HE@PCL/PCE Gel-Nanofiber Dressing with Robust Self-Adhesion toward High Wound-Healing Rate via Microfluidic Electrospinning Technology

ACS Appl Mater Interfaces. 2023 Oct 4;15(39):46322-46332. doi: 10.1021/acsami.3c09713. Epub 2023 Sep 25.

Abstract

Hydrogels have attracted increasing attention in the biomedical field due to their similarity in structure and composition to natural extracellular matrices. However, they have been greatly limited by their low mechanical strength and self-adhesion for further application. Here, a gel-nanofiber material is designed for wound healing, which synergistically combines the benefits of hydrogels and nanofibers and can overcome the bottleneck of poor mechanical strength and self-adhesion in hydrogels and inadequate healing environment created by nanofibers. First, a nanofiber scaffold composed of polycaprolactone/poly(citric acid)-ε-lysine (PCL/PCE) nanofibers is fabricated via a new strategy of microfluidic electrospinning, which could provide a base for hyaluronic acid-polylysine (HE) gel growth on nanofibers. The prepared HE@PCL/PCE gel-nanofiber possesses high tensile strength (24.15 ± 1.67 MPa), excellent air permeability (656 m3/m2 h kPa), outstanding self-adhesion property, and positive hydrophilicity. More importantly, the prepared gel-nanofiber dressing shows good cytocompatibility and antibacterial properties, achieving a high wound-healing rate (92.48%) and 4.685 mm granulation growth thickness within 12 days. This material may open a promising avenue for accelerating wound healing and tissue regeneration, providing potential applications in clinical medicine.

Keywords: antibacterial; gel-nanofiber; microfluidics electrospinning; self-adhesion; wound dressing.

MeSH terms

  • Anti-Bacterial Agents
  • Bandages
  • Hydrogels / pharmacology
  • Microfluidics
  • Nanofibers* / chemistry
  • Polyesters / chemistry
  • Technology
  • Wound Healing

Substances

  • Anti-Bacterial Agents
  • Hydrogels
  • Polyesters