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凹凸棒石作为载银纳米粒子的纳米载体的结构演变,以提高抗菌活性。

Structural Evolution of Palygorskite as the Nanocarrier of Silver Nanoparticles for Improving Antibacterial Activity.

机构信息

Key Laboratory of Clay Mineral Applied Research of Gansu Province, Center of Eco-material and Green Chemistry, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, PR China.

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, PR China.

出版信息

ACS Appl Bio Mater. 2022 Aug 15;5(8):3960-3971. doi: 10.1021/acsabm.2c00482. Epub 2022 Jul 13.

Abstract

The carrier performance of palygorskite (Pal) can be significantly affected by its structure, morphology, and activity, which was regulated by controlling the dissolution degree of the metal-oxygen octahedron of raw Pal (RPal) under the action of oxalic acid (OA) in this study. The RPal and OA-leached RPal (OPal) then served as supports for immobilizing silver nanoparticles (AgNPs) to form RPal/AgNPs and OPal/AgNPs antibacterial nanocomposites. The structural and morphological characterizations were used to confirm the dispersion uniformity of AgNPs on the RPal and OPal nanorods, and antibacterial experiments were conducted to evaluate the performance of as-prepared composites and also investigate their antibacterial mechanism. The results showed that OPal-48h (OA leaching for 48 h) loaded with AgNPs (OPal-48h/AgNPs) possesses the most excellent and broad-spectrum antibacterial properties, where its minimum inhibitory concentration values against , , ESBL- and MRSA reached 0.25, 0.125, 0.25, and 0.5 mg/mL, respectively, which are mainly attributed to the optimal balance between surface activity and structural stability of OPal-48h that maximally increased its dispersibility and active sites, therefore contributing to the in situ formation of monodisperse AgNPs on the nanorods of OPal-48h.

摘要

在本研究中,通过草酸(OA)的作用控制天然坡缕石(RPal)中金属-氧八面体的溶解程度,来调节其结构、形态和活性,从而显著影响坡缕石(Pal)的载体性能。然后,RPal 和用 OA 浸出的 RPal(OPal)被用作固定载银纳米粒子(AgNPs)的载体,以形成 RPal/AgNPs 和 OPal/AgNPs 抗菌纳米复合材料。结构和形态特征用于确认 AgNPs 在 RPal 和 OPal 纳米棒上的分散均匀性,并进行抗菌实验来评估所制备的复合材料的性能,并研究其抗菌机制。结果表明,负载 AgNPs 的 OPal-48h(OA 浸出 48 h)(OPal-48h/AgNPs)具有最优异和广谱的抗菌性能,其对 、 、ESBL 和 MRSA 的最小抑菌浓度值分别达到 0.25、0.125、0.25 和 0.5 mg/mL,这主要归因于 OPal-48h 的表面活性和结构稳定性之间的最佳平衡,最大限度地提高了其分散性和活性位点,从而有助于在 OPal-48h 的纳米棒上原位形成单分散的 AgNPs。

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