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Published on: February 27, 2019
Peptide-Reduced Platinum-Based Nanozymes for Wound Treatment of Methicillin-Resistant Staphylococcus aureus Infection
Ting Chen1, Naidan Li1, Peipei Li1
1College of Chemistry and Chemical Engineering, Engineering Research Center of Dairy Quality and Safety Control Technology, Ministry of Education, Inner Mongolia University, Hohhot010021, People's Republic of China.
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA)-infected wounds remain difficult to treat because of antibiotic resistance, biofilm formation, and persistent inflammation, highlighting the need for alternative local antibacterial strategies. Herein, we developed a platinum-based nanozyme (FmY@Pt) through a UV-assisted green reduction process using a tyrosine-containing short peptide (FmY) and evaluated its antibacterial activity and therapeutic potential for treating MRSA-infected wounds. The physicochemical properties and peroxidase(POD)-like activity of FmY@Pt were characterized, and its antibacterial effects and possible mechanisms were evaluated in vitro. The resulting nanozyme exhibited peroxidase-like activity under the tested conditions. In vitro experiments showed that FmY@Pt disrupted bacterial membranes and increased intracellular reactive oxygen species (ROS) levels in MRSA cells. These effects were associated with the antibacterial activity of FmY@Pt. In a mouse model of MRSA-infected skin wounds, the FmY@Pt + H2O2 treatment accelerated wound closure, with the wound closure rate reached approximately 80.8% on day 7. Moreover, bacterial survival rate was reduced to approximately 6.13%, corresponding to a reduction of approximately 93.87% relative to the control group. The treatment was also associated with attenuated inflammatory responses and improvements in tissue repair-related histological indicators. These findings suggest that the antibacterial and inflammation-modulating effects of FmY@Pt may collectively contribute to wound repair under the conditions. This study provides experimental evidence supporting the further investigation of nanozyme-based strategies for the treatment of infected wounds.

