April 2026 in “Applied Materials Today” This study introduced a pH-responsive polymeric wound dressing that enhances healing in chronic wounds by changing shape and drug delivery based on wound pH, achieving a 94.88% healing rate in diabetic mice by day 14.
22 citations
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October 2024 in “Advanced Healthcare Materials” This study demonstrated that gelatine-based hydrogel foams loaded with platelet extracellular vesicles (pEVs) promoted full wound closure in a chronic wound rat model within 14 days, suggesting potential for personalized treatment of chronic diabetic wounds.
61 citations
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April 2023 in “Advanced Materials” This study introduced a viscoelastic dry electrode that successfully reduces motion artifacts in EP monitoring on hairy skin, maintaining stable performance for up to 48 days.
This study reported that hydrogels created from keratins extracted from human hair exhibit antibacterial properties and enhance tissue regeneration, suggesting their potential use in full-thickness skin repair, as demonstrated by increased collagen production and improved healing in vivo.
July 2026 in “Materials Today Bio” This study developed a novel hydrogel that improved healing in diabetic infected wounds on mobile sites by controlling infection, inflammation, and mechanical stress, promoting skin regeneration without excess scarring.
11 citations
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October 2024 in “PLoS ONE” In this study, phage-containing hydrogels were shown to effectively treat wounds infected with E. faecalis by promoting wound healing through controlled phage release, suggesting potential to improve clinical outcomes for such infections.
26 citations
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May 2011 in “Tissue Engineering Part A” This study found that mouse embryoid bodies adhered quickly and differentiated efficiently into cardiomyocytes on negatively charged poly(sodium p-styrene sulfonate) hydrogels, similar to their behavior on gelatin-coated polystyrene.
In a rodent study, a flexible, self-powered triboelectric nanogenerator wound patch combining electrostimulation and photothermal effects was found to efficiently accelerate wound healing and hair follicle regeneration.
12 citations
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April 2023 in “Frontiers in Materials” This review discusses the biofunctionalization of hydrogel scaffolds for vascular tissue regeneration and reports promising results from in vivo studies, such as improved angiogenesis and healing in pressure ulcers when using specific peptides.
143 citations
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January 2012 in “Cell and Tissue Research” In this study, a novel CT@GA-gel hybrid hydrogel was developed for diabetic wound treatment, demonstrating improved mechanical properties, tissue adhesion, and chronic wound healing benefits, including immune regulation and re-epithelialization, due to enhanced crosslinking and ROS scavenging by incorporated carbon dots.
September 2025 in “OPAL (Open@LaTrobe) (La Trobe University)” This study developed a novel hydrogel combining Chlorella extracellular polysaccharide–selenium nanoparticles (EPS-SeNPs) with biocompatible components, which demonstrated strong antibacterial and anti-inflammatory effects, significantly accelerating wound healing in an infected rat model, and enabling pH-based monitoring of healing.
1 citations
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August 2023 in “Gels” This study found that a chitosan-based hydrogel containing silver nanoparticles and ibuprofen demonstrated strong antibacterial activity and accelerated wound healing in vivo, suggesting its potential use in wound dressings.
76 citations
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February 2024 in “International Journal of Molecular Sciences” This review discusses the growing importance of hydrogel scaffolds in skin wound healing, highlighting their unique properties and recent advancements in their use for treating difficult tissue damage, particularly within tissue engineering.
June 2025 in “Biomacromolecules” In this study, researchers developed a GelMA-based gradient pH hydrogel that effectively reduced bacterial load and promoted fibroblast and endothelial cell proliferation, macrophage polarization, neovascularization, and hair follicle regeneration, offering a promising treatment for bacterially infected skin wounds.
10 citations
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March 2024 in “Frontiers in Bioengineering and Biotechnology” This review examined photothermal hydrogels, biomedically innovative materials responsive to near-infrared stimulation, which hold promise for enhancing infection control and tissue regeneration. The authors highlighted their unique properties, construction methods, and potential applications while also discussing existing challenges and future research directions.
January 2025 in “Pharmaceuticals” This review discusses the potential of peptide-based hydrogels as biomaterials for treating chronic wounds and reports no new clinical findings.
165 citations
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May 2023 in “Science Advances” In this study, the researchers developed a living microecological hydrogel containing Chlorella and Bacillus subtilis that showed potential in promoting the healing of infected diabetic wounds by providing continuous oxygen delivery and anti-infective properties.
120 citations
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September 2022 in “Materials Today Bio” This review summarizes numerous studies on adhesive hydrogels with natural antibacterial agents for wound dressings, highlighting their potential as effective treatments with strong antibacterial properties, biocompatibility, and mechanical performance, while minimizing reliance on antibiotics.
August 2023 in “International Journal of Molecular Sciences” In this study, researchers developed a new sodium alginate/chitosan/Zn2+ hydrogel that showed improved physical properties, antibacterial activity, and biocompatibility, and demonstrated enhanced wound healing and skin regeneration in an in vitro model.
September 2025 in “ACS Applied Polymer Materials” This study reported that a composite hydrogel made with Chlorella-derived extracellular polysaccharide–selenium nanoparticles showed strong antibacterial and anti-inflammatory effects in vitro and significantly accelerated wound healing in vivo, offering potential for managing infected wounds and monitoring healing progression.
49 citations
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January 2017 in “Journal of Materials Chemistry B” This study developed a hydrogel from glycol chitosan and silica nanoparticles, which showed promise in wound healing by supporting microvessel and hair follicle growth in skin defects.
11 citations
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February 2020 in “Journal of Biomaterials Science Polymer Edition” This study explored the development of GelMet, an electrospun hybrid nanofiber scaffold made from gelatin and PEG methacrylate, which demonstrated strong mechanical properties and effectively supported cell growth in vitro, suggesting its potential for skin tissue engineering applications.
106 citations
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December 2015 in “Biomacromolecules” This study describes a method to create keratin hydrogels with adjustable erosion rates by mixing different ratios of keratose and kerateine, enabling controlled release of therapeutic agents like insulin-like growth factor 1.
This study developed a bioresponsive hydrogel combining basic fibroblast growth factor and N-acetylcysteine, which significantly improved diabetic wound healing by enhancing re-epithelialization, collagen deposition, hair follicle regeneration, and neovascularization in response to oxidative stress.
35 citations
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November 2024 in “Gels” This review discusses hydrogel-forming microneedles for non-invasive drug delivery in dermatology and reports no new clinical results, emphasizing their promise in improving treatment adherence and patient comfort.
2 citations
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June 2025 in “Chemical Engineering Journal” The hydrogel helps heal seawater-immersed wounds by reducing infection and inflammation.
26 citations
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September 2024 in “National Science Review” This review outlines guidelines for designing Janus hydrogel bioadhesives, highlighting their potential to enhance clinical applications in tissue repair and regenerative medicine by mimicking natural biological barriers, although challenges remain in optimizing their asymmetric surface designs.
2 citations
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January 2018 in “Biomolecules & therapeutics” This study found that polyamidoamine dendrimers can permeate skin's current conducting pores and alter the magnitude and direction of electroosmotic flow, affecting drug flux during iontophoresis.
78 citations
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February 2024 in “ACS Omega” This study developed a bilayer material combining poly(vinyl alcohol) and bacterial cellulose with a gelatin-poly(vinyl alcohol) hydrogel, showing strong potential as a wound dressing due to its good antibacterial properties, cell viability, and sustained drug release.