Electrospun Polyvinylpyrrolidone-Based Dressings Containing GO/ZnO Nanocomposites: A Novel Frontier in Antibacterial Wound Care

Author:

Martín Cristina1ORCID,Ferreiro Fernández Adalyz2ORCID,Salazar Romero Julia C.1,Fernández-Blázquez Juan P.3ORCID,Mendizabal Jabier4,Artola Koldo4ORCID,Jorcano José L.15,Rabanal M. Eugenia2ORCID

Affiliation:

1. Department of Bioengineering, Universidad Carlos III de Madrid, 28911 Leganés, Spain

2. Department of Materials Science and Engineering and Chemical Engineering & IAAB, Universidad Carlos III de Madrid, 28911 Leganés, Spain

3. IMDEA Materials Institute, 28906 Getafe, Spain

4. Domotek Ingeniería Prototipado y Formación S.L., 20003 San Sebastián, Spain

5. Instituto de Investigación Sanitaria Gregorio Marañón, 28007 Madrid, Spain

Abstract

In recent years, the rapid emergence of antibiotic-resistant bacteria has become a significant concern in the healthcare field, and although bactericidal dressings loaded with various classes of antibiotics have been used in clinics, in addition to other anti-infective strategies, this alarming issue necessitates the development of innovative strategies to combat bacterial infections and promote wound healing. Electrospinning technology has gained significant attention as a versatile method for fabricating advanced wound dressings with enhanced functionalities. This work is based on the generation of polyvinylpyrrolidone (PVP)-based dressings through electrospinning, using a DomoBIO4A bioprinter, and incorporating graphene oxide (GO)/zinc oxide (ZnO) nanocomposites as a potent antibacterial agent. GO and ZnO nanoparticles offer unique properties, including broad-spectrum antibacterial activity for improved wound healing capabilities. The synthesis process was performed in an inexpensive one-pot reaction, and the nanocomposites were thoroughly characterized using XRD, TEM, EDX, SEM, EDS, and TGA. The antibacterial activity of the dispersions was demonstrated against E. coli and B. subtilis, Gram-negative and Gram-positive bacteria, respectively, using the well diffusion method and the spread plate method. Bactericidal mats were synthesized in a rapid and cost-effective manner, and the fiber-based structure of the electrospun dressings was studied by SEM. Evaluations of their antibacterial efficacy against E. coli and B. subtilis were explored by the disk-diffusion method, revealing an outstanding antibacterial capacity, especially against the Gram-positive strain. Overall, the findings of this research contribute to the development of next-generation wound dressings that effectively combat bacterial infections and pave the way for advanced therapeutic interventions in the field of wound care.

Funder

Universidad Carlos III de Madrid

European Union’s Horizon 2020 Research and Innovation Program

Agencia Estatal de Investigación

Comunidad de Madrid

Community of Madrid

Publisher

MDPI AG

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