Looping-in complexation and ion partitioning in nonstoichiometric polyelectrolyte mixtures

被引:43
作者
Friedowitz, Sean [1 ,2 ]
Lou, Junzhe [1 ,3 ]
Barker, Kayla Patricia [3 ]
Will, Karis [3 ,4 ]
Xia, Yan [3 ]
Qin, Jian [2 ]
机构
[1] Stanford Univ, Dept Mat Sci & Engn, Stanford, CA 94305 USA
[2] Stanford Univ, Dept Chem Engn, Stanford, CA 94305 USA
[3] Stanford Univ, Dept Chem, Stanford, CA 94305 USA
[4] Harvard Univ, Massachusetts Gen Hosp, Boston, MA 02114 USA
基金
美国国家科学基金会;
关键词
WEAKLY CHARGED POLYELECTROLYTES; COACERVATION; DNA; POLYMERIZATION; PRECIPITATION; POLYAMINES; GRANULES; STATE; SALT;
D O I
10.1126/sciadv.abg8654
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A wide variety of intracellular membraneless compartments are formed via liquid-liquid phase separation of charged proteins and nucleic acids. Understanding the stability of these compartments, while accounting for the compositional heterogeneity intrinsic to cellular environments, poses a daunting challenge. We combined experimental and theoretical efforts to study the effects of nonstoichiometric mixing on coacervation behavior and accurately measured the concentrations of polyelectrolytes and small ions in the coacervate and supernatant phases. For synthetic polyacrylamides and polypeptides/DNA, with unequal mixing stoichiometry, we report a general "looping-in" phenomenon found around physiological salt concentrations, where the polymer concentrations in the coacervate initially increase with salt addition before subsequently decreasing. This looping-in behavior is captured by a molecular model that considers reversible ion binding and electrostatic interactions. Further analysis in the low-salt regime shows that the looping-in phenomenon originates from the translational entropy of counterions that are needed to neutralize nonstoichiometric coacervates.
引用
收藏
页数:11
相关论文
共 59 条
[1]   Polyelectrolyte complex coacervation by electrostatic dipolar interactions [J].
Adhikari, Sabin ;
Leaf, Michael A. ;
Muthukumar, Murugappan .
JOURNAL OF CHEMICAL PHYSICS, 2018, 149 (16)
[2]   Parallel synthesis and biophysical characterization of a degradable polymer library for gene delivery [J].
Akinc, A ;
Lynn, DM ;
Anderson, DG ;
Langer, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (18) :5316-5323
[3]   Stress granules: The Tao of RNA triage [J].
Anderson, Paul ;
Kedersha, Nancy .
TRENDS IN BIOCHEMICAL SCIENCES, 2008, 33 (03) :141-150
[4]   RNA transcription modulates phase transition-driven nuclear body assembly [J].
Berry, Joel ;
Weber, Stephanie C. ;
Vaidya, Nilesh ;
Haataja, Mikko ;
Brangwynne, Clifford P. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (38) :E5237-E5245
[5]  
BORUE VY, 1988, MACROMOLECULES, V21, P3240
[6]   Germline P Granules Are Liquid Droplets That Localize by Controlled Dissolution/Condensation [J].
Brangwynne, Clifford P. ;
Eckmann, Christian R. ;
Courson, David S. ;
Rybarska, Agata ;
Hoege, Carsten ;
Gharakhani, Joebin ;
Juelicher, Frank ;
Hyman, Anthony A. .
SCIENCE, 2009, 324 (5935) :1729-1732
[7]   Sequence and entropy-based control of complex coacervates [J].
Chang, Li-Wei ;
Lytle, Tyler K. ;
Radhakrishna, Mithun ;
Madinya, Jason J. ;
Velez, Jon ;
Sing, Charles E. ;
Perry, Sarah L. .
NATURE COMMUNICATIONS, 2017, 8
[8]   Droplet organelles? [J].
Courchaine, Edward M. ;
Lu, Alice ;
Neugebauer, Karla M. .
EMBO JOURNAL, 2016, 35 (15) :1603-1612
[9]  
de Jong HGB, 1929, P K AKAD WET-AMSTERD, V32, P849
[10]   P-Bodies and Stress Granules: Possible Roles in the Control of Translation and mRNA Degradation [J].
Decker, Carolyn J. ;
Parker, Roy .
COLD SPRING HARBOR PERSPECTIVES IN BIOLOGY, 2012, 4 (09)