik, Angela
Coppolino, Marc G
Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways
title Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways
title_full Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways
title_fullStr Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways
title_full_unstemmed Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways
title_short Lamellipodium extension and membrane ruffling require different SNARE-mediated trafficking pathways
title_sort lamellipodium extension and membrane ruffling require different snare-mediated trafficking pathways
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2925818/
https://www.ncbi.nlm.nih.gov/pubmed/20698987
http://dx.doi.org/10.1186/1471-2121-11-62
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