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Updated: Aug 6, 2026

Fabrication of Size-Controlled and Emulsion-Free Chitosan-Genipin Microgels for Tissue Engineering Applications
Published on: April 13, 2022
Hierarchically structured alginate/iota-carrageenan hydrogel beads embedding chitosan microparticles for
Luiza G Schlüter1, Heloisa C Grahl1, Larissa N Carli1
1Centro Tecnológico, de Ciências Exatas e Educação (CTE), Universidade Federal de Santa Catarina, UFSC, Blumenau, SC, 89036-004, Brazil.
Abstract:
Curcumin is a bioactive compound with significant therapeutic potential, yet its clinical application is limited by poor aqueous solubility and low gastrointestinal bioavailability. In this study, a fully polysaccharide-based delivery system was rationally designed using alginate and ι-carrageenan as complementary polyanionic matrices, combined with chitosan microparticles (∼1.7 μm) as discrete cationic domains. Hierarchical beads were formed via ionotropic crosslinking with Ca2+ and structurally characterized by spectroscopic, morphological, and interfacial analyses, revealing a compositionally heterogeneous architecture with chitosan microparticles preferentially localized near the bead periphery. This organization directly influenced the system's physicochemical behavior, leading to limited curcumin release under simulated gastric conditions (<20%) and pronounced swelling in simulated intestinal fluid, reaching up to 4755% at 37 °C. In intestinal medium, the beads exhibited a sustained and complete release profile within ∼30 h, governed by combined diffusion and polymer relaxation mechanisms. Kinetic modeling confirmed a transition from predominantly Fickian diffusion in acidic conditions to anomalous transport in intestinal environments. These findings demonstrate that hierarchical organization and electrostatic interactions can be strategically engineered to modulate structure-property relationships in multicomponent polysaccharide systems. This work provides insights into the rational design of fully biopolymeric platforms for the controlled oral delivery of hydrophobic bioactive compounds.
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