Literature DB >> 28840212

Transfer matrix theory of polymer complex coacervation.

Tyler K Lytle1, Charles E Sing.   

Abstract

Oppositely charged polyelectrolytes can undergo a macroscopic, associative phase separation in solution, via a process known as complex coacervation. Significant recent effort has gone into providing a clear, physical picture of coacervation; most work has focused on improving the field theory picture that emerged from the classical Voorn-Overbeek theory. These methods have persistent issues, however, resolving the molecular features that have been shown to play a major role in coacervate thermodynamics. In this paper, we outline a theoretical approach to coacervation based on a transfer matrix formalism that is an alternative to traditional field-based approaches. We develop theoretical arguments informed by experimental observation and simulation, which serve to establish an analytical expression for polymeric complex coacervation that is consistent with the molecular features of coacervate phases. The analytical expression provided by this theory is in a form that can be incorporated into more complicated theoretical or simulation formalisms, and thus provides a starting point for understanding coacervate-driven self-assembly or biophysics.

Entities:  

Year:  2017        PMID: 28840212     DOI: 10.1039/c7sm01080j

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  13 in total

1.  Molecular design of self-coacervation phenomena in block polyampholytes.

Authors:  Scott P O Danielsen; James McCarty; Joan-Emma Shea; Kris T Delaney; Glenn H Fredrickson
Journal:  Proc Natl Acad Sci U S A       Date:  2019-04-04       Impact factor: 11.205

2.  Liquid Phase Separation Controlled by pH.

Authors:  Omar Adame-Arana; Christoph A Weber; Vasily Zaburdaev; Jacques Prost; Frank Jülicher
Journal:  Biophys J       Date:  2020-09-16       Impact factor: 4.033

3.  A unified analytical theory of heteropolymers for sequence-specific phase behaviors of polyelectrolytes and polyampholytes.

Authors:  Yi-Hsuan Lin; Jacob P Brady; Hue Sun Chan; Kingshuk Ghosh
Journal:  J Chem Phys       Date:  2020-01-31       Impact factor: 3.488

4.  Complex Coacervation in Polyelectrolytes from a Coarse-Grained Model.

Authors:  Marat Andreev; Vivek M Prabhu; Jack F Douglas; Matthew Tirrell; Juan J de Pablo
Journal:  ACS Macro Lett       Date:  2018       Impact factor: 6.903

5.  Narrow equilibrium window for complex coacervation of tau and RNA under cellular conditions.

Authors:  Yanxian Lin; James McCarty; Jennifer N Rauch; Kris T Delaney; Kenneth S Kosik; Glenn H Fredrickson; Joan-Emma Shea; Songi Han
Journal:  Elife       Date:  2019-04-05       Impact factor: 8.140

6.  Local rigidification and possible coacervation of the Escherichia coli DNA by cationic nylon-3 polymers.

Authors:  Yanyu Zhu; Lei Liu; Mainak Mustafi; Leslie A Rank; Samuel H Gellman; James C Weisshaar
Journal:  Biophys J       Date:  2021-10-30       Impact factor: 4.033

7.  Driving force and pathway in polyelectrolyte complex coacervation.

Authors:  Shensheng Chen; Zhen-Gang Wang
Journal:  Proc Natl Acad Sci U S A       Date:  2022-08-29       Impact factor: 12.779

8.  Lower Critical Solution Temperature Behavior in Polyelectrolyte Complex Coacervates.

Authors:  Sabin Adhikari; Vivek M Prabhu; Murugappan Muthukumar
Journal:  Macromolecules       Date:  2019       Impact factor: 5.985

9.  Sequence and entropy-based control of complex coacervates.

Authors:  Li-Wei Chang; Tyler K Lytle; Mithun Radhakrishna; Jason J Madinya; Jon Vélez; Charles E Sing; Sarah L Perry
Journal:  Nat Commun       Date:  2017-11-02       Impact factor: 14.919

10.  Coacervate formation studied by explicit solvent coarse-grain molecular dynamics with the Martini model.

Authors:  Maria Tsanai; Pim W J M Frederix; Carsten F E Schroer; Paulo C T Souza; Siewert J Marrink
Journal:  Chem Sci       Date:  2021-05-18       Impact factor: 9.825

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