Literature DB >> 29210575

Phase Separation Behavior of Supercharged Proteins and Polyelectrolytes.

Chad S Cummings1, Allie C Obermeyer1.   

Abstract

Membraneless organelles, like membrane-bound organelles, are essential to cell homeostasis and provide discrete cellular subcompartments. Unlike classical organelles, membraneless organelles possess no physical barrier but rather arise by phase separation of the organelle components from the surrounding cytoplasm or nucleoplasm. Complex coacervation, the liquid-liquid phase separation of oppositely charged polyelectrolytes, is one of several phenomena that are hypothesized to drive the formation and regulation of some membraneless organelles. Studies of the molecular properties of globular proteins that drive complex coacervation are limited as many proteins do not form complexes with oppositely charged macromolecules at neutral pH and moderate ionic strengths. Protein supercharging overcomes this problem and drives complexation with oppositely charged macromolecules. In this work, several distinct cationic supercharged green fluorescent protein (GFP) variants were designed to examine the phase behavior with oppositely charged polyanionic macromolecules. Cationic GFP variants phase separated with oppositely charged macromolecules at various mixing ratios, salt concentrations, and pH values. Efficient protein incorporation in the macromolecule rich phase occurred over a range of protein and polymer mass fractions, but the protein encapsulation efficiency was highest at the midpoint of the phase separation regime. More positively charged proteins phase separated over broader pH and salt ranges than those of proteins with a lower charge density. Interestingly, each GFP variant phase separated at higher salt concentrations with anionic synthetic macromolecules compared to anionic biological macromolecules. Optical microscopy revealed that most variants, depending on solution conditions, formed liquid-liquid phase separations, except for GFP/DNA pairs that formed solid aggregates under all tested conditions.

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Year:  2017        PMID: 29210575     DOI: 10.1021/acs.biochem.7b00990

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  12 in total

1.  Thermostabilization of viruses via complex coacervation.

Authors:  Xue Mi; Whitney C Blocher McTigue; Pratik U Joshi; Mallory K Bunker; Caryn L Heldt; Sarah L Perry
Journal:  Biomater Sci       Date:  2020-12-15       Impact factor: 6.843

2.  An Introduction to the Stickers-and-Spacers Framework as Applied to Biomolecular Condensates.

Authors:  Garrett M Ginell; Alex S Holehouse
Journal:  Methods Mol Biol       Date:  2023

Review 3.  Methods for Physical Characterization of Phase-Separated Bodies and Membrane-less Organelles.

Authors:  Diana M Mitrea; Bappaditya Chandra; Mylene C Ferrolino; Eric B Gibbs; Michele Tolbert; Michael R White; Richard W Kriwacki
Journal:  J Mol Biol       Date:  2018-07-24       Impact factor: 5.469

4.  N-terminal Domain of TDP43 Enhances Liquid-Liquid Phase Separation of Globular Proteins.

Authors:  G Campbell Carter; Chia-Heng Hsiung; Leman Simpson; Haopeng Yang; Xin Zhang
Journal:  J Mol Biol       Date:  2021-03-18       Impact factor: 5.469

5.  Charge-driven condensation of RNA and proteins suggests broad role of phase separation in cytoplasmic environments.

Authors:  Bercem Dutagaci; Grzegorz Nawrocki; Joyce Goodluck; Ali Akbar Ashkarran; Charles G Hoogstraten; Lisa J Lapidus; Michael Feig
Journal:  Elife       Date:  2021-01-26       Impact factor: 8.140

6.  Charge-Based Separation of Proteins Using Polyelectrolyte Complexes as Models for Membraneless Organelles.

Authors:  Jéré J van Lente; Mireille M A E Claessens; Saskia Lindhoud
Journal:  Biomacromolecules       Date:  2019-09-05       Impact factor: 6.988

7.  Formation of Biomolecular Condensates in Bacteria by Tuning Protein Electrostatics.

Authors:  Vivian Yeong; Emily G Werth; Lewis M Brown; Allie C Obermeyer
Journal:  ACS Cent Sci       Date:  2020-11-12       Impact factor: 14.553

8.  Functional enzyme-polymer complexes.

Authors:  Curt Waltmann; Carolyn E Mills; Jeremy Wang; Baofu Qiao; John M Torkelson; Danielle Tullman-Ercek; Monica Olvera de la Cruz
Journal:  Proc Natl Acad Sci U S A       Date:  2022-03-21       Impact factor: 12.779

9.  Liquid-like droplet formation by tumor suppressor p53 induced by multivalent electrostatic interactions between two disordered domains.

Authors:  Kiyoto Kamagata; Saori Kanbayashi; Masaya Honda; Yuji Itoh; Hiroto Takahashi; Tomoshi Kameda; Fumi Nagatsugi; Satoshi Takahashi
Journal:  Sci Rep       Date:  2020-01-17       Impact factor: 4.379

10.  Charged Polypeptide Tail Boosts the Salt Resistance of Enzyme-Containing Complex Coacervate Micelles.

Authors:  Riahna Kembaren; Adrie H Westphal; Marleen Kamperman; J Mieke Kleijn; Jan Willem Borst
Journal:  Biomacromolecules       Date:  2022-01-18       Impact factor: 6.988

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