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MXene量子点/超支化抗菌肽纳米组装体的光热/物理协同抗菌作用

Photothermal/Physical Synergistic Antibacterial of MXene Quantum Dots/Hyperbranched Antimicrobial Peptide Nanoassemblies.

作者信息

Hu Bingxuan, Chen Jiawei, Li Helang, Gao Zeyu, Chen Lei, Cao Tengyang, Yu Qingsong, Wang Caiqi, Gan Zhihua

机构信息

School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.

College of Life Science and Technology, Beijing university of Chemical Technology, Beijing 100029, China.

出版信息

ACS Appl Bio Mater. 2025 Jul 21;8(7):5805-5817. doi: 10.1021/acsabm.5c00555. Epub 2025 Jul 2.

Abstract

Unlike conventional antibiotic antibacterial methods, photothermal antibacterial methods have fewer toxic side effects and do not result in drug resistance. However, because of the complex bacterial microenvironments, simple photothermal treatment cannot provide a good antibacterial effect. Thus, a dual-mode nanoantibacterial photothermal agent (MN) was constructed, which was composed of MXene QDs with excellent photothermal conversion effects and Nanoengineered Peptide-Grafted Hyperbranched Polymers (NPGHPs) with broad-spectrum antibacterial activity. MXene QDs in the assembly could be used to adjust the Zeta potential of the system so that the assembly system could change the type of dominant antibacterial activity, achieve broad-spectrum antibacterial characteristics, and form an antibacterial matrix. More surprisingly, with the increase in temperature, the antibacterial activity of antimicrobial peptides also increased. The photothermal conversion efficiency of the assembly reached 39.6%. and antibacterial experiments showed that the MN could significantly inhibit the proliferation of Gram-positive bacteria and after MXene QDs regulated the Zeta potential of the system, and the toxicity was negligible. Mouse experiments also proved that the wound recovered faster after MN near-infrared treatment. Therefore, the MN is a multifunctional collaborative antibacterial platform with good biological application prospects.

摘要

与传统抗生素抗菌方法不同,光热抗菌方法的毒副作用较少,且不会产生耐药性。然而,由于细菌微环境复杂,单纯的光热处理无法提供良好的抗菌效果。因此,构建了一种双模纳米抗菌光热剂(MN),它由具有优异光热转换效果的MXene量子点和具有广谱抗菌活性的纳米工程肽接枝超支化聚合物(NPGHPs)组成。组装体中的MXene量子点可用于调节体系的Zeta电位,使组装体系能够改变主要抗菌活性类型,实现广谱抗菌特性,并形成抗菌基质。更令人惊讶的是,随着温度升高,抗菌肽的抗菌活性也增强。该组装体的光热转换效率达到39.6%,抗菌实验表明,在MXene量子点调节体系的Zeta电位后,MN能显著抑制革兰氏阳性菌的增殖,且毒性可忽略不计。小鼠实验也证明,MN近红外处理后伤口愈合更快。因此,MN是一个具有良好生物应用前景的多功能协同抗菌平台。

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