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Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6

[Image: see text] Members of the 14-3-3 eukaryotic protein family predominantly function as dimers. The dimeric form can be converted into monomers upon phosphorylation of Ser(58) located at the subunit interface. Monomers are less stable than dimers and have been considered to be either less active...

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Autores principales: Sluchanko, Nikolai N., Artemova, Natalya V., Sudnitsyna, Maria V., Safenkova, Irina V., Antson, Alfred A., Levitsky, Dmitrii I., Gusev, Nikolai B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2012
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3413243/
https://www.ncbi.nlm.nih.gov/pubmed/22794279
http://dx.doi.org/10.1021/bi300674e
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author Sluchanko, Nikolai N.
Artemova, Natalya V.
Sudnitsyna, Maria V.
Safenkova, Irina V.
Antson, Alfred A.
Levitsky, Dmitrii I.
Gusev, Nikolai B.
author_facet Sluchanko, Nikolai N.
Artemova, Natalya V.
Sudnitsyna, Maria V.
Safenkova, Irina V.
Antson, Alfred A.
Levitsky, Dmitrii I.
Gusev, Nikolai B.
author_sort Sluchanko, Nikolai N.
collection PubMed
description [Image: see text] Members of the 14-3-3 eukaryotic protein family predominantly function as dimers. The dimeric form can be converted into monomers upon phosphorylation of Ser(58) located at the subunit interface. Monomers are less stable than dimers and have been considered to be either less active or even inactive during binding and regulation of phosphorylated client proteins. However, like dimers, monomers contain the phosphoserine-binding site and therefore can retain some functions of the dimeric 14-3-3. Furthermore, 14-3-3 monomers may possess additional functional roles owing to their exposed intersubunit surfaces. Previously we have found that the monomeric mutant of 14-3-3ζ (14-3-3ζ(m)), like the wild type protein, is able to bind phosphorylated small heat shock protein HspB6 (pHspB6), which is involved in the regulation of smooth muscle contraction and cardioprotection. Here we report characterization of the 14-3-3ζ(m)/pHspB6 complex by biophysical and biochemical techniques. We find that formation of the complex retards proteolytic degradation and increases thermal stability of the monomeric 14-3-3, indicating that interaction with phosphorylated targets could be a general mechanism of 14-3-3 monomers stabilization. Furthermore, by using myosin subfragment 1 (S1) as a model substrate we find that the monomer has significantly higher chaperone-like activity than either the dimeric 14-3-3ζ protein or even HspB6 itself. These observations indicate that 14-3-3ζ and possibly other 14-3-3 isoforms may have additional functional roles conducted by the monomeric state.
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spelling pubmed-34132432012-08-08 Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6 Sluchanko, Nikolai N. Artemova, Natalya V. Sudnitsyna, Maria V. Safenkova, Irina V. Antson, Alfred A. Levitsky, Dmitrii I. Gusev, Nikolai B. Biochemistry [Image: see text] Members of the 14-3-3 eukaryotic protein family predominantly function as dimers. The dimeric form can be converted into monomers upon phosphorylation of Ser(58) located at the subunit interface. Monomers are less stable than dimers and have been considered to be either less active or even inactive during binding and regulation of phosphorylated client proteins. However, like dimers, monomers contain the phosphoserine-binding site and therefore can retain some functions of the dimeric 14-3-3. Furthermore, 14-3-3 monomers may possess additional functional roles owing to their exposed intersubunit surfaces. Previously we have found that the monomeric mutant of 14-3-3ζ (14-3-3ζ(m)), like the wild type protein, is able to bind phosphorylated small heat shock protein HspB6 (pHspB6), which is involved in the regulation of smooth muscle contraction and cardioprotection. Here we report characterization of the 14-3-3ζ(m)/pHspB6 complex by biophysical and biochemical techniques. We find that formation of the complex retards proteolytic degradation and increases thermal stability of the monomeric 14-3-3, indicating that interaction with phosphorylated targets could be a general mechanism of 14-3-3 monomers stabilization. Furthermore, by using myosin subfragment 1 (S1) as a model substrate we find that the monomer has significantly higher chaperone-like activity than either the dimeric 14-3-3ζ protein or even HspB6 itself. These observations indicate that 14-3-3ζ and possibly other 14-3-3 isoforms may have additional functional roles conducted by the monomeric state. American Chemical Society 2012-07-13 2012-08-07 /pmc/articles/PMC3413243/ /pubmed/22794279 http://dx.doi.org/10.1021/bi300674e Text en Copyright © 2012 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org.
spellingShingle Sluchanko, Nikolai N.
Artemova, Natalya V.
Sudnitsyna, Maria V.
Safenkova, Irina V.
Antson, Alfred A.
Levitsky, Dmitrii I.
Gusev, Nikolai B.
Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6
title Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6
title_full Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6
title_fullStr Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6
title_full_unstemmed Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6
title_short Monomeric 14-3-3ζ Has a Chaperone-Like Activity and Is Stabilized by Phosphorylated HspB6
title_sort monomeric 14-3-3ζ has a chaperone-like activity and is stabilized by phosphorylated hspb6
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3413243/
https://www.ncbi.nlm.nih.gov/pubmed/22794279
http://dx.doi.org/10.1021/bi300674e
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