Encapsulation of lycopene into electrospun nanofibers from whey protein isolate-Tricholoma lobayense polysaccharide complex stabilized emulsions: Structural characterization, storage stability, in vitro release, and cellular evaluation

Int J Biol Macromol. 2023 May 31:238:123993. doi: 10.1016/j.ijbiomac.2023.123993. Epub 2023 Mar 10.

Abstract

In this study, lycopene-loaded nanofibers were successfully fabricated by electrospinning of oil-in-water (O/W) emulsions stabilized by whey protein isolate-polysaccharide TLH-3 (WPI-TLH-3) complexes. The lycopene encapsulated in the emulsion-based nanofibers exhibited enhanced photostability and thermostability, and achieved improved targeted small intestine-specific release. The release of lycopene from the nanofibers followed Fickian diffusion mechanism in simulated gastric fluid (SGF) and first-order model in simulated intestinal fluid (SIF) with the enhanced release rates. The bioaccessibility and cellular uptake efficiency of lycopene in micelles by Caco-2 cells after in vitro digestion were significantly improved. The intestinal membrane permeability and transmembrane transport efficiency of lycopene in micelles across Caco-2 cells monolayer were greatly elevated, thus promoting the effective absorption and intracellular antioxidant activity of lycopene. This work opens a potential approach for electrospinning of emulsions stabilized by protein-polysaccharide complexes as a novel delivery system for liposoluble nutrients with enhanced bioavailability in functional food industries.

Keywords: Emulsion electrospinning; Lycopene; Transmembrane transport.

MeSH terms

  • Caco-2 Cells
  • Emulsions / chemistry
  • Humans
  • Lycopene
  • Micelles
  • Nanofibers*
  • Polysaccharides
  • Tricholoma*
  • Whey Proteins / chemistry

Substances

  • Lycopene
  • Emulsions
  • Whey Proteins
  • Micelles
  • Polysaccharides