Enhancing basil essential oil microencapsulation using pectin/casein biopolymers: Optimization through D-optimal design, controlled release modeling, and characterization

Int J Biol Macromol. 2024 Apr;265(Pt 1):130948. doi: 10.1016/j.ijbiomac.2024.130948. Epub 2024 Mar 17.

Abstract

A D-optimal design was employed to optimize the microencapsulation (MEC) of basil essential oil (BEO) within a biopolymer matrix using the complex coacervation technique. BEO microcapsules (BEO-MCs) obtained under the optimal conditions exhibited high yield and efficiency with 80.45 ± 0.01 % and 93.10 ± 0.18 %, respectively. The successful MEC of BEO with an average particle size of 4.81 ± 2.86 μm was confirmed by ATR-FTIR, X-RD, and SEM analyses. Furthermore, the thermal stability of BEO-MCs was assessed using TGA-DSC analysis, which provided valuable insights into the MC's thermal stability. Furthermore, the proposed model, with a high R2 value (0.99) and low RMSE (1.56 %), was the most suitable one among the tested models for the controlled release kinetics of the optimal BEO-MCs under simulated gastrointestinal conditions. The successful optimization of BEO MEC using biopolymers through the D-optimal design could be a promising avenue for food and pharmaceutical industries, providing new strategies for the development of effective products.

Keywords: Complex coacervation; D-optimal design; Mathematic models; Ocimum basilicum. L; Pectin.

MeSH terms

  • Caseins
  • Delayed-Action Preparations
  • Ocimum basilicum*
  • Oils, Volatile*
  • Pectins

Substances

  • Pectins
  • Caseins
  • Delayed-Action Preparations
  • Oils, Volatile