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May 17, 2026Polymers0 citationsOpen Access

Surface Engineering of Electrospun PLA Fibers via Chitosan/Hyaluronic Acid Polyelectrolyte Complexes for Tunable Release of Rosmarinic Acid

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SKSelin KyuchyukDPDilyana PanevaMIMilena Ignatova

Key Points

  • To develop a method for tuning the release of rosmarinic acid from electrospun PLA fibers using surface engineering techniques.
  • Electrospun poly(L-lactide) fibers were coated with chitosan/hyaluronic acid polyelectrolyte complexes.
  • Release profiles were adjusted by modifying the spatial distribution of rosmarinic acid within the fibers and coating layers.
  • Characterization included assessments of coating success, surface hydrophilicity, and mechanical performance.
  • The PEC coatings effectively tuned the release kinetics of rosmarinic acid, showing either retarded or rapid initial release.
  • All RA-loaded materials maintained high antioxidant activity and demonstrated antibacterial and antifungal effects against relevant pathogens.
  • The surface engineering enhanced the mechanical performance and hydrophilicity of the PLA fibers.

Abstract

In this study, a hierarchical design strategy is introduced for tuning the release of rosmarinic acid (RA) from electrospun poly(L-lactide) (PLA) fibrous materials via surface engineering with chitosan/hyaluronic acid (Ch/HA) polyelectrolyte complexes (PECs). RA was selectively incorporated within the fiber bulk, the PEC coating, or both, enabling control over its spatial distribution. The PEC coating, formed by sequential dip coating, was shown to act as a diffusion-regulating layer with a dual role—either retarding RA release or promoting rapid initial release when functioning as a surface-associated reservoir. As a result, the release kinetics could be systematically tuned depending on the coating architecture and RA localization. Thorough characterization confirmed successful coating formation, enhanced surface hydrophilicity, and improved mechanical performance. All RA-loaded materials retained high antioxidant activity and exhibited pronounced antibacterial and antifungal effects against Staphylococcus aureus, Escherichia coli, and Candida albicans. This work introduces PEC-modified electrospun systems as a versatile platform for the rational design of multifunctional fibrous biomaterials with controlled release profiles, with potential applications in wound healing and drug delivery.

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Cite This Study

Kyuchyuk et al. (2026) studied this question.

synapsesocial.com/papers/6a095b8e7880e6d24efe14echttps://doi.org/10.3390/polym18101207
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