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Particle Diffusivity and Free-Energy Profiles in Hydrogels from Time-Resolved Penetration Data

Authors :
Wolde-Kidan, Amanuel
Herrmann, Anna
Prause, Albert
Gradzielski, Michael
Haag, Rainer
Block, Stephan
Netz, Roland R.
Source :
Biophysical Journal; February 2021, Vol. 120 Issue: 3 p463-475, 13p
Publication Year :
2021

Abstract

A combined experimental and theoretical method to simultaneously determine diffusivity and free-energy profiles of particles that penetrate into inhomogeneous hydrogel systems is presented. As the only input, arbitrarily normalized concentration profiles from fluorescence intensity data of labeled tracer particles for different penetration times are needed. The method is applied to dextran molecules of varying size that penetrate into hydrogels of polyethylene-glycol chains with different lengths that are covalently cross-linked by hyperbranched polyglycerol hubs. Extracted dextran bulk diffusivities agree well with fluorescence correlation spectroscopy data obtained separately. Empirical scaling laws for dextran diffusivities and free energies inside the hydrogel are identified as a function of the dextran mass. An elastic free-volume model that includes dextran as well as polyethylene-glycol linker flexibility quantitively describes the repulsive dextran-hydrogel interaction free energy, which is of steric origin, and furthermore suggests that the hydrogel mesh-size distribution is rather broad and particle penetration is dominated by large hydrogel pores. Particle penetration into hydrogels for steric particle-hydrogel interactions is thus suggested to be governed by an elastic size-filtering mechanism that involves the tail of the hydrogel pore-size distribution.

Details

Language :
English
ISSN :
00063495 and 15420086
Volume :
120
Issue :
3
Database :
Supplemental Index
Journal :
Biophysical Journal
Publication Type :
Periodical
Accession number :
ejs55030792
Full Text :
https://doi.org/10.1016/j.bpj.2020.12.020