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首页> 外文期刊>ACS applied materials & interfaces >Electron Transfer Mediated Electrochemical Biosensor for MicroRNAs Detection Based on Metal Ion Functionalized Titanium Phosphate Nanospheres at Attomole Level
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Electron Transfer Mediated Electrochemical Biosensor for MicroRNAs Detection Based on Metal Ion Functionalized Titanium Phosphate Nanospheres at Attomole Level

机译:基于金属离子功能化磷酸钛纳米球的原子转移介导的电化学检测MicroRNA的传感器。

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摘要

MicroRNAs (miRNAs) have emerged as new candidates as diagnostic and prognostic biomarkers for the detection of a wide variety of cancers; thus, sensitive and selective detection of microRNAs is significant for early-phase cancer diagnosis and disease prevention. A novel and simple electrochemical miRNA biosensor was developed using Cd2+-modified titanium phosphate nanoparticles as signal unit, two DNA as capture probes, and Ru(NH3)(63)(+) as electron transfer mediator. Large quantities of cadmium ions were mounted in titanium phosphate spheres to output the electrochemical signal. Because of the presence of Ru(NH3)(63)(+) molecules that interacted with DNA base-pairs as electron wire, the electrochemical signal significantly increased more than 5 times. This approach achieved a wide dynamic linear range from 1.0 aM to 10.0 pM with an ultralow limit detection of 0.76 aM, exerting a substantial enhancement in sensitivity. Moreover, the proposed biosensor was sufficiently selective to discriminate the target miRNAs from homologous miRNAs and could be used for rapid and direct analysis of miRNAs in human serum. Therefore, this strategy provides a new and ultrasensitive platform for miRNA expression profiling in biomedical research and clinical diagnosis.
机译:微小RNA(miRNA)作为检测多种癌症的诊断和预后生物标志物已成为新的候选者。因此,microRNA的灵敏和选择性检测对于早期癌症诊断和疾病预防具有重要意义。以Cd2 +修饰的磷酸钛纳米粒子为信号单元,两个DNA为捕获探针,以Ru(NH3)(63)(+)作为电子传递介质,开发了一种新颖,简单的电化学miRNA生物传感器。将大量镉离子安装在磷酸钛球中,以输出电化学信号。由于Ru(NH3)(63)(+)分子与DNA碱基对作为电子线相互作用,因此电化学信号显着增加了5倍以上。该方法实现了从1.0 aM到10.0 pM的宽动态线性范围,以及0.76 aM的超低限检测,从而大大提高了灵敏度。此外,提出的生物传感器具有足够的选择性,可以将目标miRNA与同源miRNA区别开来,并可用于快速直接分析人血清中的miRNA。因此,该策略为生物医学研究和临床诊断中的miRNA表达谱提供了一个新的超灵敏平台。

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