ArticleBioactive materials2025
Near-field electrospun 3D anisotropic fiber-hydrogel scaffold integrated with photothermal effect for skin wound healing.
Article in Bioactive materials, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Biomaterials for intervertebral disc regeneration: Niche reprogramming, precision therapeutics, and structural reconstruction.Bioactive materials · 2027Review
- Hydrogel coatings for titanium implants: From smart stimuli-responsive strategies to multimodal bone regeneration.Bioactive materials · 2026Review
- Smart biophysical cue-based strategies and materials for intervertebral disc degeneration therapy.Bioactive materials · 2026Review
- Electrospun collagen/hyaluronic acid dressing co-loaded with EGF and bFGF for enhanced diabetic wound healing.RSC advances · 2026Article
- Synergistic phototherapy and CaBioactive materials · 2026Article
- Immunomodulatory copper-based polyphenol nanozyme for diabetic infectious wound healing via NIR amplified cuproptosis bacteriostat in synergy with ferroptosis inhibition anti-inflammation.Bioactive materials · 2025Article
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Authors and funding
13 authors.
Funding
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Abstract
Wound healing remains a critical clinical challenge due to inflammatory responses, oxidative stress in the wound microenvironment, and impaired tissue remodeling. In this study, an anisotropic scaffold was developed by integrating photothermal stimulation with topographical cues to modulate wound healing. The scaffold consisted of gelatin methacryloyl (GM) hydrogel and radially aligned poly (ε-caprolactone) (PCL) fibers integrated with polydopamine (PDA). The anisotropic scaffold not only exhibited anti-inflammatory effects but also enabled localized thermal stimulation under near-infrared (NIR) light to promote wound healing. It guided cell migration and proliferation from the wound edge toward the center, while the GM hydrogel maintained a moist environment and mitigated uncontrolled thermal damage. In a full-thickness skin wound model in rats, the anisotropic scaffold accelerated wound healing, epidermal regeneration, angiogenesis, and collagen deposition. This approach offers a safe, efficient, and bioactive-factor-free therapeutic strategy for wound repair, showing great potential for clinical translation.
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Registered trials
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