NWU Institutional Repository

Dissipative particle dynamics investigation of the transport of salicylic acid through a simulated in vitro skin permeation model

Loading...
Thumbnail Image

Date

Authors

Otto, Daniel P.
Combrinck, Johann
Otto, Anja
Tiedt, Louwrens R.
De Villiers, Melgardt M.

Supervisors

Journal Title

Journal ISSN

Volume Title

Publisher

MDPI

Record Identifier

Abstract

Permeation models are often used to determine diffusion properties of a drug through a membrane as it is released from a delivery system. In order to circumvent problematic in vivo studies, diffusion studies can be performed in vitro, using (semi-)synthetic membranes. In this study salicylic acid permeation was studied, employing a nitrocellulose membrane. Both saturated and unsaturated salicylic acid solutions were studied. Additionally, the transport of salicylic acid through the nitrocellulose membrane was simulated by computational modelling. Experimental observations could be explained by the transport mechanism that was revealed by dissipative particle dynamics (DPD) simulations. The DPD model was developed with the aid of atomistic scale molecular dynamics (AA-MD). The choice of a suitable model membrane can therefore, be predicted by AA-MD and DPD simulations. Additionally, the difference in the magnitude of release from saturated and unsaturated salicylic acid and solutions could also be observed with DPD. Moreover, computational studies can reveal hidden variables such as membrane-permeant interaction that cannot be measured experimentally. A recommendation is made for the development of future model permeation membranes is to incorporate computational modelling to aid the choice of model

Sustainable Development Goals

Description

Citation

Otto, D.P. et al. 2018. Dissipative particle dynamics investigation of the transport of salicylic acid through a simulated in vitro skin permeation model. Pharmaceuticals, 11(4): Article no 134. [https://doi.org/10.3390/ph11040134]

Endorsement

Review

Supplemented By

Referenced By