A general multi-stratum model for a nanofunctionalized releasing capsule: a computational study
Elia Onofri, Emiliano Cristiani, Andrea Martelli, Piergiorgio Gentile, Joel Gir\'on Hern\'andez, Giuseppe Pontrelli

TL;DR
This paper develops a computational multi-stratum model for nanofunctionalized releasing capsules, enabling detailed analysis of drug release kinetics and aiding the design of advanced drug delivery systems.
Contribution
It extends existing models to include multi-layered capsule structures and provides a numerical framework for predicting release profiles with experimental validation.
Findings
Good agreement with in vitro data
Parameter sensitivity analysis reveals key factors affecting release
Analytical expressions enable rapid evaluation of design options
Abstract
Releasing capsules are widely employed in biomedical applications as smart carriers of therapeutic agents, including drugs and bioactive compounds. Such delivery vehicles typically consist of a loaded core, enclosed by one or multiple concentric coating strata. In this work, we extend over existing mechanistic models to account for such multi-strata structures, and we characterise the release kinetics of the active substance into the surrounding medium. We present a computational study of drug release from a multi-stratum spherical microcapsule, modelled through a non-linear diffusion equation incorporating radial anisotropy and space- and time-discontinuous coefficients. The problem is solved numerically using a finite volume scheme on a grid with adaptive spatial and temporal resolution. Analytical expressions for concentration and cumulative release are derived for all strata,…
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Taxonomy
Topics3D Printing in Biomedical Research · Polymer Surface Interaction Studies · Drug Solubulity and Delivery Systems
