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Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism

In mammalian oocytes, three actin binding proteins, Formin 2 (Fmn2), Spire, and profilin, synergistically organize a dynamic cytoplasmic actin meshwork that mediates translocation of the spindle toward the cortex and is required for successful fertilization. Here we characterize Fmn2 and elucidate t...

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Autores principales: Montaville, Pierre, Jégou, Antoine, Pernier, Julien, Compper, Christel, Guichard, Bérengère, Mogessie, Binyam, Schuh, Melina, Romet-Lemonne, Guillaume, Carlier, Marie-France
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3934834/
https://www.ncbi.nlm.nih.gov/pubmed/24586110
http://dx.doi.org/10.1371/journal.pbio.1001795
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author Montaville, Pierre
Jégou, Antoine
Pernier, Julien
Compper, Christel
Guichard, Bérengère
Mogessie, Binyam
Schuh, Melina
Romet-Lemonne, Guillaume
Carlier, Marie-France
author_facet Montaville, Pierre
Jégou, Antoine
Pernier, Julien
Compper, Christel
Guichard, Bérengère
Mogessie, Binyam
Schuh, Melina
Romet-Lemonne, Guillaume
Carlier, Marie-France
author_sort Montaville, Pierre
collection PubMed
description In mammalian oocytes, three actin binding proteins, Formin 2 (Fmn2), Spire, and profilin, synergistically organize a dynamic cytoplasmic actin meshwork that mediates translocation of the spindle toward the cortex and is required for successful fertilization. Here we characterize Fmn2 and elucidate the molecular mechanism for this synergy, using bulk solution and individual filament kinetic measurements of actin assembly dynamics. We show that by capping filament barbed ends, Spire recruits Fmn2 and facilitates its association with barbed ends, followed by rapid processive assembly and release of Spire. In the presence of actin, profilin, Spire, and Fmn2, filaments display alternating phases of rapid processive assembly and arrested growth, driven by a “ping-pong” mechanism, in which Spire and Fmn2 alternately kick off each other from the barbed ends. The results are validated by the effects of injection of Spire, Fmn2, and their interacting moieties in mouse oocytes. This original mechanism of regulation of a Rho-GTPase–independent formin, recruited by Spire at Rab11a-positive vesicles, supports a model for modulation of a dynamic actin-vesicle meshwork in the oocyte at the origin of asymmetric positioning of the meiotic spindle.
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spelling pubmed-39348342014-03-04 Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism Montaville, Pierre Jégou, Antoine Pernier, Julien Compper, Christel Guichard, Bérengère Mogessie, Binyam Schuh, Melina Romet-Lemonne, Guillaume Carlier, Marie-France PLoS Biol Research Article In mammalian oocytes, three actin binding proteins, Formin 2 (Fmn2), Spire, and profilin, synergistically organize a dynamic cytoplasmic actin meshwork that mediates translocation of the spindle toward the cortex and is required for successful fertilization. Here we characterize Fmn2 and elucidate the molecular mechanism for this synergy, using bulk solution and individual filament kinetic measurements of actin assembly dynamics. We show that by capping filament barbed ends, Spire recruits Fmn2 and facilitates its association with barbed ends, followed by rapid processive assembly and release of Spire. In the presence of actin, profilin, Spire, and Fmn2, filaments display alternating phases of rapid processive assembly and arrested growth, driven by a “ping-pong” mechanism, in which Spire and Fmn2 alternately kick off each other from the barbed ends. The results are validated by the effects of injection of Spire, Fmn2, and their interacting moieties in mouse oocytes. This original mechanism of regulation of a Rho-GTPase–independent formin, recruited by Spire at Rab11a-positive vesicles, supports a model for modulation of a dynamic actin-vesicle meshwork in the oocyte at the origin of asymmetric positioning of the meiotic spindle. Public Library of Science 2014-02-25 /pmc/articles/PMC3934834/ /pubmed/24586110 http://dx.doi.org/10.1371/journal.pbio.1001795 Text en © 2014 Montaville 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
Montaville, Pierre
Jégou, Antoine
Pernier, Julien
Compper, Christel
Guichard, Bérengère
Mogessie, Binyam
Schuh, Melina
Romet-Lemonne, Guillaume
Carlier, Marie-France
Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism
title Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism
title_full Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism
title_fullStr Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism
title_full_unstemmed Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism
title_short Spire and Formin 2 Synergize and Antagonize in Regulating Actin Assembly in Meiosis by a Ping-Pong Mechanism
title_sort spire and formin 2 synergize and antagonize in regulating actin assembly in meiosis by a ping-pong mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3934834/
https://www.ncbi.nlm.nih.gov/pubmed/24586110
http://dx.doi.org/10.1371/journal.pbio.1001795
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