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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Ultrasensitive biosensor for microRNA-155 using synergistically catalytic nanoprobe coupled with improved cascade strand displacement reaction
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Ultrasensitive biosensor for microRNA-155 using synergistically catalytic nanoprobe coupled with improved cascade strand displacement reaction

机译:微小润润催化纳米孔与改进的级联链排量反应相结合的微静脉内体传感器

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摘要

MicroRNAs, essential for gene expression and physiological regulation, are considered to be reliable biomarkers for the early diagnosis and treatment of cancers. Herein, a sensitive biosensor that uses a synergistically catalytic nanoprobe and improved toehold strand displacement reaction (TSDR) has been fabricated, and successfully applied to microRNA-155 (miR-155) detection. A nanoscale copper-based metal organic framework assembled by Pt nanoparticles and horseradish peroxidase (Cu-NMOF@PtNPs/HRP) served as a co-catalytic nanoprobe and was coupled with improved TSDR to achieve multiple amplifications. In the absence of miR-155, the tetrahedral DNA nanostructures (TDNs) immobilized on the gold electrode were independent of the TSDR system because of the binding of the shielding region of the locked probe (LP) with the template probe (TP). Instead, the target would initiate the TSDR system, leading to the conformational change of TDNs and hybridization of the nanoprobe. Cu-NMOF@PtNPs/HRP exhibited extraordinary catalytic property towards the hydroquinone-hydrogen peroxide system, demonstrating that the nanoprobe exerted a concerted effect on the electrochemical performance of the biosensor. Under optimal conditions, the cathodic current exhibited a logarithmic relation over 0.50-1.0 x 10(5)fM miR-155, with a detection limit of 0.13 fM, indicating that the constructed biosensor has considerable potential in the field of clinical disease diagnostics for miR-155.
机译:MicroRNAS,基因表达和生理调节必不可少,被认为是可靠的生物标志物,用于早期诊断和治疗癌症。这里,已经制造了一种使用协同催化纳米孔和改善的往返链置换反应(TSDR)的敏感生物传感器,并成功地应用于MicroRNA-155(miR-155)检测。由PT纳米粒子和辣根过氧化物酶组装的纳米级铜基金属有机框架用作辅助纳米孔,并与改进的TSDR偶联以实现多重扩增。在不存在miR-155的情况下,由于锁定探针(LP)的屏蔽区域与模板探针(TP)的结合,因此固定在金电极上的四面体DNA纳米结构(TDN)与TSDR系统无关。相反,目标将启动TSDR系统,导致TDNS的构象变化和纳米孔的杂交。 Cu-NMOF @ PTNP / HRP向氢醌 - 氢过氧化氢系统表现出非凡的催化性质,表明纳米骨骨对生物传感器的电化学性能进行了齐心协力。在最佳条件下,阴极电流显示出超过0.50-1.0×10(5)件FM miR-155的对数关系,检测限为0.13 fm,表明构建的生物传感器在MIR的临床疾病诊断领域具有相当大的潜力-155。

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