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Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments

The conformational elasticity of the actin cytoskeleton is essential for its versatile biological functions. Increasing evidence supports that the interplay between the structural and functional properties of actin filaments is finely regulated by actin-binding proteins; however, the underlying mech...

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Autores principales: Ujfalusi, Zoltán, Kovács, Mihály, Nagy, Nikolett T., Barkó, Szilvia, Hild, Gábor, Lukács, András, Nyitrai, Miklós, Bugyi, Beáta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2012
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3442522/
https://www.ncbi.nlm.nih.gov/pubmed/22753415
http://dx.doi.org/10.1074/jbc.M112.341230
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author Ujfalusi, Zoltán
Kovács, Mihály
Nagy, Nikolett T.
Barkó, Szilvia
Hild, Gábor
Lukács, András
Nyitrai, Miklós
Bugyi, Beáta
author_facet Ujfalusi, Zoltán
Kovács, Mihály
Nagy, Nikolett T.
Barkó, Szilvia
Hild, Gábor
Lukács, András
Nyitrai, Miklós
Bugyi, Beáta
author_sort Ujfalusi, Zoltán
collection PubMed
description The conformational elasticity of the actin cytoskeleton is essential for its versatile biological functions. Increasing evidence supports that the interplay between the structural and functional properties of actin filaments is finely regulated by actin-binding proteins; however, the underlying mechanisms and biological consequences are not completely understood. Previous studies showed that the binding of formins to the barbed end induces conformational transitions in actin filaments by making them more flexible through long range allosteric interactions. These conformational changes are accompanied by altered functional properties of the filaments. To get insight into the conformational regulation of formin-nucleated actin structures, in the present work we investigated in detail how binding partners of formin-generated actin structures, myosin and tropomyosin, affect the conformation of the formin-nucleated actin filaments using fluorescence spectroscopic approaches. Time-dependent fluorescence anisotropy and temperature-dependent Förster-type resonance energy transfer measurements revealed that heavy meromyosin, similarly to tropomyosin, restores the formin-induced effects and stabilizes the conformation of actin filaments. The stabilizing effect of heavy meromyosin is cooperative. The kinetic analysis revealed that despite the qualitatively similar effects of heavy meromyosin and tropomyosin on the conformational dynamics of actin filaments the mechanisms of the conformational transition are different for the two proteins. Heavy meromyosin stabilizes the formin-nucleated actin filaments in an apparently single step reaction upon binding, whereas the stabilization by tropomyosin occurs after complex formation. These observations support the idea that actin-binding proteins are key elements of the molecular mechanisms that regulate the conformational and functional diversity of actin filaments in living cells.
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spelling pubmed-34425222012-09-14 Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments Ujfalusi, Zoltán Kovács, Mihály Nagy, Nikolett T. Barkó, Szilvia Hild, Gábor Lukács, András Nyitrai, Miklós Bugyi, Beáta J Biol Chem Molecular Biophysics The conformational elasticity of the actin cytoskeleton is essential for its versatile biological functions. Increasing evidence supports that the interplay between the structural and functional properties of actin filaments is finely regulated by actin-binding proteins; however, the underlying mechanisms and biological consequences are not completely understood. Previous studies showed that the binding of formins to the barbed end induces conformational transitions in actin filaments by making them more flexible through long range allosteric interactions. These conformational changes are accompanied by altered functional properties of the filaments. To get insight into the conformational regulation of formin-nucleated actin structures, in the present work we investigated in detail how binding partners of formin-generated actin structures, myosin and tropomyosin, affect the conformation of the formin-nucleated actin filaments using fluorescence spectroscopic approaches. Time-dependent fluorescence anisotropy and temperature-dependent Förster-type resonance energy transfer measurements revealed that heavy meromyosin, similarly to tropomyosin, restores the formin-induced effects and stabilizes the conformation of actin filaments. The stabilizing effect of heavy meromyosin is cooperative. The kinetic analysis revealed that despite the qualitatively similar effects of heavy meromyosin and tropomyosin on the conformational dynamics of actin filaments the mechanisms of the conformational transition are different for the two proteins. Heavy meromyosin stabilizes the formin-nucleated actin filaments in an apparently single step reaction upon binding, whereas the stabilization by tropomyosin occurs after complex formation. These observations support the idea that actin-binding proteins are key elements of the molecular mechanisms that regulate the conformational and functional diversity of actin filaments in living cells. American Society for Biochemistry and Molecular Biology 2012-09-14 2012-06-29 /pmc/articles/PMC3442522/ /pubmed/22753415 http://dx.doi.org/10.1074/jbc.M112.341230 Text en © 2012 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Molecular Biophysics
Ujfalusi, Zoltán
Kovács, Mihály
Nagy, Nikolett T.
Barkó, Szilvia
Hild, Gábor
Lukács, András
Nyitrai, Miklós
Bugyi, Beáta
Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments
title Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments
title_full Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments
title_fullStr Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments
title_full_unstemmed Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments
title_short Myosin and Tropomyosin Stabilize the Conformation of Formin-nucleated Actin Filaments
title_sort myosin and tropomyosin stabilize the conformation of formin-nucleated actin filaments
topic Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3442522/
https://www.ncbi.nlm.nih.gov/pubmed/22753415
http://dx.doi.org/10.1074/jbc.M112.341230
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