Journal of Materials Science Materials in Engineering· 2026Q2· Review
PVA-based hydrogels for chronic wound healing: a systematic review of mechanical, structural, chemical, and biological performance
- 0citations
- Q2SCImago
- 2026year
Short summary
PVA-based hydrogels show significant potential for chronic wound healing, with multi-crosslinked formulations demonstrating superior tensile strength and optimized porosity aiding drug release and cell infiltration.
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Key points
- Multi-crosslinked PVA hydrogels show higher tensile strength compared to single-network formulations.
- Optimized hydrogel porosity supports sustained drug release and cellular infiltration.
- Antibacterial efficacy (up to 98% inhibition of S. aureus, 95% of E. coli), antioxidant activity, and angiogenesis are driven by incorporated bioactive/electroconductive agents.
- In vivo studies demonstrate accelerated wound closure, reduced inflammation, and improved collagen deposition and vascularization.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Polyvinyl alcohol (PVA)-based hydrogels are promising chronic wound dressings owing to their tunable structure, biocompatibility, and capacity to carry bioactive agents. Following the Preferred Reporting Items for Systematic Review and Meta-Analysis (PRISMA) guideline, this review synthesised evidence on their mechanical, morphological, chemical, and biological performance from Scopus, PubMed, and Web of Science. From 390 records, 24 articles met the eligibility criteria: original research published between 2022 and 2024 on PVA-based hydrogels for chronic wound healing, reporting quantitative characterisation with in vitro and/or in vivo evaluation; reviews and non-PVA systems were excluded. Thirteen included in vivo and in vitro experiments. Multi-crosslinked hydrogels (chemical-physical and photo-assisted) showed higher tensile strength than single-network formulations, although whether that gain came at the cost of extensibility was crosslinker-specific; optimised porosity supported sustained drug release and cellular infiltration. Incorporated bioactive and electroconductive agents, rather than the PVA matrix itself, drove antibacterial efficacy (up to 98% inhibition of Staphylococcus aureus and 95% of Escherichia coli), antioxidant activity, and angiogenesis. In vivo studies recorded accelerated wound closure, reduced inflammation, and improved collagen deposition and vascularisation. These structure-function-healing correlations indicate notable preclinical potential for multifunctional smart dressings, although standardised evaluation, scalable fabrication, and clinical validation remain necessary for translation.
The authors' abstract, as published at the source. Journal of Materials Science Materials in Engineering, 2026 · DOI ↗
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Field: Rehabilitation
RehabilitationMedicine