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February 2, 2026Polymers0 citationsOpen Access

Hyperbranched Polymer Dendrimers Embedded in Electrospun Nanofibers for Safe and Sustainable Antibacterial Filtration Materials

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MBMatěj BuzgoBYBaturalp YalcinkayaMDMiroslav Doupnik

Key Points

  • The research aims to create safe, sustainable antibacterial filtration materials using hyperbranched polymer dendrimers.
  • Embedded cationic hyperbranched polymer dendrimers into recycled polyamide 6 nanofibers via needleless electrospinning.
  • Evaluated filtration efficiency against 0.3 µm aerosol using EN 149:2001 standard.
  • Tested antibacterial activity against Staphylococcus aureus and Escherichia coli using quantitative assays and diffusion tests.
  • Conducted toxicological assessments on cell lines and 3D human tissue models.
  • Achieved filtration efficiency exceeding 99.8%, surpassing FFP3 classification.
  • Demonstrated contact-active antibacterial activity with up to 74.1% bacterial viability reduction after 2 hours.
  • Confirmed no leaching of the polymer from the nanofiber matrix during tests.
  • Proven safety for dermal and respiratory contact through toxicological evaluations.

Abstract

The global crisis concerning multidrug-resistant microorganisms necessitates the development of innovative antimicrobial strategies that avoid conventional antibiotics and overcome the toxicity and environmental persistence associated with traditional metal-based biocides. This work aims to develop safe and sustainable antibacterial filtration materials by integrating cationic hyperbranched polymer dendrimers (HBP) into electrospun nanofibers. Cationic HBPs were successfully embedded into recycled polyamide 6 nanofibers using industrial needleless electrospinning. Filtration efficiency, assessed against a 0.3 µm paraffin oil aerosol according to EN 149:2001, consistently exceeded 99.8%, meeting and surpassing the FFP3 classification threshold while maintaining low air resistance. The HBP-functionalized nanofibers exhibited pronounced contact-active antibacterial activity against Staphylococcus aureus and Escherichia coli. Quantitative plate count assays confirmed viability reductions of up to 74.1% after 2 h of co-incubation. Crucially, the absence of inhibition zones in agar diffusion tests confirmed that the active polymer was stably embedded within the nanofiber matrix and did not leach. Comprehensive toxicological tests, including cell line and 3D human skin and airway tissue models, confirmed the material’s safety for both dermal and respiratory contact. This study presents a scalable, metal-free, and environmentally responsible next-generation filtration system that combines high mechanical efficiency with active antimicrobial functionality.

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Cite This Study

Buzgo et al. (2026) studied this question.

synapsesocial.com/papers/6980fe7cc1c9540dea8109e7https://doi.org/10.3390/polym18030374
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