Literature DB >> 23083137

Thermodynamic characterization of polypeptide complex coacervation.

Dimitrios Priftis1, Nicolas Laugel, Matthew Tirrell.   

Abstract

The interactions between a series of oppositely charged polypeptide pairs are probed using isothermal titration calorimetry (ITC) in combination with turbidity measurements and optical microscopy. Polypeptide complex coacervation is described as a sequence of two distinct binding steps using an empirical extension of a simple ITC binding model. The first step consists of the formation of soluble complexes from oppositely charged polypeptides (ion pairing), which in turn aggregate into insoluble interpolymer complexes in the second step (complex coacervation). Polypeptides have identical backbones and differ only in their charged side groups, making them attractive model systems for this work. The poly(l-ornithine hydrobromide) (PO)/poly(l-glutamic acid sodium salt) (PGlu) system is used to examine the effects of parameters such as the salt concentration, pH, temperature, degree of polymerization, and total polymer concentration on the thermodynamic characteristics of complexation. Complex coacervation in all probed systems is found to be endothermic, essentially an entropy-driven processes. Increasing the screening effect of the salt on the polyelectrolyte charges diminishes their propensity to interact, leading to a decrease in the observed energy change and coacervate quantity. The pH plays an important role in complex formation through its effect on the degree of ionization of the functional groups. Plotting the change in enthalpy with temperature allows the calculation of the heat capacity change (ΔC(p)) for the PO/PGlu interactions. Finally, ITC revealed that complex coacervation is promoted when higher total polymer concentrations or polypeptide chain lengths are used.

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Year:  2012        PMID: 23083137     DOI: 10.1021/la302729r

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  32 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2016-02-01       Impact factor: 11.205

Review 3.  Bulk and nanoscale polypeptide based polyelectrolyte complexes.

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Journal:  Adv Colloid Interface Sci       Date:  2016-07-02       Impact factor: 12.984

4.  A biocompatible betaine-functionalized polycation for coacervation.

Authors:  Mintai P Hwang; Xiaochu Ding; Jin Gao; Abhinav P Acharya; Steven R Little; Yadong Wang
Journal:  Soft Matter       Date:  2018-01-17       Impact factor: 3.679

Review 5.  50th Anniversary Perspective: A Perspective on Polyelectrolyte Solutions.

Authors:  M Muthukumar
Journal:  Macromolecules       Date:  2017-12-14       Impact factor: 5.985

6.  Bacteria-Resistant, Transparent, Free-Standing Films Prepared from Complex Coacervates.

Authors:  Irene S Kurtz; Shuo Sui; Xi Hao; Mengfei Huang; Sarah L Perry; Jessica D Schiffman
Journal:  ACS Appl Bio Mater       Date:  2019-08-13

7.  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

8.  Exploring calcium oxalate crystallization: a constant composition approach.

Authors:  Ann M Kolbach-Mandel; Jack G Kleinman; Jeffrey A Wesson
Journal:  Urolithiasis       Date:  2015-05-28       Impact factor: 3.436

9.  Temperature-dependent reentrant phase transition of RNA-polycation mixtures.

Authors:  Paul Pullara; Ibraheem Alshareedah; Priya R Banerjee
Journal:  Soft Matter       Date:  2022-02-16       Impact factor: 3.679

10.  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

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