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Cysteine-Derived Carbon Dots Hydrogels with Visible-Light-Driven Photocatalytic Therapy for Infected Wound Healing
Huanxuan Huang1, Chenyu Zhang2, Dong Zhang1
1Shanghai Key Laboratory of Advanced Polymeric Materials, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China.
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The escalating crisis of multidrug resistance and biofilm recalcitrance poses severe challenges to conventional wound management. Photocatalytic antimicrobial therapy (PCAT) represents a promising nonantibiotic alternative that triggers the generation of reactive oxygen species (ROS) under illumination, thereby achieving broad-spectrum sterilization. Herein, we engineered a metal-free, visible-light-driven photocatalyst based on cysteine-derived carbon dots (Cys-CDs) via a facile microwave-assisted approach. Through precise N, S-heteroatom doping, the Cys-CDs possess tailored bandgaps of 2.78 eV, conferring them with superior visible-light harvesting capability. Upon visible-light exposure, the photocatalytic generation of ROS drives potent antibacterial efficacy, achieving >95% bacterial eradication against Staphylococcus aureus at 31.25 μg/mL and Escherichia coli at 62.5 μg/mL. Importantly, the unique ROS-mediated antibacterial mechanism of Cys-CDs induces nonspecific oxidative damage to bacterial components, thereby fundamentally circumventing the evolution of resistance. Subsequently, Cys-CDs were covalently integrated into an alginate hydrogel matrix to construct a sustained-release platform (CCDs/SA). The resultant hydrogel retains robust photocatalytic antibacterial activity, demonstrating excellent performance in inhibiting biofilm formation and eradicating mature biofilms. Notably, the CCDs/SA hydrogel exerts selective bactericidal activity through differential enzymatic modulation, effectively eliminating bacteria while simultaneously promoting mammalian cell proliferation and migration. In an infected full-thickness skin wound model, the hydrogel combined with visible-light irradiation achieved near-complete bacterial eradication (99.07%) by day 7 and accelerated wound closure to 97.35% within 14 days, significantly outperforming commercial antibacterial dressings. Collectively, this work establishes a nonantibiotic therapeutic strategy for engineering visible-light-driven platforms, holding great promise for the clinical management of infected wounds.