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April 18, 2026Polymers0 citationsOpen Access

Electrospinning of Natural Polymeric Fibers with Essential Oils for the Control of Multidrug-Resistant Pathogens

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DSDeysi Alejandrina Cabrera SeguraBenemérita Universidad Autónoma de PueblaVVVerónica Santacruz VázquezBenemérita Universidad Autónoma de PueblaSMSandra MendozaAutonomous University of Queretaro

Key Points

  • The aim is to explore the use of electrospun natural polymer fibers embedded with essential oils for antimicrobial applications against resistant pathogens.
  • Review of existing literature on electrospinning techniques and applications of natural polymers.
  • Assessment of the properties and efficacy of essential oils in antimicrobial treatments.
  • Analysis of encapsulation techniques and controlled release mechanisms of bioactive compounds.
  • Electrospun fibers enhance the stability and effectiveness of essential oils against pathogens.
  • Biocompatibility and biodegradability of natural polymers improve cellular interaction in biomedical applications.
  • High surface area and porous structure aid in efficient encapsulation and controlled release of essential oils.

Abstract

Antimicrobial resistance (AMR) represents one of the major threats to global health, driven by the indiscriminate use of antibiotics and decline in the development of new therapeutic agents. In this context, essential oils (EOs) have emerged as innovative natural alternatives due to their broad-spectrum antimicrobial activity and low potential to induce bacterial resistance. However, their clinical application is limited by their volatility, low chemical stability, and rapid degradation. The incorporation of EOs into electrospun natural polymer fibers has emerged as an effective strategy to overcome these limitations, improving their stability, enabling controlled release, and enhancing their antimicrobial efficiency. This review focuses on the use of electrospun natural polymers for biomedical applications, highlighting their biocompatibility, biodegradability, and ability to mimic the extracellular matrix, thereby promoting cell interaction. Additionally, their high surface area and porous structure facilitate efficient encapsulation and controlled release of bioactive compounds. Recent advances in the development of these systems against clinically relevant multidrug-resistant pathogens are analyzed, along with the antimicrobial mechanisms of EOs. Finally, the factors influencing encapsulation and release efficiency, as well as the main challenges and future perspectives for clinical translation, are discussed.

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Cite This Study

Segura et al. (2026) studied this question.

synapsesocial.com/papers/69e3216540886becb6540adehttps://doi.org/10.3390/polym18080972
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