open access publication

Article, 2024

High-yield fabrication of monodisperse multilayer nanofibrous microparticles for advanced oral drug delivery applications

Heliyon, ISSN 1879-4378, 2405-7843, 2405-8440, Volume 10, 10, Page e30844, 10.1016/j.heliyon.2024.e30844

Contributors

Ajalloueian, Fatemeh 0000-0001-5061-827X (Corresponding author) [1] Thamdrup, Lasse Højlund Eklund 0000-0002-9498-1529 [1] Mazzoni, Chiara 0000-0002-0988-3108 [1] Petersen, Ritika Singh 0000-0002-0176-9343 [1] Keller, Stephan Sylvest 0000-0003-4108-1305 [1] Boisen, Anja 0000-0002-9918-6567 [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Recent advances in the use of nano- and microparticles in drug delivery, cell therapy, and tissue engineering have led to increasing attention towards nanostructured microparticulate formulations for maximum benefit from both nano- and micron sized features. Scalable manufacturing of monodisperse nanostructured microparticles with tunable size, shape, content, and release rate remains a big challenge. Current technology, mainly comprises complex multi-step chemical procedures with limited control over these aspects. Here, we demonstrate a novel technique for high-yield fabrication of monodisperse monolayer and multilayer nanofibrous microparticles (MoNami and MuNaMi respectively). The fabrication procedure includes sequential electrospinning followed by micro-cutting at room temperature and transfer of particles for collection. The big advantage of the introduced technique is the potential to apply several polymer-drug combinations forming multilayer microparticles enjoying extracellular matrix (ECM)-mimicking architecture with tunable release profile. We demonstrate the fabrication and study the factors affecting the final three-dimensional structure. A model drug is encapsulated into a three-layer sheet (PLGA-pullulan-PLGA), and we demonstrate how the release profile changes from burst to sustain by simply cutting particles out of the electrospun sheet. We believe our fabrication method offers a unique and facile platform for realizing advanced microparticles for oral drug delivery applications.

Keywords

applications, architecture, aspects, attention, benefits, burst, cell therapy, cells, changes, chemical procedures, collection, combination, content, control, current technologies, cuttings particles, delivery, delivery applications, drug, drug delivery, drug delivery applications, electrospinning, electrospun, electrospun sheet, engineering, fabrication, fabrication method, fabrication procedure, facile platform, factors, features, formulation, high-yield fabrication, increasing attention, method, micro-cutting, micron sized features, microns, microparticles, microparticulate formulations, monodisperse monolayer, monolayer, multilayer, multilayered microparticles, nano, nanostructured microparticles, oral drug delivery applications, particles, platform, polymer-drug combinations, potential, procedure, profile, profile changes, rate, release, release rate, room, room temperature, scalable manufacturing, sequential electrospinning, shape, sheet, size, size features, structure, technique, technology, temperature, therapy, three-dimensional structure, three-layer sheets, tissue, tissue engineering, transfer, transfer of particles, tunable size

Funders

  • Danish National Research Foundation
  • Novo Nordisk Foundation
  • The Velux Foundations

Data Provider: Digital Science