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Sara Shakibania

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Aug 2026

Winning the 'race for the surface': curcumin-loaded PEDOT coatings with enhanced biocompatibility and antibacterial capabilities.

The continued growth of bioelectronics has created a pressing demand for the development of implant coatings that integrate balanced electrochemical performance, surface characteristics favouring cell adhesion, excellent biocompatibility, and effective antibacterial functionality. To meet these demands, we propose curcumin-modified conducting polymer coatings that simultaneously enhance biocompatibility, antibacterial activity, and preserve electrochemical functionality. In this study, poly(3,4-ethylenedioxythiophene) (PEDOT) coatings were modified by curcumin - a natural agent widely studied due to its antibacterial, anti-inflammatory and wound-healing properties. Curcumin was immobilised within PEDOT coatings by electropolymerization in different environments (acetonitrile, water) and in the presence of different electrolytes (tetrabutylammonium hexafluorophosphate, tetrabutylammonium tetrafluoroborate or phosphate-buffered saline). The results showed that addition of curcumin during the electrochemical polymerization leads to the formation of PEDOT coatings with good conductivity (impedance <1 MΩ at 1 kHz) and favourable wettability (contact angle ∼50°), ideal for cell anchoring. Detailed kinetic analysis revealed that the mechanism of curcumin release depends on the selection of electrolyte. While the AlamarBlue assay indicated the beneficial influence of curcumin on fibroblast viability, a distinct localized antibacterial effect against Pseudomonas aeruginosa was also observed on the surface. In conclusion, PEDOT-Curcumin multifunctional coatings are shown to successfully shift the "race for the surface" in favour of mammalian cells, offering a promising strategy for the fabrication of implant coatings.

S. Smółka, Alicja Tomasiak, Sara Shakibania et al. · 0 citations
Open access Aug 2026

Smart Antibacterial Coatings: Harnessing Bacterial Redox Activity for Infection Control

Medical device‐associated biofilms are the primary source of chronic infections, antibiotic resistance, and device failure, but currently available antibacterial coatings have limited activity against sustained colonization. Conducting polymers have attracted considerable interest for biomedical applications owing to their reversible redox behavior and ability to accommodate therapeutic agents. In this work, we report a redox‐active antibacterial coating based on poly(3,4‐ethylenedioxythiophene) (PEDOT) loaded with ceftazidime (CAZ), designed to link antibiotic release to bacterial electroactivity. A high charge storage capacity (14.6 ± 3.4 mC cm − 2 ) together with an increased charge transfer resistance (10.7 ± 0.5 kΩ) indicated successful incorporation of CAZ within PEDOT matrix. Negligible passive release of CAZ (1.2 ± 0.1 µg cm −2 ) was noted when compared with bacteria‐induced release in the presence of Shewanella oneidensis (44.4 ± 9.0 µg cm −2 ) and Pseudomonas aeruginosa (62.2 ± 2.8 µg cm −2 ), as well as electrically‐induced release (49.5 ± 5.9 µg cm −2 ). Spectroelectrochemical and impedance data revealed that the redox state of PEDOT was modulated in a species‐dependent manner. The presence of PEDOT@CAZ limited the viability of S. oneidensis and P. aeruginosa to 13% and 20%, respectively. These findings indicate that PEDOT@CAZ acts as an intelligent antibacterial surface, releasing antibiotics in response to bacterial activity.

Abdullah, S. Smółka, Kamran Ayaz et al. · 0 citations