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Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure

Proteins can aggregate in response to stresses, including hyperosmotic shock. Formation and disassembly of aggregates is a relatively slow process. We describe a novel instant response of the cell to hyperosmosis, during which chaperones and other proteins form numerous foci with properties uncharac...

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Autores principales: Alexandrov, Alexander I., Grosfeld, Erika V., Dergalev, Alexander A., Kushnirov, Vitaly V., Chuprov-Netochin, Roman N., Tyurin-Kuzmin, Pyotr A., Kireev, Igor I., Ter-Avanesyan, Michael D., Leonov, Sergey V., Agaphonov, Michael O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6679407/
https://www.ncbi.nlm.nih.gov/pubmed/31285266
http://dx.doi.org/10.1242/bio.044529
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author Alexandrov, Alexander I.
Grosfeld, Erika V.
Dergalev, Alexander A.
Kushnirov, Vitaly V.
Chuprov-Netochin, Roman N.
Tyurin-Kuzmin, Pyotr A.
Kireev, Igor I.
Ter-Avanesyan, Michael D.
Leonov, Sergey V.
Agaphonov, Michael O.
author_facet Alexandrov, Alexander I.
Grosfeld, Erika V.
Dergalev, Alexander A.
Kushnirov, Vitaly V.
Chuprov-Netochin, Roman N.
Tyurin-Kuzmin, Pyotr A.
Kireev, Igor I.
Ter-Avanesyan, Michael D.
Leonov, Sergey V.
Agaphonov, Michael O.
author_sort Alexandrov, Alexander I.
collection PubMed
description Proteins can aggregate in response to stresses, including hyperosmotic shock. Formation and disassembly of aggregates is a relatively slow process. We describe a novel instant response of the cell to hyperosmosis, during which chaperones and other proteins form numerous foci with properties uncharacteristic of classical aggregates. These foci appeared/disappeared seconds after shock onset/removal, in close correlation with cell volume changes. Genome-wide and targeted testing revealed chaperones, metabolic enzymes, P-body components and amyloidogenic proteins in the foci. Most of these proteins can form large assemblies and for some, the assembled state was pre-requisite for participation in foci. A genome-wide screen failed to identify genes whose absence prevented foci participation by Hsp70. Shapes of and interconnections between foci, revealed by super-resolution microscopy, indicated that the foci were compressed between other entities. Based on our findings, we suggest a new model of cytosol architecture as a collection of numerous gel-like regions suspended in a liquid network. This network is reduced in volume in response to hyperosmosis and forms small pockets between the gel-like regions.
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spelling pubmed-66794072019-08-12 Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure Alexandrov, Alexander I. Grosfeld, Erika V. Dergalev, Alexander A. Kushnirov, Vitaly V. Chuprov-Netochin, Roman N. Tyurin-Kuzmin, Pyotr A. Kireev, Igor I. Ter-Avanesyan, Michael D. Leonov, Sergey V. Agaphonov, Michael O. Biol Open Research Article Proteins can aggregate in response to stresses, including hyperosmotic shock. Formation and disassembly of aggregates is a relatively slow process. We describe a novel instant response of the cell to hyperosmosis, during which chaperones and other proteins form numerous foci with properties uncharacteristic of classical aggregates. These foci appeared/disappeared seconds after shock onset/removal, in close correlation with cell volume changes. Genome-wide and targeted testing revealed chaperones, metabolic enzymes, P-body components and amyloidogenic proteins in the foci. Most of these proteins can form large assemblies and for some, the assembled state was pre-requisite for participation in foci. A genome-wide screen failed to identify genes whose absence prevented foci participation by Hsp70. Shapes of and interconnections between foci, revealed by super-resolution microscopy, indicated that the foci were compressed between other entities. Based on our findings, we suggest a new model of cytosol architecture as a collection of numerous gel-like regions suspended in a liquid network. This network is reduced in volume in response to hyperosmosis and forms small pockets between the gel-like regions. The Company of Biologists Ltd 2019-07-08 /pmc/articles/PMC6679407/ /pubmed/31285266 http://dx.doi.org/10.1242/bio.044529 Text en © 2019. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/4.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Alexandrov, Alexander I.
Grosfeld, Erika V.
Dergalev, Alexander A.
Kushnirov, Vitaly V.
Chuprov-Netochin, Roman N.
Tyurin-Kuzmin, Pyotr A.
Kireev, Igor I.
Ter-Avanesyan, Michael D.
Leonov, Sergey V.
Agaphonov, Michael O.
Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
title Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
title_full Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
title_fullStr Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
title_full_unstemmed Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
title_short Analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
title_sort analysis of novel hyperosmotic shock response suggests ‘beads in liquid’ cytosol structure
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6679407/
https://www.ncbi.nlm.nih.gov/pubmed/31285266
http://dx.doi.org/10.1242/bio.044529
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