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Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival

We studied the flocculation mechanism at the molecular level by determining the atomic structures of N-Flo1p and N-Lg-Flo1p in complex with their ligands. We show that they have similar ligand binding mechanisms but distinct carbohydrate specificities and affinities, which are determined by the comp...

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Autores principales: Goossens, Katty V. Y., Ielasi, Francesco S., Nookaew, Intawat, Stals, Ingeborg, Alonso-Sarduy, Livan, Daenen, Luk, Van Mulders, Sebastiaan E., Stassen, Catherine, van Eijsden, Rudy G. E., Siewers, Verena, Delvaux, Freddy R., Kasas, Sandor, Nielsen, Jens, Devreese, Bart, Willaert, Ronnie G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Microbiology 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4453552/
https://www.ncbi.nlm.nih.gov/pubmed/25873380
http://dx.doi.org/10.1128/mBio.00427-15
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author Goossens, Katty V. Y.
Ielasi, Francesco S.
Nookaew, Intawat
Stals, Ingeborg
Alonso-Sarduy, Livan
Daenen, Luk
Van Mulders, Sebastiaan E.
Stassen, Catherine
van Eijsden, Rudy G. E.
Siewers, Verena
Delvaux, Freddy R.
Kasas, Sandor
Nielsen, Jens
Devreese, Bart
Willaert, Ronnie G.
author_facet Goossens, Katty V. Y.
Ielasi, Francesco S.
Nookaew, Intawat
Stals, Ingeborg
Alonso-Sarduy, Livan
Daenen, Luk
Van Mulders, Sebastiaan E.
Stassen, Catherine
van Eijsden, Rudy G. E.
Siewers, Verena
Delvaux, Freddy R.
Kasas, Sandor
Nielsen, Jens
Devreese, Bart
Willaert, Ronnie G.
author_sort Goossens, Katty V. Y.
collection PubMed
description We studied the flocculation mechanism at the molecular level by determining the atomic structures of N-Flo1p and N-Lg-Flo1p in complex with their ligands. We show that they have similar ligand binding mechanisms but distinct carbohydrate specificities and affinities, which are determined by the compactness of the binding site. We characterized the glycans of Flo1p and their role in this binding process and demonstrate that glycan-glycan interactions significantly contribute to the cell-cell adhesion mechanism. Therefore, the extended flocculation mechanism is based on the self-interaction of Flo proteins and this interaction is established in two stages, involving both glycan-glycan and protein-glycan interactions. The crucial role of calcium in both types of interaction was demonstrated: Ca(2+) takes part in the binding of the carbohydrate to the protein, and the glycans aggregate only in the presence of Ca(2+). These results unify the generally accepted lectin hypothesis with the historically first-proposed “Ca(2+)-bridge” hypothesis. Additionally, a new role of cell flocculation is demonstrated; i.e., flocculation is linked to cell conjugation and mating, and survival chances consequently increase significantly by spore formation and by introduction of genetic variability. The role of Flo1p in mating was demonstrated by showing that mating efficiency is increased when cells flocculate and by differential transcriptome analysis of flocculating versus nonflocculating cells in a low-shear environment (microgravity). The results show that a multicellular clump (floc) provides a uniquely organized multicellular ultrastructure that provides a suitable microenvironment to induce and perform cell conjugation and mating.
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spelling pubmed-44535522015-06-03 Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival Goossens, Katty V. Y. Ielasi, Francesco S. Nookaew, Intawat Stals, Ingeborg Alonso-Sarduy, Livan Daenen, Luk Van Mulders, Sebastiaan E. Stassen, Catherine van Eijsden, Rudy G. E. Siewers, Verena Delvaux, Freddy R. Kasas, Sandor Nielsen, Jens Devreese, Bart Willaert, Ronnie G. mBio Research Article We studied the flocculation mechanism at the molecular level by determining the atomic structures of N-Flo1p and N-Lg-Flo1p in complex with their ligands. We show that they have similar ligand binding mechanisms but distinct carbohydrate specificities and affinities, which are determined by the compactness of the binding site. We characterized the glycans of Flo1p and their role in this binding process and demonstrate that glycan-glycan interactions significantly contribute to the cell-cell adhesion mechanism. Therefore, the extended flocculation mechanism is based on the self-interaction of Flo proteins and this interaction is established in two stages, involving both glycan-glycan and protein-glycan interactions. The crucial role of calcium in both types of interaction was demonstrated: Ca(2+) takes part in the binding of the carbohydrate to the protein, and the glycans aggregate only in the presence of Ca(2+). These results unify the generally accepted lectin hypothesis with the historically first-proposed “Ca(2+)-bridge” hypothesis. Additionally, a new role of cell flocculation is demonstrated; i.e., flocculation is linked to cell conjugation and mating, and survival chances consequently increase significantly by spore formation and by introduction of genetic variability. The role of Flo1p in mating was demonstrated by showing that mating efficiency is increased when cells flocculate and by differential transcriptome analysis of flocculating versus nonflocculating cells in a low-shear environment (microgravity). The results show that a multicellular clump (floc) provides a uniquely organized multicellular ultrastructure that provides a suitable microenvironment to induce and perform cell conjugation and mating. American Society of Microbiology 2015-04-14 /pmc/articles/PMC4453552/ /pubmed/25873380 http://dx.doi.org/10.1128/mBio.00427-15 Text en Copyright © 2015 Goossens et al. http://creativecommons.org/licenses/by-nc-sa/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-Noncommercial-ShareAlike 3.0 Unported license (http://creativecommons.org/licenses/by-nc-sa/3.0/) , which permits unrestricted noncommercial use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Goossens, Katty V. Y.
Ielasi, Francesco S.
Nookaew, Intawat
Stals, Ingeborg
Alonso-Sarduy, Livan
Daenen, Luk
Van Mulders, Sebastiaan E.
Stassen, Catherine
van Eijsden, Rudy G. E.
Siewers, Verena
Delvaux, Freddy R.
Kasas, Sandor
Nielsen, Jens
Devreese, Bart
Willaert, Ronnie G.
Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival
title Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival
title_full Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival
title_fullStr Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival
title_full_unstemmed Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival
title_short Molecular Mechanism of Flocculation Self-Recognition in Yeast and Its Role in Mating and Survival
title_sort molecular mechanism of flocculation self-recognition in yeast and its role in mating and survival
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4453552/
https://www.ncbi.nlm.nih.gov/pubmed/25873380
http://dx.doi.org/10.1128/mBio.00427-15
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