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首页> 外文期刊>Analytica chimica acta >Recyclable metal nanoparticle-immobilized polymer dot on montmorillonite for alkaline phosphatase-based colorimetric sensor with photothermal ablation of Bacteria
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Recyclable metal nanoparticle-immobilized polymer dot on montmorillonite for alkaline phosphatase-based colorimetric sensor with photothermal ablation of Bacteria

机译:蒙脱石的可回收金属纳米颗粒固定化聚合物点,用于碱性磷酸酶的比色传感器,细菌的光热消融

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摘要

Development of simultaneous bacteria detection and eradication with simple, rapid, and reusable material is important in addressing bacterial contamination issues. In this study, we utilized the expression of alkaline phosphatase (ALP) from bacteria to design fluorescence ON/OFF system for bacteria detection, also using metal oxide nanoparticle for obtaining antibacterial activity and recyclability. The fluorescent-based biosensor with antibacterial activity was prepared by intercalating ALP-sensitive polymer dot (PD) containing beta-cyclodextrin (beta-CD) onto montmorillonite (MMT) as loading matrix via ionic exchange reaction, followed by immobilization of magnetic iron oxide (Fe3O4) and NIR-responsive cesium tungsten oxide (CsWO3). The PD-beta CD-MMT/Fe3O4-CsWO3 nanocomposite exhibited strong fluorescence intensity, which was quenched in the presence of bacterial ALP (0-1000 U/L) due to hydrolysis of p-nitrophenyl phosphate (NPP) into p-nitrophenol (NP) in the hydrophobic site of beta-CD. Furthermore, the nanocomposite could detect both gram-negative Escherichia coli and gram-positive Staphylococcus aureus in the range of 10(1)-10(7) CFU/mL (LOD 5.09 and 4.62 CFU/mL, respectively), and showed high antibacterial activity against bacteria by generating photothermal heat under 5 min NIR irradiation, causing damage to bacterial cells. This material also demonstrated recyclability via magnetic field exposure due to the presence of Fe3O4. In addition, the fluorescence can be recovered following pH shock and re-conjugation of beta-CD molecules. After 4 cycles, nanocomposite still showed stable photothermal effects and fluorescence-based bacteria detection. Thus, this reusable material offers promising approach for simultaneous bacteria detection and killing, which is simple, rapid, and effective. (C) 2019 Elsevier B.V. All rights reserved.
机译:通过简单,快速,可重复使用的材料的同时细菌检测和消除的发展在解决细菌污染问题方面很重要。在该研究中,我们利用来自细菌的碱性磷酸酶(ALP)的表达来设计用于细菌检测的荧光ON / OFF系统,也使用金属氧化物纳米粒子获得抗菌活性和可回收性。通过将含有β-环糊精(β-CD)的Alp敏感的聚合物点(Pd)嵌入到蒙脱石(MMT)中,通过离子交换反应加载基质,然后固定磁铁氧化铁( Fe3O4)和NIR响应铯氧化铯(CSWO3)。 PD-Beta CD-MMT / Fe3O4-CSWO3纳米复合材料表现出强烈的荧光强度,其由于对硝基苯基磷酸(NPP)的水解而存在于细菌ALP(0-1000 U / L)中淬火( NP)在β-CD的疏水位置。此外,纳米复合材料可以在10(1)-10(7)CFU / mL(分别为5.09和4.62 CFU / ml)的范围内检测革兰氏阴性大肠杆菌和革兰氏阳性金黄色葡萄球菌,并显示出高抗菌剂通过在5分钟的NIR照射下产生光热热,对细菌的活性产生活性,导致细菌细胞损伤。由于Fe3O4的存在,该材料还通过磁场暴露来证明可回收性。另外,可以在pH休克后回收荧光并再缀合β-CD分子。 4个循环后,纳米复合材料仍显示出稳定的光热效应和基于荧光的细菌检测。因此,这种可重复使用的材料提供了具有同时细菌检测和杀戮的有希望的方法,这简单,快速,有效。 (c)2019年Elsevier B.V.保留所有权利。

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