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Updated: Jul 12, 2026

Fabrication of Size-Controlled and Emulsion-Free Chitosan-Genipin Microgels for Tissue Engineering Applications
Published on: April 13, 2022
Chitosan as a versatile platform for oleogel design: A review
Gabriela Baptista Brito1, Natália Emmerick de Alcântara2, Jorge da Silva Pinho-Jr2
1Universidade Federal do Rio de Janeiro, Instituto de Química, Av. Athos da Silveira Ramos 149, CT, Bloco A, Cidade Universitária, Rio de Janeiro, 21941-909, Brazil; Universidade Federal Fluminense, Faculdade de Farmácia, Rua Dr. Mário Viana, 523, Niteroi, 24241-000, Brazil.
None:
Chitosan, as a versatile biological macromolecule, has emerged as a promising structuring agent (oleogelator) for the development of oleogels aimed at replacing solid fats rich in saturated and trans fatty acids. Its ability to form structured three-dimensional networks enables the design of chitosan-based oleogels with improved nutritional e bioactive properties while maintaining desirable technological functionality in foods. This narrative review focuses on chitosan-based oleogels, providing an integrated and mechanistic analysis of advances reported in studies published from February 2022 to January 2026. Emphasis is placed on structure-function relationships, highlighting how chitosan concentration, crosslinking strategies, and interactions with co-structuring agents govern network architecture, mechanical properties, and oil-binding capacity. The review also discusses how chitosan-driven structures influence lipid digestibility and the controlled delivery of bioactive compounds. Based on critical analysis of the literature, most chitosan-oleogels are produced via the emulsion-templated approach, with mechanical properties tunable by chitosan concentration and the use of crosslinkers and co-structuring agents. These oleogels present moderate to high oil binding capacities, hardness between 0.24 and 37.8 N, and an elastic modulus (G') within 104-106 Pa, being classified as strong gels. Improved stability is observed when networks are reinforced by Schiff-base linkages combined with electrostatic interactions. Chitosan-oleogels reduce free fatty acid release (16-56%) in vitro, however, they may also limit the bioaccessibility of bioactive compounds. Food applications and sensory studies remain limited. Future research should prioritize in vivo studies and industrial scale-up to consolidate their use in healthier food formulations.

