Insights into the antibacterial mechanism of MoS2/CoS2 heterostructure nanozymes with double enzyme-like activities for MRSA-infected wound therapy

生物相容性 化学 电子转移 异质结 抗菌活性 纳米技术 材料科学 生物 细菌 光化学 光电子学 遗传学 有机化学
作者
Guangtu Wang,Tao Wang,Yang Dang,Zhiwei Lu,Gehong Su,Bin Feng,Yong Zhuo,Xuemei Jiang,Qiaobo Ye,Wu Chun,Xiang Pu,Ying Zhao,Xiao‐Qing Zhao,Shuang Cai,Senyan Du,Shanshan Jia,Yanying Wang,De Wu,Hanbing Rao,Mengmeng Sun
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:461: 141959-141959 被引量:65
标识
DOI:10.1016/j.cej.2023.141959
摘要

Wounds infected by drug-resistant bacteria have become a worldwide health problem, and conventional antibiotics are no longer effective. On this basis, MoS2/CoS2 heterostructure nanozymes was designed by simple molten salt method. Transmission Electron Microscopy confirmed that the clear interface of MoS2/CoS2 was established creatively, which greatly promoted more distorted lattice generation. Benefited from the heterogeneous interfaces of MoS2/CoS2, the transfer of electrons was accelerated and double enzyme-like activities were improved greatly, which had been confirmed by the experimental characterizations and theoretical calculation. Moreover, the mechanism was investigated in depth based on the electronic state change of MoS2/CoS2 during the peroxidase reaction. Based on the peroxidase avtivity, MoS2/CoS2 could effectively kill drug-resistant bacteria as high as 99%, including Gram-positive and Gram-negative bacteria, it proved the broad-spectrum antibacterial effect of MoS2/CoS2. The results showed the superiority of the synergistic effect of the material and low concentration of H2O2. In addition, MoS2/CoS2 NFs greatly promoted the rapid healing of wounds in vivo and had good biocompatibility. This study provides a simple strategy to engineer nanozymes with enhanced catalytic activity and furnished a potential ideas in the treatment of bacterial infections and wound healing.
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