Literature DB >> 32696384

Determination of Protein Phase Diagrams by Centrifugation.

Nicole M Milkovic1, Tanja Mittag2.   

Abstract

Liquid-liquid phase separation (LLPS) underlies the formation of biomolecular condensates, i.e., membrane-less compartments in cells that carry out functions related to RNA metabolism, stress adaptation, transport, or signaling. Examples of such biomolecular condensates are the nucleolus, nuclear speckles, promyelocytic leukemia protein (PML) bodies and paraspeckles in the nucleus, and stress granules and P bodies in the cytoplasm. Other structures in cells that are not typically viewed as bona fide compartments also seem to be formed via LLPS as recently elucidated, including heterochromatin, super-enhancers, and membrane receptor clusters. Key protein and/or RNA components of these biomolecular condensates form a scaffold via LLPS. Other constituents incorporate into this scaffold as clients. To understand the sequence features and interactions that mediate biomolecular condensate formation in cells, it is useful to quantify phase separation of pure components in vitro. Microscopy and turbidity measurements can be used to determine the concentration of a protein above which it phase separates, the so-called saturation concentration. Here, we describe experiments for the determination of full coexistence lines of phase-separating proteins by centrifugation. Coexistence lines are reconstructed from coexisting light and dense phase concentrations of the protein, and we present them as so-called phase diagrams. Phase diagrams allow the quantitative comparison of phase separation for proteins and their mutants under different conditions. They are thus important for our nuanced understanding of the driving forces underlying liquid-liquid phase separation in vitro. Such results have direct applicability for understanding phase separation-driven compartmentalization of cells.

Entities:  

Keywords:  Centrifugation; Coexistence line; Demixing; IDP; Intrinsically disordered protein; LLPS; Liquid-liquid phase separation

Mesh:

Substances:

Year:  2020        PMID: 32696384     DOI: 10.1007/978-1-0716-0524-0_35

Source DB:  PubMed          Journal:  Methods Mol Biol        ISSN: 1064-3745


  23 in total

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Journal:  Cell       Date:  2015-08-27       Impact factor: 41.582

2.  Mapping Local and Global Liquid Phase Behavior in Living Cells Using Photo-Oligomerizable Seeds.

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Journal:  Cell       Date:  2018-11-29       Impact factor: 41.582

3.  Germline P granules are liquid droplets that localize by controlled dissolution/condensation.

Authors:  Clifford P Brangwynne; Christian R Eckmann; David S Courson; Agata Rybarska; Carsten Hoege; Jöbin Gharakhani; Frank Jülicher; Anthony A Hyman
Journal:  Science       Date:  2009-05-21       Impact factor: 47.728

4.  Active liquid-like behavior of nucleoli determines their size and shape in Xenopus laevis oocytes.

Authors:  Clifford P Brangwynne; Timothy J Mitchison; Anthony A Hyman
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5.  The disordered P granule protein LAF-1 drives phase separation into droplets with tunable viscosity and dynamics.

Authors:  Shana Elbaum-Garfinkle; Younghoon Kim; Krzysztof Szczepaniak; Carlos Chih-Hsiung Chen; Christian R Eckmann; Sua Myong; Clifford P Brangwynne
Journal:  Proc Natl Acad Sci U S A       Date:  2015-05-26       Impact factor: 11.205

6.  RNA Controls PolyQ Protein Phase Transitions.

Authors:  Huaiying Zhang; Shana Elbaum-Garfinkle; Erin M Langdon; Nicole Taylor; Patricia Occhipinti; Andrew A Bridges; Clifford P Brangwynne; Amy S Gladfelter
Journal:  Mol Cell       Date:  2015-10-15       Impact factor: 17.970

7.  RNA transcription modulates phase transition-driven nuclear body assembly.

Authors:  Joel Berry; Stephanie C Weber; Nilesh Vaidya; Mikko Haataja; Clifford P Brangwynne
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8.  Phase separation by low complexity domains promotes stress granule assembly and drives pathological fibrillization.

Authors:  Amandine Molliex; Jamshid Temirov; Jihun Lee; Maura Coughlin; Anderson P Kanagaraj; Hong Joo Kim; Tanja Mittag; J Paul Taylor
Journal:  Cell       Date:  2015-09-24       Impact factor: 41.582

9.  Phase transition of a disordered nuage protein generates environmentally responsive membraneless organelles.

Authors:  Timothy J Nott; Evangelia Petsalaki; Patrick Farber; Dylan Jervis; Eden Fussner; Anne Plochowietz; Timothy D Craggs; David P Bazett-Jones; Tony Pawson; Julie D Forman-Kay; Andrew J Baldwin
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10.  Formation and Maturation of Phase-Separated Liquid Droplets by RNA-Binding Proteins.

Authors:  Yuan Lin; David S W Protter; Michael K Rosen; Roy Parker
Journal:  Mol Cell       Date:  2015-09-24       Impact factor: 17.970

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  7 in total

1.  Microfluidic characterization of macromolecular liquid-liquid phase separation.

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2.  Histone H3 and H4 tails play an important role in nucleosome phase separation.

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Review 3.  Protein conformation and biomolecular condensates.

Authors:  Diego S Vazquez; Pamela L Toledo; Alejo R Gianotti; Mario R Ermácora
Journal:  Curr Res Struct Biol       Date:  2022-09-14

Review 4.  Biological Phase Separation and Biomolecular Condensates in Plants.

Authors:  Ryan J Emenecker; Alex S Holehouse; Lucia C Strader
Journal:  Annu Rev Plant Biol       Date:  2021-03-08       Impact factor: 28.310

5.  Isolating and Analyzing Protein Containing Granules from Cells.

Authors:  Rachel A Victor; Valery F Thompson; Jacob C Schwartz
Journal:  Curr Protoc       Date:  2021-03

6.  Deciphering how naturally occurring sequence features impact the phase behaviours of disordered prion-like domains.

Authors:  Anne Bremer; Mina Farag; Wade M Borcherds; Ivan Peran; Erik W Martin; Rohit V Pappu; Tanja Mittag
Journal:  Nat Chem       Date:  2021-12-20       Impact factor: 24.274

Review 7.  Polyphasic linkage and the impact of ligand binding on the regulation of biomolecular condensates.

Authors:  Kiersten M Ruff; Furqan Dar; Rohit V Pappu
Journal:  Biophys Rev       Date:  2021-06-15
  7 in total

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