Tailoring drug release rates in hydrogel-based therapeutic delivery applications using graphene oxide
File(s)20170949.full.pdf (876.4 KB)
Published version
OA Location
Author(s)
Puvirajesinghe, TM
Zhi, ZL
Craster, RV
Guenneau, S
Type
Journal Article
Abstract
Graphene oxide (GO) is increasingly used for controlling mass diffusion in hydrogel-based drug delivery applications. On the macro-scale, the density of GO in the hydrogel is a critical parameter for modulating drug release. Here, we investigate the diffusion of a peptide drug through a network of GO membranes and GO-embedded hydrogels, modelled as porous matrices resembling both laminated and 'house of cards' structures. Our experiments use a therapeutic peptide and show a tunable nonlinear dependence of the peptide concentration upon time. We establish models using numerical simulations with a diffusion equation accounting for the photo-thermal degradation of fluorophores and an effective percolation model to simulate the experimental data. The modelling yields an interpretation of the control of drug diffusion through GO membranes, which is extended to the diffusion of the peptide in GO-embedded agarose hydrogels. Varying the density of micron-sized GO flakes allows for fine control of the drug diffusion. We further show that both GO density and size influence the drug release rate. The ability to tune the density of hydrogel-like GO membranes to control drug release rates has exciting implications to offer guidelines for tailoring drug release rates in hydrogel-based therapeutic delivery applications.
Date Issued
2018-02-14
Date Acceptance
2018-01-22
Citation
Journal of the Royal Society Interface, 2018, 15 (139)
ISSN
1742-5662
Publisher
Royal Society, The
Journal / Book Title
Journal of the Royal Society Interface
Volume
15
Issue
139
Copyright Statement
© 2018 The Authors. Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited (https://creativecommons.org/licenses/by/4.0/)
Sponsor
Engineering & Physical Science Research Council (EPSRC)
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/29445040
PII: rsif.2017.0949
Grant Number
EP/L024926/1
Subjects
biocompatibility
drug delivery media
effective model
graphene oxide
mass diffusion
Publication Status
Published
Coverage Spatial
England