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Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins

Phase separation is thought to underlie spatial and temporal organization that is required for controlling biochemical reactions in cells. Multivalence of interaction motifs, also known as stickers, is a defining feature of proteins that drive phase separation. Intrinsically disordered proteins with...

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Detalles Bibliográficos
Autores principales: Zeng, Xiangze, Holehouse, Alex S., Chilkoti, Ashutosh, Mittag, Tanja, Pappu, Rohit V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376131/
https://www.ncbi.nlm.nih.gov/pubmed/32619404
http://dx.doi.org/10.1016/j.bpj.2020.06.014
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author Zeng, Xiangze
Holehouse, Alex S.
Chilkoti, Ashutosh
Mittag, Tanja
Pappu, Rohit V.
author_facet Zeng, Xiangze
Holehouse, Alex S.
Chilkoti, Ashutosh
Mittag, Tanja
Pappu, Rohit V.
author_sort Zeng, Xiangze
collection PubMed
description Phase separation is thought to underlie spatial and temporal organization that is required for controlling biochemical reactions in cells. Multivalence of interaction motifs, also known as stickers, is a defining feature of proteins that drive phase separation. Intrinsically disordered proteins with stickers uniformly distributed along the linear sequence can serve as scaffold molecules that drive phase separation. The sequence-intrinsic contributions of disordered proteins to phase separation can be discerned by computing or measuring sequence-specific phase diagrams. These help to delineate the combinations of protein concentration and a suitable control parameter, such as temperature, that support phase separation. Here, we present an approach that combines detailed simulations with a numerical adaptation of an analytical Gaussian cluster theory to enable the calculation of sequence-specific phase diagrams. Our approach leverages the known equivalence between the driving forces for single-chain collapse in dilute solutions and the driving forces for phase separation in concentrated solutions. We demonstrate the application of the theory-aided computations through calculation of phase diagrams for a set of archetypal intrinsically disordered low-complexity domains. We also leverage theories to compute sequence-specific percolation lines and thereby provide a thermodynamic framework for hardening transitions that have been observed for many biomolecular condensates.
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spelling pubmed-73761312020-10-10 Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins Zeng, Xiangze Holehouse, Alex S. Chilkoti, Ashutosh Mittag, Tanja Pappu, Rohit V. Biophys J Articles Phase separation is thought to underlie spatial and temporal organization that is required for controlling biochemical reactions in cells. Multivalence of interaction motifs, also known as stickers, is a defining feature of proteins that drive phase separation. Intrinsically disordered proteins with stickers uniformly distributed along the linear sequence can serve as scaffold molecules that drive phase separation. The sequence-intrinsic contributions of disordered proteins to phase separation can be discerned by computing or measuring sequence-specific phase diagrams. These help to delineate the combinations of protein concentration and a suitable control parameter, such as temperature, that support phase separation. Here, we present an approach that combines detailed simulations with a numerical adaptation of an analytical Gaussian cluster theory to enable the calculation of sequence-specific phase diagrams. Our approach leverages the known equivalence between the driving forces for single-chain collapse in dilute solutions and the driving forces for phase separation in concentrated solutions. We demonstrate the application of the theory-aided computations through calculation of phase diagrams for a set of archetypal intrinsically disordered low-complexity domains. We also leverage theories to compute sequence-specific percolation lines and thereby provide a thermodynamic framework for hardening transitions that have been observed for many biomolecular condensates. The Biophysical Society 2020-07-21 2020-06-23 /pmc/articles/PMC7376131/ /pubmed/32619404 http://dx.doi.org/10.1016/j.bpj.2020.06.014 Text en © 2020 Biophysical Society. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Articles
Zeng, Xiangze
Holehouse, Alex S.
Chilkoti, Ashutosh
Mittag, Tanja
Pappu, Rohit V.
Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins
title Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins
title_full Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins
title_fullStr Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins
title_full_unstemmed Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins
title_short Connecting Coil-to-Globule Transitions to Full Phase Diagrams for Intrinsically Disordered Proteins
title_sort connecting coil-to-globule transitions to full phase diagrams for intrinsically disordered proteins
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376131/
https://www.ncbi.nlm.nih.gov/pubmed/32619404
http://dx.doi.org/10.1016/j.bpj.2020.06.014
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