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Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles

Biological liquid–liquid phase separation has gained considerable attention in recent years as a driving force for the assembly of subcellular compartments termed membraneless organelles. The field has made great strides in elucidating the molecular basis of biomolecular phase separation in various...

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Autores principales: Jalihal, Ameya P., Schmidt, Andreas, Gao, Guoming, Little, Saffron R., Pitchiaya, Sethuramasundaram, Walter, Nils G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948973/
https://www.ncbi.nlm.nih.gov/pubmed/33168632
http://dx.doi.org/10.1074/jbc.REV120.010899
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author Jalihal, Ameya P.
Schmidt, Andreas
Gao, Guoming
Little, Saffron R.
Pitchiaya, Sethuramasundaram
Walter, Nils G.
author_facet Jalihal, Ameya P.
Schmidt, Andreas
Gao, Guoming
Little, Saffron R.
Pitchiaya, Sethuramasundaram
Walter, Nils G.
author_sort Jalihal, Ameya P.
collection PubMed
description Biological liquid–liquid phase separation has gained considerable attention in recent years as a driving force for the assembly of subcellular compartments termed membraneless organelles. The field has made great strides in elucidating the molecular basis of biomolecular phase separation in various disease, stress response, and developmental contexts. Many important biological consequences of such “condensation” are now emerging from in vivo studies. Here we review recent work from our group and others showing that many proteins undergo rapid, reversible condensation in the cellular response to ubiquitous environmental fluctuations such as osmotic changes. We discuss molecular crowding as an important driver of condensation in these responses and suggest that a significant fraction of the proteome is poised to undergo phase separation under physiological conditions. In addition, we review methods currently emerging to visualize, quantify, and modulate the dynamics of intracellular condensates in live cells. Finally, we propose a metaphor for rapid phase separation based on cloud formation, reasoning that our familiar experiences with the readily reversible condensation of water droplets help understand the principle of phase separation. Overall, we provide an account of how biological phase separation supports the highly intertwined relationship between the composition and dynamic internal organization of cells, thus facilitating extremely rapid reorganization in response to internal and external fluctuations.
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spelling pubmed-79489732021-03-19 Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles Jalihal, Ameya P. Schmidt, Andreas Gao, Guoming Little, Saffron R. Pitchiaya, Sethuramasundaram Walter, Nils G. J Biol Chem JBC Reviews Biological liquid–liquid phase separation has gained considerable attention in recent years as a driving force for the assembly of subcellular compartments termed membraneless organelles. The field has made great strides in elucidating the molecular basis of biomolecular phase separation in various disease, stress response, and developmental contexts. Many important biological consequences of such “condensation” are now emerging from in vivo studies. Here we review recent work from our group and others showing that many proteins undergo rapid, reversible condensation in the cellular response to ubiquitous environmental fluctuations such as osmotic changes. We discuss molecular crowding as an important driver of condensation in these responses and suggest that a significant fraction of the proteome is poised to undergo phase separation under physiological conditions. In addition, we review methods currently emerging to visualize, quantify, and modulate the dynamics of intracellular condensates in live cells. Finally, we propose a metaphor for rapid phase separation based on cloud formation, reasoning that our familiar experiences with the readily reversible condensation of water droplets help understand the principle of phase separation. Overall, we provide an account of how biological phase separation supports the highly intertwined relationship between the composition and dynamic internal organization of cells, thus facilitating extremely rapid reorganization in response to internal and external fluctuations. American Society for Biochemistry and Molecular Biology 2020-11-23 /pmc/articles/PMC7948973/ /pubmed/33168632 http://dx.doi.org/10.1074/jbc.REV120.010899 Text en © 2020 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle JBC Reviews
Jalihal, Ameya P.
Schmidt, Andreas
Gao, Guoming
Little, Saffron R.
Pitchiaya, Sethuramasundaram
Walter, Nils G.
Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles
title Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles
title_full Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles
title_fullStr Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles
title_full_unstemmed Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles
title_short Hyperosmotic phase separation: Condensates beyond inclusions, granules and organelles
title_sort hyperosmotic phase separation: condensates beyond inclusions, granules and organelles
topic JBC Reviews
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948973/
https://www.ncbi.nlm.nih.gov/pubmed/33168632
http://dx.doi.org/10.1074/jbc.REV120.010899
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