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Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion

SNARE complexes are required for membrane fusion in the endomembrane system. They contain coiled-coil bundles of four helices, three (Q(a), Q(b), and Q(c)) from target (t)-SNAREs and one (R) from the vesicular (v)-SNARE. NSF/Sec18 disrupts these cis-SNARE complexes, allowing reassembly of their subu...

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Autores principales: Alpadi, Kannan, Kulkarni, Aditya, Comte, Veronique, Reinhardt, Monique, Schmidt, Andrea, Namjoshi, Sarita, Mayer, Andreas, Peters, Christopher
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3260307/
https://www.ncbi.nlm.nih.gov/pubmed/22272185
http://dx.doi.org/10.1371/journal.pbio.1001243
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author Alpadi, Kannan
Kulkarni, Aditya
Comte, Veronique
Reinhardt, Monique
Schmidt, Andrea
Namjoshi, Sarita
Mayer, Andreas
Peters, Christopher
author_facet Alpadi, Kannan
Kulkarni, Aditya
Comte, Veronique
Reinhardt, Monique
Schmidt, Andrea
Namjoshi, Sarita
Mayer, Andreas
Peters, Christopher
author_sort Alpadi, Kannan
collection PubMed
description SNARE complexes are required for membrane fusion in the endomembrane system. They contain coiled-coil bundles of four helices, three (Q(a), Q(b), and Q(c)) from target (t)-SNAREs and one (R) from the vesicular (v)-SNARE. NSF/Sec18 disrupts these cis-SNARE complexes, allowing reassembly of their subunits into trans-SNARE complexes and subsequent fusion. Studying these reactions in native yeast vacuoles, we found that NSF/Sec18 activates the vacuolar cis-SNARE complex by selectively displacing the vacuolar Q(a) SNARE, leaving behind a Q(bc)R subcomplex. This subcomplex serves as an acceptor for a Q(a) SNARE from the opposite membrane, leading to Q(a)-Q(bc)R trans-complexes. Activity tests of vacuoles with diagnostic distributions of inactivating mutations over the two fusion partners confirm that this distribution accounts for a major share of the fusion activity. The persistence of the Q(bc)R cis-complex and the formation of the Q(a)-Q(bc)R trans-complex are both sensitive to the Rab-GTPase inhibitor, GDI, and to mutations in the vacuolar tether complex, HOPS (HOmotypic fusion and vacuolar Protein Sorting complex). This suggests that the vacuolar Rab-GTPase, Ypt7, and HOPS restrict cis-SNARE disassembly and thereby bias trans-SNARE assembly into a preferred topology.
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spelling pubmed-32603072012-01-23 Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion Alpadi, Kannan Kulkarni, Aditya Comte, Veronique Reinhardt, Monique Schmidt, Andrea Namjoshi, Sarita Mayer, Andreas Peters, Christopher PLoS Biol Research Article SNARE complexes are required for membrane fusion in the endomembrane system. They contain coiled-coil bundles of four helices, three (Q(a), Q(b), and Q(c)) from target (t)-SNAREs and one (R) from the vesicular (v)-SNARE. NSF/Sec18 disrupts these cis-SNARE complexes, allowing reassembly of their subunits into trans-SNARE complexes and subsequent fusion. Studying these reactions in native yeast vacuoles, we found that NSF/Sec18 activates the vacuolar cis-SNARE complex by selectively displacing the vacuolar Q(a) SNARE, leaving behind a Q(bc)R subcomplex. This subcomplex serves as an acceptor for a Q(a) SNARE from the opposite membrane, leading to Q(a)-Q(bc)R trans-complexes. Activity tests of vacuoles with diagnostic distributions of inactivating mutations over the two fusion partners confirm that this distribution accounts for a major share of the fusion activity. The persistence of the Q(bc)R cis-complex and the formation of the Q(a)-Q(bc)R trans-complex are both sensitive to the Rab-GTPase inhibitor, GDI, and to mutations in the vacuolar tether complex, HOPS (HOmotypic fusion and vacuolar Protein Sorting complex). This suggests that the vacuolar Rab-GTPase, Ypt7, and HOPS restrict cis-SNARE disassembly and thereby bias trans-SNARE assembly into a preferred topology. Public Library of Science 2012-01-17 /pmc/articles/PMC3260307/ /pubmed/22272185 http://dx.doi.org/10.1371/journal.pbio.1001243 Text en Alpadi 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
Alpadi, Kannan
Kulkarni, Aditya
Comte, Veronique
Reinhardt, Monique
Schmidt, Andrea
Namjoshi, Sarita
Mayer, Andreas
Peters, Christopher
Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion
title Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion
title_full Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion
title_fullStr Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion
title_full_unstemmed Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion
title_short Sequential Analysis of Trans-SNARE Formation in Intracellular Membrane Fusion
title_sort sequential analysis of trans-snare formation in intracellular membrane fusion
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3260307/
https://www.ncbi.nlm.nih.gov/pubmed/22272185
http://dx.doi.org/10.1371/journal.pbio.1001243
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