Biodegradable piezoelectric skin-wound scaffold.

Biomaterials

Department of Biomedical Engineering, University of Connecticut, Storrs, CT, 06269, USA; Department of Mechanical Engineering, University of Connecticut, Storrs, CT, 06269, USA; Institute of Materials Science, University of Connecticut, Storrs, CT, 06269, USA. Electronic address:

Published: October 2023

AI Article Synopsis

  • Electrical stimulation (ES) can enhance wound healing and skin regeneration when combined with tissue engineering using biomaterials, potentially eliminating the need for harmful growth factors and exogenous cells.
  • Current ES methods face challenges, as external devices are often ineffective and implanted devices can be unsafe due to toxic batteries.
  • The proposed solution is a biodegradable PLLA nanofiber scaffold that uses ultrasound to create surface charges, promoting cell growth and bacterial resistance, leading to faster skin recovery in a mouse model.

Article Abstract

Electrical stimulation (ES) induces wound healing and skin regeneration. Combining ES with the tissue-engineering approach, which relies on biomaterials to construct a replacement tissue graft, could offer a self-stimulated scaffold to heal skin-wounds without using potentially toxic growth factors and exogenous cells. Unfortunately, current ES technologies are either ineffective (external stimulations) or unsafe (implanted electrical devices using toxic batteries). Hence, we propose a novel wound-healing strategy that integrates ES with tissue engineering techniques by utilizing a biodegradable self-charged piezoelectric PLLA (Poly (l-lactic acid)) nanofiber matrix. This unique, safe, and stable piezoelectric scaffold can be activated by an external ultrasound (US) to produce well-controlled surface-charges with different polarities, thus serving multiple functions to suppress bacterial growth (negative surface charge) and promote skin regeneration (positive surface charge) at the same time. We demonstrate that the scaffold activated by low intensity/low frequency US can facilitate the proliferation of fibroblast/epithelial cells, enhance expression of genes (collagen I, III, and fibronectin) typical for the wound healing process, and suppress the growth of S. aureus and P. aeruginosa bacteria in vitro simultaneously. This approach induces rapid skin regeneration in a critical-sized skin wound mouse model in vivo. The piezoelectric PLLA skin scaffold thus assumes the role of a multi-tasking, biodegradable, battery-free electrical stimulator which is important for skin-wound healing and bacterial infection prevention simultaneuosly.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10528909PMC
http://dx.doi.org/10.1016/j.biomaterials.2023.122270DOI Listing

Publication Analysis

Top Keywords

skin regeneration
12
wound healing
8
piezoelectric plla
8
scaffold activated
8
surface charge
8
scaffold
5
skin
5
biodegradable piezoelectric
4
piezoelectric skin-wound
4
skin-wound scaffold
4

Similar Publications

Exosomes, cell-derived vesicles produced by cells, are fascinating and drawing growing interest in the field of biomedical exploration due to their exceptional properties. There is fascinating evidence that exosomes are involved in major biological processes, including diseases and regeneration. Exosomes from mesenchymal stem cells (MSCs) have shown promising outcomes in regenerative medicine.

View Article and Find Full Text PDF

Burn wounds are challenging to treat due to considerable tissue damage and fluid loss. Creating wound dressings from natural and biological materials makes it possible to treat wounds and promote rapid epithelialization to speed healing and restore skin function. As a result, the ability of a collagen scaffold (Col) made from rainbow trout (Oncorhynchus mykiss) and putative bioactive phytochemical components from a Sargassum glaucescens (S.

View Article and Find Full Text PDF

Magnetic Nanoactuator-Protein Fiber Coated Hydrogel Dressing for Well-Balanced Skin Wound Healing and Tissue Regeneration.

ACS Nano

January 2025

State Key Laboratory of Cardiology and Medical Innovation Center, Shanghai East Hospital, The Institute for Biomedical Engineering & Nano Science, School of Medicine, Tongji University, Shanghai 200092, P. R. China.

Despite significant progress in skin wound healing, it is still a challenge to construct multifunctional bioactive dressings based on a highly aligned protein fiber coated hydrogel matrix for antifibrosis skin wound regeneration that is indistinguishable to native skin. In this study, a "dual-wheel-driven" strategy is adopted to modify the surface of methacrylated gelatin (GelMA) hydrogel with highly aligned magnetic nanocomposites-protein fiber assemblies (MPF) consisting of photothermal responsive antibacteria superparamagnetic nanocomposites-fibrinogen (Fg) complexes as the building blocks. Whole-phase healing properties of the modified hydrogel dressing, GelMA-MPF (GMPF), stem from the integration of Fg protein with RGD peptide activity decorated on the surface of the antibacterial magnetic nanoactuator, facilitating facile and reproducible dressing preparation by self-assembly and involving biochemical, morphological, and biophysical cues.

View Article and Find Full Text PDF

Filsuvez (birch triterpenes) topical gel received approval in 2023 for the treatment of epidermolysis bullosa (EB) in pediatric patients (aged ≥6 months) and adults. It promotes wound healing by modulating inflammation, encouraging new tissue formation, and maintaining the skin barrier. In a randomized, double-blind, controlled, parallel-group, phase III trial (EASE, NCT03068780), 223 patients were randomly assigned to two groups: the first group received treatment with birch triterpenes topical gel (study gel, n = 109), and the second group received treatment with vehicle gel (n = 114).

View Article and Find Full Text PDF

Background: The increased incidence of androgenic alopecia (AGA) causes adverse physiological and psychological effects on people of all genders. The hair follicle stem cells (HFSCs) have displayed clinical improvements on AGA. However, the molecular mechanism of HFSCs against AGA remains elusive.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!