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February 5, 2026Food and Bioprocess Technology3 citationsOpen Access

Pinhão Starch-Based Cryogels with Oregano Essential Oil for Antifungal Active Food Packaging

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RCRosane Lopez CrizelECElder Pacheco da CruzCJCristina Jansen-Alves

Key Points

  • This research aims to create and assess pinhão starch-based cryogels that contain oregano essential oil for use in antifungal food packaging.
  • Synthesis of cryogels using pinhão starch at 9% (w/v) and oregano essential oil at 15% and 25% (v/w).
  • Utilization of gelatinization, freeze/thaw cycles, and freeze-drying techniques for cryogel production.
  • Evaluation of the cryogels for their morphological, structural, thermal, and chemical properties, and antifungal activity against specific fungi.
  • Oregano essential oil was found to contain major components like carvacrol (69.22%) and showed enhanced thermal stability when incorporated into cryogels.
  • Cryogels with OEO increased in density and showed reduced porosity, while maintaining significant water absorption capacity.
  • High antifungal activity was demonstrated against Penicillium crustosum and Aspergillus flavus.

Abstract

Abstract The practical applications of essential oils are limited by their hydrophobicity, volatility, and instability; however, cryogels have emerged as promising carriers that can overcome these challenges by enabling the controlled release of bioactive compounds. This study aimed to synthesize and characterize cryogels based on pinhão starch and loaded with oregano essential oil (OEO). Cryogels were produced with pinhão starch (9%, w/v) and incorporated with OEO at concentrations of 15 and 25% (v/w, in relation to starch). The process involved gelatinization, freeze/thaw cycles, and freeze-drying. The OEO was evaluated for its chemical composition, thermogravimetric analysis, functional groups, and in vitro antifungal activity. The cryogels’ morphological, structural, thermal, and chemical properties were evaluated, along with their antifungal activity. The major constituents of OEO were carvacrol (69.22%), o-cymene (14.31%), caryophyllene (5.09%), and γ-terpinene (5.06%). All cryogels exhibited the typical morphology of these materials, with a well-defined internal macroporous structure. The incorporation of OEO increased cryogel density from 0.086 g/cm 3 (control) to > 0.092 g/cm 3 , while slightly reducing porosity from 88.3% to < 87.4%. The control cryogels exhibited a water absorption capacity of approximately 1300%, while OEO-loaded cryogels showed reduced values (~ 1190-1206%), with no significant difference between the two OEO concentrations. The thermal stability of OEO was enhanced by its incorporation into the cryogel structure. While free OEO began to degrade at a lower temperature of 186.1 °C, the OEO within the cryogels showed greater thermal resistance, with degradation observed only at temperatures up to ~ 320 °C. Cryogels containing 15% and 25% OEO exhibited high antifungal activity against Penicillium crustosum and Aspergillus flavus . Pinhão starch-based cryogels demonstrated strong potential as sustainable carriers for OEO for future application in active food packaging, due to their favorable physicochemical properties, enhanced thermal stability, and antifungal activity.

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Cite This Study

Crizel et al. (2026) studied this question.

synapsesocial.com/papers/69843360f1d9ada3c1fb0846https://doi.org/10.1007/s11947-026-04219-y
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