Evaluation of the quince seed mucilage as an encapsulant for bioprotection of cultures during freeze-drying and digestion

Ensuring the viability of probiotic microorganisms during food processing, storage, and gastrointestinal transit remains a major challenge in food production. Encapsulation and coating methods have been developed to protect probiotics from these adverse conditions and enhance targeted delivery. Quince Seed Mucilage (QSM) is a plant-derived, polysaccharide-rich mucilage with high swelling capacity, biocompatibility, and responsiveness to pH and salt concentration, making it a promising protective matrix. This study investigated QSM as a potential smart coating material with pH_responsive properties for two lactic acid bacteria (LAB) strains: Lactobacillus plantarum MT4680 and Pediococcus pentosus M4336 using freeze-drying as a widely applied food-processing technique. Cell survivability and powder characteristics were evaluated for formulations containing QSM, either alone or combined with 15% skim milk. The most effective formulations were further assessed under simulated gastrointestinal conditions using the INFOGEST digestion model. QSM demonstrated notable cryoprotective activity during freeze-drying with the highest viability observed for 1% QSM combined with 15% skim milk (94 ± 17% immediately after freeze-drying and 91 ± 14% after one month of storage at 4°C). In comparison, survival rates for 1% QSM or 15% skim milk alone were significantly lower as evidenced by decreased viability during storage. Under simulated gastrointestinal conditions, QSM-containing formulations provided superior protection, with minimal log reductions of - 0.52 ± 0.24 in 1% QSM and -0.62 ± 0.14 in 1% QSM + 15% skim milk, representing over 100-fold higher fold cell protection than the uncoated cells. Rheological analysis demonstrated weak-gel behaviour and marked pH-dependent changes in the viscoelastic properties of QSM, supporting its potential as a smart coating material. These results demonstrate QSM’s effectiveness in preserving probiotic viability and reproductive capacity, highlighting its potential as a natural, biocompatible coating material for functional food application.

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Journal
Applied Food Research
Published
2026-09-01
DOI
https://doi.org/10.1016/j.afres.2026.102569
Primary Topic
Microencapsulation and Drying Processes
Type
article
Field-Weighted Citation Impact
0.00

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article

Evaluation of the quince seed mucilage as an encapsulant for bioprotection of cultures during freeze-drying and digestion

R. Paul Ross, Sean A. Hogan, Catherine Stanton, Yasaman Miyanmahaleh et al.
Applied Food Research
Microencapsulation and Drying Processes
article

Evaluation of the quince seed mucilage as an encapsulant for bioprotection of cultures during freeze-drying and digestion

R. Paul Ross, Sean A. Hogan, Catherine Stanton, Yasaman Miyanmahaleh, Fakhri sadaat Hosseini
article en

Abstract

Ensuring the viability of probiotic microorganisms during food processing, storage, and gastrointestinal transit remains a major challenge in food production. Encapsulation and coating methods have been developed to protect probiotics from these adverse conditions and enhance targeted delivery. Quince Seed Mucilage (QSM) is a plant-derived, polysaccharide-rich mucilage with high swelling capacity, biocompatibility, and responsiveness to pH and salt concentration, making it a promising protective matrix. This study investigated QSM as a potential smart coating material with pH_responsive properties for two lactic acid bacteria (LAB) strains: Lactobacillus plantarum MT4680 and Pediococcus pentosus M4336 using freeze-drying as a widely applied food-processing technique. Cell survivability and powder characteristics were evaluated for formulations containing QSM, either alone or combined with 15% skim milk. The most effective formulations were further assessed under simulated gastrointestinal conditions using the INFOGEST digestion model. QSM demonstrated notable cryoprotective activity during freeze-drying with the highest viability observed for 1% QSM combined with 15% skim milk (94 ± 17% immediately after freeze-drying and 91 ± 14% after one month of storage at 4°C). In comparison, survival rates for 1% QSM or 15% skim milk alone were significantly lower as evidenced by decreased viability during storage. Under simulated gastrointestinal conditions, QSM-containing formulations provided superior protection, with minimal log reductions of - 0.52 ± 0.24 in 1% QSM and -0.62 ± 0.14 in 1% QSM + 15% skim milk, representing over 100-fold higher fold cell protection than the uncoated cells. Rheological analysis demonstrated weak-gel behaviour and marked pH-dependent changes in the viscoelastic properties of QSM, supporting its potential as a smart coating material. These results demonstrate QSM’s effectiveness in preserving probiotic viability and reproductive capacity, highlighting its potential as a natural, biocompatible coating material for functional food application.

Applied Food Research
Teagasc - The Irish Agriculture and Food Development Authority (IE), University College Cork (IE), School of International Relations (IR), APC Microbiome Institute (IE), Alzahra University (IR)
Teagasc, University College Cork, Alzahra University
Zero hunger
Openalex Percentile: Top 14%
Microencapsulation and Drying Processes
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