CeO2-loaded PVA/GelMA core-shell nanofiber membrane to promote wound healing

Kalijaga, Muhammad Harza Arbaha and Nurrochman, Andrieanto and Annur, Dhyah and Sari, Wika Ratna and Sumboja, Afriyanti and Prajatelistia, Ekavianty (2024) CeO2-loaded PVA/GelMA core-shell nanofiber membrane to promote wound healing. Polymer, 307. p. 127320. ISSN 0032-3861, 1873-2291

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Abstract

Chronic wounds are a significant health issue due to various pathogenic abnormalities that hinder the healing process. Nanofiber membranes, with their favorable conductivity for cell growth, proliferation, and adhesion, offer immense potential for effective chronic wound healing. In this study, we utilized the coaxial electrospinning method to synthesize core-shell structured nanofiber membranes for chronic wound healing. To obtain superior nanofiber membranes, we modified the shell part of the electrospun nanofiber by combining gelatin methacrylate (GelMA) with cerium oxide (CeO2). The results show that these nanofibers exhibit promising wound healing properties, including ideal hydrophilicity, swelling ratio, porosity, mechanical properties, antibacterial activity, and fibroblast cell viability. With the addition of 3 % w/v CeO2 nanoparticles (PGCe-3 CL sample), the nanofiber membrane had a 53.7° water contact angle, 384.47 % swelling ratio, 83.91 % porosity, and 8.49 MPa tensile strength, which are optimal for the wound healing process. The PGCe-3 CL sample also demonstrated increased antibacterial activity, reducing bacterial colonies by up to 88.46 % for S. aureus and 93.14 % for E. coli compared to PG-CL and PGCe-1.5 CL. Furthermore, the cell viability test showed that the nanofiber membranes are non-toxic to human dermal fibroblast cells and significantly enhance cell proliferation compared to other samples. Accordingly, the synthesized nanofiber membranes loaded with nano CeO2 in this study show promising performance as suitable dressings for chronic wounds. Moreover, the findings of this study provide valuable insights for developing more effective and innovative materials for chronic wound healing.

Item Type: Article
Uncontrolled Keywords: Diabetic wound; Nanofiber; Cerium oxide; Cell proliferation; Antibacterial; Coaxial electrospinning
Subjects: Medicine & Biology > Occupational Therapy, Physical Therapy, & Rehabilitation
Depositing User: Maria Regina Karunia
Date Deposited: 07 Oct 2026 06:26
Last Modified: 07 Oct 2026 06:26
URI: https://karya.brin.go.id/id/eprint/60799

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