Intestinal-specific oral delivery of lactoferrin with alginate-based composite and hybrid CaCO3-hydrogel beads

Food Chem. 2024 Sep 1:451:139205. doi: 10.1016/j.foodchem.2024.139205. Epub 2024 Apr 16.

Abstract

Sodium alginate hydrogel beads and sodium alginate/gellan gum composite hydrogel beads crosslinked by calcium chloride were prepared with different alginate concentrations (3-20 mg·mL-1). Additionally, a simple method for growing CaCO3in situ on the hydrogel to create novel inorganic-organic hybrid hydrogel beads was presented. FT-IR analysis revealed the involvement of hydrogen bonding and electrostatic interactions in bead formation. Swelling behavior in acidic conditions showed a maximum of 13 g/g for composite hydrogels and CaCO3-incorporated hybrid hydrogels. Lactoferrin encapsulation efficiency within these hydrogels ranged from 44.9 to 56.6%. In vitro release experiments demonstrated that these hydrogel beads withstand harsh gastric environments with <16% cumulative release of lactoferrin, achieving controlled release in intestinal surroundings. While composite sodium alginate/gellan gum beads exhibited slower gastrointestinal lactoferrin digestion, facile synthesis and pH responsiveness of CaCO3-incorporated hybrid hydrogel also provide new possibilities for future studies to construct a novel inorganic-organic synergetic system for intestinal-specific oral delivery.

Keywords: Calcium carbonate; Gellan gum; Hybrid hydrogel bead; Lactoferrin encapsulation; Sodium alginate.

MeSH terms

  • Administration, Oral
  • Alginates* / chemistry
  • Calcium Carbonate* / chemistry
  • Drug Carriers / chemistry
  • Drug Delivery Systems
  • Humans
  • Hydrogels* / chemistry
  • Hydrogen-Ion Concentration
  • Lactoferrin* / administration & dosage
  • Lactoferrin* / chemistry

Substances

  • Alginates
  • Calcium Carbonate
  • Hydrogels
  • Lactoferrin
  • Drug Carriers