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Crystal Structure of the Formin mDia1 in Autoinhibited Conformation

BACKGROUND: Formin proteins utilize a conserved formin homology 2 (FH2) domain to nucleate new actin filaments. In mammalian diaphanous-related formins (DRFs) the FH2 domain is inhibited through an unknown mechanism by intramolecular binding of the diaphanous autoinhibitory domain (DAD) and the diap...

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Autores principales: Otomo, Takanori, Tomchick, Diana R., Otomo, Chinatsu, Machius, Mischa, Rosen, Michael K.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2948019/
https://www.ncbi.nlm.nih.gov/pubmed/20927343
http://dx.doi.org/10.1371/journal.pone.0012896
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author Otomo, Takanori
Tomchick, Diana R.
Otomo, Chinatsu
Machius, Mischa
Rosen, Michael K.
author_facet Otomo, Takanori
Tomchick, Diana R.
Otomo, Chinatsu
Machius, Mischa
Rosen, Michael K.
author_sort Otomo, Takanori
collection PubMed
description BACKGROUND: Formin proteins utilize a conserved formin homology 2 (FH2) domain to nucleate new actin filaments. In mammalian diaphanous-related formins (DRFs) the FH2 domain is inhibited through an unknown mechanism by intramolecular binding of the diaphanous autoinhibitory domain (DAD) and the diaphanous inhibitory domain (DID). METHODOLOGY/PRINCIPAL FINDINGS: Here we report the crystal structure of a complex between DID and FH2-DAD fragments of the mammalian DRF, mDia1 (mammalian diaphanous 1 also called Drf1 or p140mDia). The structure shows a tetrameric configuration (4 FH2 + 4 DID) in which the actin-binding sites on the FH2 domain are sterically occluded. However biochemical data suggest the full-length mDia1 is a dimer in solution (2 FH2 + 2 DID). Based on the crystal structure, we have generated possible dimer models and found that architectures of all of these models are incompatible with binding to actin filament but not to actin monomer. Furthermore, we show that the minimal functional monomeric unit in the FH2 domain, termed the bridge element, can be inhibited by isolated monomeric DID. NMR data on the bridge-DID system revealed that at least one of the two actin-binding sites on the bridge element is accessible to actin monomer in the inhibited state. CONCLUSIONS/SIGNIFICANCE: Our findings suggest that autoinhibition in the native DRF dimer involves steric hindrance with the actin filament. Although the structure of a full-length DRF would be required for clarification of the presented models, our work here provides the first structural insights into the mechanism of the DRF autoinhibition.
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spelling pubmed-29480192010-10-06 Crystal Structure of the Formin mDia1 in Autoinhibited Conformation Otomo, Takanori Tomchick, Diana R. Otomo, Chinatsu Machius, Mischa Rosen, Michael K. PLoS One Research Article BACKGROUND: Formin proteins utilize a conserved formin homology 2 (FH2) domain to nucleate new actin filaments. In mammalian diaphanous-related formins (DRFs) the FH2 domain is inhibited through an unknown mechanism by intramolecular binding of the diaphanous autoinhibitory domain (DAD) and the diaphanous inhibitory domain (DID). METHODOLOGY/PRINCIPAL FINDINGS: Here we report the crystal structure of a complex between DID and FH2-DAD fragments of the mammalian DRF, mDia1 (mammalian diaphanous 1 also called Drf1 or p140mDia). The structure shows a tetrameric configuration (4 FH2 + 4 DID) in which the actin-binding sites on the FH2 domain are sterically occluded. However biochemical data suggest the full-length mDia1 is a dimer in solution (2 FH2 + 2 DID). Based on the crystal structure, we have generated possible dimer models and found that architectures of all of these models are incompatible with binding to actin filament but not to actin monomer. Furthermore, we show that the minimal functional monomeric unit in the FH2 domain, termed the bridge element, can be inhibited by isolated monomeric DID. NMR data on the bridge-DID system revealed that at least one of the two actin-binding sites on the bridge element is accessible to actin monomer in the inhibited state. CONCLUSIONS/SIGNIFICANCE: Our findings suggest that autoinhibition in the native DRF dimer involves steric hindrance with the actin filament. Although the structure of a full-length DRF would be required for clarification of the presented models, our work here provides the first structural insights into the mechanism of the DRF autoinhibition. Public Library of Science 2010-09-30 /pmc/articles/PMC2948019/ /pubmed/20927343 http://dx.doi.org/10.1371/journal.pone.0012896 Text en Otomo 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
Otomo, Takanori
Tomchick, Diana R.
Otomo, Chinatsu
Machius, Mischa
Rosen, Michael K.
Crystal Structure of the Formin mDia1 in Autoinhibited Conformation
title Crystal Structure of the Formin mDia1 in Autoinhibited Conformation
title_full Crystal Structure of the Formin mDia1 in Autoinhibited Conformation
title_fullStr Crystal Structure of the Formin mDia1 in Autoinhibited Conformation
title_full_unstemmed Crystal Structure of the Formin mDia1 in Autoinhibited Conformation
title_short Crystal Structure of the Formin mDia1 in Autoinhibited Conformation
title_sort crystal structure of the formin mdia1 in autoinhibited conformation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2948019/
https://www.ncbi.nlm.nih.gov/pubmed/20927343
http://dx.doi.org/10.1371/journal.pone.0012896
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