Interaction of Proteins with Polyelectrolytes: Comparison of Theory to Experiment.

Xiao Xu, Stefano Angioletti-Uberti, Yan Lu, Joachim Dzubiella, Matthias Ballauff

Journal: Langmuir : the ACS journal of surfaces and colloids 2020;35(16):5373-5391

PMID: 30095921

Abstract

We discuss recent investigations of the interaction of polyelectrolytes with proteins. In particular, we review our recent studies on the interaction of simple proteins such as human serum albumin (HSA) and lysozyme with linear polyelectrolytes, charged dendrimers, charged networks, and polyelectrolyte brushes. In all cases discussed here, we combined experimental work with molecular dynamics (MD) simulations and mean-field theories. In particular, isothermal titration calorimetry (ITC) has been employed to obtain the respective binding constants K and the Gibbs free energy of binding. MD simulations with explicit counterions but implicit water demonstrate that counterion release is the main driving force for the binding of proteins to strongly charged polyelectrolytes: patches of positive charges located on the surface of the protein become multivalent counterions of the polyelectrolyte, thereby releasing a number of counterions condensed on the polyelectrolyte. The binding Gibbs free energy due to counterion release is predicted to scale with the logarithm of the salt concentration in the system, which is verified by both simulations and experiment. In several cases, namely, for the interaction of proteins with linear polyelectrolytes and highly charged hydrophilic dendrimers, the binding constant could be calculated from simulations to very good approximation. This finding demonstrated that in these cases explicit hydration effects do not contribute to the Gibbs free energy of binding. The Gibbs free energy can also be used to predict the kinetics of protein uptake by microgels for a given system by applying dynamic density functional theory. The entire discussion demonstrates that the direct comparison of theory with experiments can lead to a full understanding of the interaction of proteins with charged polymers. Possible implications for applications, such as drug design, are discussed.

Address: School of Chemical Engineering , Nanjing University of Science and Technology , 200 Xiao Ling Wei , Nanjing 210094 , P. R. China.; Department of Materials , Imperial College London , London SW7 2AZ - UK , U.K.; International Research Centre for Soft Matter , Beijing University of Chemical Technology , 100099 Beijing , PR China.; Soft Matter and Functional Materials , Helmholtz-Zentrum Berlin für Materialien und Energie GmbH , 14109 Berlin , Germany.; Institute of Chemistry , University of Potsdam , 14467 Potsdam , Germany.; Physikalisches Institut , Albert-Ludwigs-Universität , 79104 Freiburg , Germany.; Institut für Physik , Humboldt-Universität zu Berlin , 12489 Berlin , Germany.

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