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March 21, 2026Molecules4 citationsOpen Access

Encapsulation of Plant Extracts in a Psyllium/Starch Matrix: Synthesis and Functional Properties

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MKMagdalena KrystyjanGKGohar KhachatryanKKK. Khachatryan

Key Points

  • This research aims to encapsulate plant extracts within a starch/psyllium matrix and evaluate their properties for food use.
  • Encapsulated plant extracts from Sambucus nigra, Aronia melanocarpa, and Echinacea purpurea using a starch/psyllium matrix.
  • Characterized physicochemical and rheological properties using SEM and FTIR analyses.
  • Evaluated antioxidant capacity and antimicrobial activity of the encapsulated extracts.
  • Achieved a porous network with spherical structures (~800–1500 nm) in the biocomposite.
  • Exhibited shear-thinning behavior indicating favorable processing characteristics.
  • Showed that the incorporation of extracts delayed thermal degradation and altered phase-transition behavior.
  • Higher antioxidant capacity correlated closely with total phenolic content, especially in Echinacea purpurea-extracts.
  • Demonstrated varying levels of antimicrobial activity based on extract type, with broad-spectrum effects noted for Echinacea purpurea.

Abstract

This work presents a method to encapsulate plant extracts within a binary polysaccharide carrier and to characterize the physicochemical and rheological performance of the resulting biocomposites in the context of food use. Using a starch/psyllium matrix, extracts from Sambucus nigra (SN), Aronia melanocarpa (AM), and Echinacea purpurea (EP) were effectively protected and incorporated through a stepwise workflow encompassing matrix preparation, encapsulation, structural verification, and functional assessment. SEM revealed a porous network containing uniformly distributed, extract-loaded spherical structures (~800–1500 nm), while FTIR supported the presence of hydrogen bonding and hydrophobic interactions that contributed to system stability. The prepared nanoemulsions showed shear-thinning (pseudoplastic) behavior, indicating favorable processing characteristics, whereas most physicochemical and bioactivity measurements were performed on lyophilized composites. The dried materials preserved extract-specific color signatures (ΔE > 5) and exhibited distinct thermal responses: AM produced a pronounced plasticizing effect (Tg reduced by >20 °C), while the incorporation of extracts generally delayed thermal degradation, consistent with polyphenol–starch interactions. Phase-transition behavior was also altered, with melting peaks suppressed for SN and AM and melting temperatures lowered for EP. Surface analysis indicated increased hydrophobicity and a reduced polar component of surface free energy, suggesting improved moisture barrier potential. Antioxidant capacity closely tracked total phenolic content (r > 0.94), with caffeic acid contributing strongly, particularly in EP-based systems. Antimicrobial activity depended on extract type (broad-spectrum for EP, selective for SN, minimal for AM), and the comparatively higher sensitivity of Gram-negative bacteria points to improved phenolic availability and membrane interactions upon encapsulation. Collectively, these results highlight the starch/psyllium matrix as a flexible platform for stabilizing plant extracts while enabling tunable functional attributes for functional food applications.

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Cite This Study

Krystyjan et al. (2026) studied this question.

synapsesocial.com/papers/69be35ba6e48c4981c6743bbhttps://doi.org/10.3390/molecules31061026
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