Analysis of the Binding of Cytokines to Highly Charged Polymer Networks

Author:

Freudenberg Uwe1,Atallah Passant1,Sommer Jens‐Uwe123,Werner Carsten13,Ballauff Matthias4ORCID

Affiliation:

1. Institut Biofunktionelle Polymermaterialien Leibniz‐Institut für Polymerforschung Dresden e.V. Hohe Strasse 6 D‐01069 Dresden Germany

2. Institut für Theoretische Physik TU Dresden Zellescher Weg 17 D‐01069 Dresden Germany

3. Cluster of Excellence Physics of Life TU Dresden D‐01307 Dresden Germany

4. Institute of Chemistry and Biochemistry Freie Universität Berlin Takustr. 3 D‐14195 Berlin Germany

Abstract

AbstractA model describing the binding of biological signaling proteins to highly charged polymer networks is presented. The networks are formed by polyelectrolyte chains for which the distance between two charges at the chain is smaller than the Bjerrum length. Counterion condensation on such highly charged chains immobilizes a part of the counterions. The Donnan‐equilibrium between the polymer network and the aqueous solution with salt concentration is used to calculate the salt concentration of the co‐ and counterions entering the network. Two factors are decisive: i) The electrostatic interaction between the network and the protein is given by the Donnan‐potential of the network and the net charge of the protein. In addition to this leading term, a second term describes the change in the Born‐energy of the proteins when entering the network. ii) The interaction of the protein with the highly charged chains within the network is governed by counterion release: Patches of positive charge at the protein become multivalent counterions of the polyelectrolyte chains thus releasing a concomitant number of condensed counterions. The model compares favorably to experimental data obtained on a set of biohybrid polymer networks composed of crosslinked glycosaminoglycan chains that interact with a mixture of key signaling proteins.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology

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