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In situ fabrication of metal-organic framework derived hybrid nanozymes for enhanced nanozyme-photothermal therapy of bacteria-infected wounds

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TLDR
In this paper, a metal-organic framework (MOF)-derived hybrid nanozymes antibacterial strategy for enhanced nanozyme-photothermal therapy (NPT) was proposed, which can not only prevent the aggregation of platinum nano-zymes and effectively reduce the mass transfer resistance during the kinetic reaction, but also inhibit the photoelectron-hole recombination in the process of photothermal therapy.
Abstract
In recent years, nanozyme-photothermal therapy (NPT) has attracted enormous interests owing to their enhanced therapeutic effects and less adverse effects in the treatment of infectious diseases. However, the development of nanozyme-photothermal agents (NPAs) that can rapidly, efficiently and synergistically combating pathogenic bacteria remains a huge challenge due to the limitation of size effect. Herein, by decorating platinum nanozymes on Zn-based photosensitizer, we report a novel metal-organic framework (MOF)-derived hybrid nanozymes antibacterial strategy for enhanced NPT. This strategy can not only prevent the aggregation of platinum nanozymes and effectively reduce the mass transfer resistance during the kinetic reaction, but also inhibit the photoelectron-hole recombination in the process of photothermal therapy (PTT) and improve the photothermal conversion performance. In the presence of a low concentration of hydrogen peroxide (H2O2), the superior nanocatalytic activity of the MOF-derived hybrid nanozymes can effectively catalyze the release of H2O2 to generate toxic hydroxyl radical (•OH), resulting in the increase of bacterial membrane permeability and thermal sensitivity. Once the near-infrared laser is introduced, the nanozyme-photothermal antibacterial platform can play the role of “nanoknife” to further induce the death of the damaged bacteria by physical cutting. In vitro and vivo in antibacterial assays confirm that the MOF-derived hybrid nanozymes have excellent antibacterial properties, which can serve as an antibacterial candidate with negligible adverse effect. Therefore, this work will open a new avenue for MOF-derived hybrid nanozymes in biomedical application.

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Neutrophil-erythrocyte hybrid membrane-coated hollow copper sulfide nanoparticles for targeted and photothermal/ anti-inflammatory therapy of osteoarthritis

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Double crosslinking chitosan sponge with antibacterial and hemostatic properties for accelerating wound repair

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Visible-light-driven photocatalytic degradation of dye and antibiotics by activated biochar composited with K+ doped g-C3N4: Effects, mechanisms, actual wastewater treatment and disinfection.

TL;DR: In this article , an activated biochar-based graphitic carbon nitride composite (ACB-K-gC3N4 composite) was synthesized via the innovative ultrasonic-milling method.
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Nanozybiotics: Nanozyme-Based Antibacterials against Bacterial Resistance

TL;DR: It is proposed that nanozybiotics may bear promising applications in antibacterial therapy, due to their high stability, rapid bacterial killing, biofilm elimination, and low cost.
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Manganese‐Based Nanozymes: Preparation, Catalytic Mechanisms, and Biomedical Applications

TL;DR: In this review, the typical preparation strategies, catalytic mechanisms, advances and perspectives of Mn-based nanozymes for biomedical applications are systematically summarized and the application of Mn -based nanoZymes in tumor therapy and sensing detection, together with an overview of their mechanism of action is highlighted.
References
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Synthesis of S-doped AuPbPt alloy nanowire-networks as superior catalysts towards the ORR and HER

TL;DR: In this article, S-doped AuPbPt alloy nanowire-networks (NWNs) are synthesized by conformal growth of Pt onto S-Doped AUPbNets as templates, which are obtained by NaBH4 reduction of an extended network of 2 nm Au nanoclusters resulting from Pb2+ ion-directed self-assembly.
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N-halamine modified ceria nanoparticles: Antibacterial response and accelerated wound healing application via a 3D printed scaffold

TL;DR: In this paper, a 3D printed dressing with prominent antibacterial activity and biocompatibility was fabricated based on gelatin methacryloyl (GelMA) via a photocrosslinking technique.
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A green method of preparing a natural and degradable wound dressing containing aloe vera as an active ingredient

TL;DR: Overall, this study showed the DES-SH-CS/DA/AV hydrogel developed has the potential to be used as a natural and green wound dressing.
Journal ArticleDOI

Cu/Zn galvanic couples composite antibacterial dressings prepared by template-assisted magnetron sputtering

TL;DR: In this article, a template-assisted magnetron sputtering was used to create galvanic couples between Cu and Zn strips when activated by wound exudate, and the deposition method of Cu/Zn couples on dressings shed new light on designing electroactive antibacterial wound dressings.
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Bifunctional cupric oxide nanoparticle-catalyzed self-cascade oxidation reactions of ascorbic acid for bacterial killing and wound disinfection

TL;DR: A novel antibacterial system consisting of cupric oxide nanoparticles combined with ascorbic acid (CuO NPs/AA), which could act as a potent nanoantibiotic targeting both Escherichia coli and Staphylococcus aureus in vivo and in vitro, without noticeable cytotoxicity to mammalian tissue is demonstrated.
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