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Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells

The combination of phase separation and disorder-to-order transitions can give rise to ordered, semi-crystalline fibrillar assemblies that underlie prion phenomena namely, the non-Mendelian transfer of information across cells. Recently, a method known as Distributed Amphifluoric Fö rster Resonance...

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Autores principales: Posey, Ammon E., Ruff, Kiersten M., Lalmansingh, Jared M., Kandola, Tejbir S., Lange, Jeffrey J., Halfmann, Randal, Pappu, Rohit V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8561728/
https://www.ncbi.nlm.nih.gov/pubmed/33539877
http://dx.doi.org/10.1016/j.jmb.2021.166848
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author Posey, Ammon E.
Ruff, Kiersten M.
Lalmansingh, Jared M.
Kandola, Tejbir S.
Lange, Jeffrey J.
Halfmann, Randal
Pappu, Rohit V.
author_facet Posey, Ammon E.
Ruff, Kiersten M.
Lalmansingh, Jared M.
Kandola, Tejbir S.
Lange, Jeffrey J.
Halfmann, Randal
Pappu, Rohit V.
author_sort Posey, Ammon E.
collection PubMed
description The combination of phase separation and disorder-to-order transitions can give rise to ordered, semi-crystalline fibrillar assemblies that underlie prion phenomena namely, the non-Mendelian transfer of information across cells. Recently, a method known as Distributed Amphifluoric Fö rster Resonance Energy Transfer (DAmFRET) was developed to study the convolution of phase separation and disorder-toorder transitions in live cells. In this assay, a protein of interest is expressed to a broad range of concentrations and the acquisition of local density and order, measured by changes in FRET, is used to map phase transitions for different proteins. The high-throughput nature of this assay affords the promise of uncovering sequence-to-phase behavior relationships in live cells. Here, we report the development of a supervised method to obtain automated and accurate classifications of phase transitions quantified using the DAmFRET assay. Systems that we classify as undergoing two-state discontinuous transitions are consistent with prion-like behaviors, although the converse is not always true. We uncover well-established and surprising new sequence features that contribute to two-state phase behavior of prion-like domains. Additionally, our method enables quantitative, comparative assessments of sequence-specific driving forces for phase transitions in live cells. Finally, we demonstrate that a modest augmentation of DAmFRET measurements, specifically time-dependent protein expression profiles, can allow one to apply classical nucleation theory to extract sequence-specific lower bounds on the probability of nucleating ordered assemblies. Taken together, our approaches lead to a useful analysis pipeline that enables the extraction of mechanistic inferences regarding phase transitions in live cells.
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spelling pubmed-85617282021-11-02 Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells Posey, Ammon E. Ruff, Kiersten M. Lalmansingh, Jared M. Kandola, Tejbir S. Lange, Jeffrey J. Halfmann, Randal Pappu, Rohit V. J Mol Biol Article The combination of phase separation and disorder-to-order transitions can give rise to ordered, semi-crystalline fibrillar assemblies that underlie prion phenomena namely, the non-Mendelian transfer of information across cells. Recently, a method known as Distributed Amphifluoric Fö rster Resonance Energy Transfer (DAmFRET) was developed to study the convolution of phase separation and disorder-toorder transitions in live cells. In this assay, a protein of interest is expressed to a broad range of concentrations and the acquisition of local density and order, measured by changes in FRET, is used to map phase transitions for different proteins. The high-throughput nature of this assay affords the promise of uncovering sequence-to-phase behavior relationships in live cells. Here, we report the development of a supervised method to obtain automated and accurate classifications of phase transitions quantified using the DAmFRET assay. Systems that we classify as undergoing two-state discontinuous transitions are consistent with prion-like behaviors, although the converse is not always true. We uncover well-established and surprising new sequence features that contribute to two-state phase behavior of prion-like domains. Additionally, our method enables quantitative, comparative assessments of sequence-specific driving forces for phase transitions in live cells. Finally, we demonstrate that a modest augmentation of DAmFRET measurements, specifically time-dependent protein expression profiles, can allow one to apply classical nucleation theory to extract sequence-specific lower bounds on the probability of nucleating ordered assemblies. Taken together, our approaches lead to a useful analysis pipeline that enables the extraction of mechanistic inferences regarding phase transitions in live cells. 2021-02-02 2021-06-11 /pmc/articles/PMC8561728/ /pubmed/33539877 http://dx.doi.org/10.1016/j.jmb.2021.166848 Text en https://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/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ).
spellingShingle Article
Posey, Ammon E.
Ruff, Kiersten M.
Lalmansingh, Jared M.
Kandola, Tejbir S.
Lange, Jeffrey J.
Halfmann, Randal
Pappu, Rohit V.
Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells
title Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells
title_full Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells
title_fullStr Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells
title_full_unstemmed Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells
title_short Mechanistic Inferences From Analysis of Measurements of Protein Phase Transitions in Live Cells
title_sort mechanistic inferences from analysis of measurements of protein phase transitions in live cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8561728/
https://www.ncbi.nlm.nih.gov/pubmed/33539877
http://dx.doi.org/10.1016/j.jmb.2021.166848
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