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用于电化学检测微小RNA-21的鞭毛模板上钯纳米线的合成

Synthesis of Palladium Nanowires on Flagella Template for Electrochemical Biosensor Detection of microRNA-21.

作者信息

Yang Kuo, Wang Jueyu, Zhang Ying, Cui Daizong, Zhao Min

机构信息

College of Life Science, Northeast Forestry University, Harbin 150000, China.

出版信息

Biology (Basel). 2024 Nov 22;13(12):960. doi: 10.3390/biology13120960.

Abstract

In recent years, the use of bacterial flagella as biomimetic templates has gained increasing attention in nanomaterial synthesis due to their unique structural and functional properties. In this study, we optimized the flagella extraction method and achieved a high concentration of flagella solution. Flagella were isolated from . Surface characterization revealed that the flagella had abundant functional groups, such as amino and carboxyl groups, which can serve as nucleation sites for the controlled nucleation and growth of metal nanomaterials. Using bacterial flagella as a template, we synthesized one-dimensional palladium nanowires (Fla-Pd NWs). The results of morphological and phase analyses showed that the synthesized palladium nanoparticles were uniformly and densely distributed on the surface of the flagella. Moreover, the Fla-Pd nanowires exhibited superior electrocatalytic activity, which was applied to develop an electrochemical biosensor. This biosensor was used to detect the early breast cancer biomarker microRNA-21 and exhibited a linear range of 0.66-1.98 µmol/L and a detection limit of 0.78 µmol/L. The method demonstrated high selectivity and reusability, making it a promising strategy for early cancer diagnosis.

摘要

近年来,由于细菌鞭毛独特的结构和功能特性,其作为仿生模板在纳米材料合成中受到越来越多的关注。在本研究中,我们优化了鞭毛提取方法,获得了高浓度的鞭毛溶液。鞭毛从……中分离出来。表面表征显示,鞭毛具有丰富的官能团,如氨基和羧基,可作为金属纳米材料可控成核和生长的成核位点。以细菌鞭毛为模板,我们合成了一维钯纳米线(Fla-Pd NWs)。形态和相分析结果表明,合成的钯纳米颗粒均匀且密集地分布在鞭毛表面。此外,Fla-Pd纳米线表现出优异的电催化活性,并被应用于开发一种电化学生物传感器。该生物传感器用于检测早期乳腺癌生物标志物微小RNA-21,线性范围为0.66 - 1.98 µmol/L,检测限为0.78 µmol/L。该方法具有高选择性和可重复性,使其成为早期癌症诊断的一种有前景的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e53/11727094/97dc90872c37/biology-13-00960-g001.jpg

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