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L. N. Carli

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Jul 2026

Hierarchically structured alginate/iota-carrageenan hydrogel beads embedding chitosan microparticles for pH-responsive intestinal delivery of curcumin.

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.

L. G. Schlüter, H. C. Grahl, L. N. Carli et al. · 0 citations