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Ruthenium complexes/polypeptide self-assembled nanoparticles for identification of bacterial infection and targeted antibacterial research

抗菌剂 抗菌活性 生物相容性 纳米探针 材料科学 细菌生长 组合化学 微生物学 抗生素 纳米颗粒 细菌 纳米技术 化学 生物化学 生物 催化作用 冶金 遗传学
作者
Na Huang,Xu Chen,Xufeng Zhu,Mengmeng Xu,Jie Liu
出处
期刊:Biomaterials [Elsevier BV]
卷期号:141: 296-313 被引量:101
标识
DOI:10.1016/j.biomaterials.2017.07.005
摘要

Bacterial infection has been a threat to human health, and so early diagnosis and treatment of bacterial infection is an urgent problem that needs to be solved. In this work, a multifunctional theranostic selenium nanoplatform ([email protected] NPs) with early imaging diagnosis and efficient treatment of bacterial infections was designed and constructed. First, the antibacterial peptide UBI29-41 (PEP) was linked to functionalized Selenium nanoparticles (NPs), which enhanced the stability of the antimicrobial peptide and also caused the nanocomposites to specifically target bacterial infection. Ruthenium complexes with good antibacterial activity and fluorescence properties were then coated on to their outer layers. It was worth mentioning that, when the resulting nanoprobe was injected into mice by intravenous injection it was found to be sensitive to sites of bacterial infection for selective fluorescence imaging and targeted therapy. Thus, it can be used to distinguish between bacterial infection, inflammation, and tumor-induced tissue infection with high specificity. In the further antibacterial activity experiments, Ruthenium complexes showed synergistic antimicrobial activity with Se NPs, which indicated that the antibacterial activity of [email protected] NPs was the strongest that could promote wound healing. Thus, [email protected] NPs appears to be a promising antimicrobial with good biocompatibility, excellent selectivity, and potent antimicrobial activity.
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