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April 13, 2026Food Hydrocolloids for Health0 citationsOpen Access

Molecular insights into the gastrointestinal fate of multicomponent liposomes within a WPI–chitosan nanocarrier

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AAAnna S. AntipovaEME. I. MartirosovaDZDarya V. Zelikina

Key Points

  • The aim is to explore how a WPI-chitosan nanocarrier affects the stability and bioaccessibility of liposomes containing nutraceuticals.
  • Developed a WPI-chitosan electrostatic nanocomplex for liposome encapsulation.
  • Calculated loading and encapsulation efficiencies using spectrophotometry.
  • Analyzed liposome properties using transmission electron microscopy and laser light scattering.
  • Monitored structural changes under simulated gastrointestinal conditions.
  • Loading efficiency was 98 ± 3% for nutraceuticals in liposomes.
  • Encapsulation efficiency within the nanocarrier was 83 ± 6%.
  • Achieved a gastric retention bioaccessibility of 16% and intestinal liberation of 84% for liposomes.
  • Demonstrated mucoadhesion shift and bile-salt-mediated liposome disruption throughout the gastrointestinal transit.

Abstract

• Nutraceuticals and biopolymers critically modulate liposome bilayer properties. • pH and enzymes drive distinct structural changes during gastrointestinal transit. • Controlled, location-specific release of liposomes occurs in the GIT. • Mucoadhesion shifts from strong (stomach) to weak (intestine), aiding uptake. • Bile salts transform liposomes into nano-bilosomes, enhancing bioavailability. Liposomes have emerged as attractive delivery systems due to their ability to co-encapsulate synergistic nutraceutical combinations. This study investigates a whey protein isolate (WPI)–chitosan electrostatic nanocomplex designed to enhance the stability and control the gastrointestinal bioaccessibility of phosphatidylcholine (PC) liposomes. These liposomes are co-loaded with a combination of nutraceuticals: long-chain omega-3 polyunsaturated fatty acids from fish oil, β-carotene, and eugenol (a key component of clove essential oil). The loading efficiency of the nutraceutical combination into PC liposomes and the encapsulation efficiency of the liposomes within the WPI-chitosan matrix were calculated spectrophotometrically, yielding values of 98 ± 3% and 83 ± 6%, respectively. Transmission electron microscopy showed the nanoscale size and spherical shape of both the co-loaded liposomes and their biopolymer-encapsulated forms. Multi-mode laser light scattering revealed key physicochemical parameters (weight-average molar mass ( M w ), radius of gyration ( R G ), hydrodynamic radius ( R h ), ζ-potential, architecture (ρ), density, second virial coefficient) of both the binary (WPI-liposome) and ternary (WPI-liposome-chitosan) complexes including ζ-potential and R h of the liposomes. Electron paramagnetic resonance spectroscopy revealed key intermolecular interactions governing the structural state of the lipid bilayer in both free and biopolymer-encapsulated liposomes. The structural evolution of the ternary complex and released liposomes was subsequently monitored under simulated gastrointestinal conditions. The high particle density of the ternary complex (6.3 mg/cm³) ensured protection of the liposomes and facilitated a two-stage release: gastric retention (16% bioaccessibility) followed by intestinal liberation (84% bioaccessibility), governed by mucoadhesion and bile-salt-mediated disruption. This design ensures targeted delivery to the intestinal site of absorption.

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Cite This Study

Antipova et al. (2026) studied this question.

synapsesocial.com/papers/69dc887f3afacbeac03ea5e4https://doi.org/10.1016/j.fhfh.2026.100277
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