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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 electrochemical sensing platform for microRNA based on tungsten oxide-graphene composites coupling with catalyzed hairpin assembly target recycling and enzyme signal amplification
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Ultrasensitive electrochemical sensing platform for microRNA based on tungsten oxide-graphene composites coupling with catalyzed hairpin assembly target recycling and enzyme signal amplification

机译:基于氧化钨-石墨烯复合材料与催化发夹组装靶标回收和酶信号放大的microRNA超灵敏电化学传感平台

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An ultrasensitive electrochemical biosensor for microRNA (miRNA) is developed based on tungsten oxide-graphene composites coupling with catalyzed hairpin assembly target recycling and enzyme signal amplification. WO3-Gr is prepared by a simple hydrothermal method and then coupled with gold nanoparticles to act as a sensing platform. The thiol-terminated capture probe H1 is immobilized on electrode through Au-S interaction, In the presence of target miRNA, H1 opens its hairpin structure by hybridization with target miRNA. This hybridization can be displaced from the structure by another stable biotinylated hairpin DNA (H2), and target miRNA is released back to the sample solution for next cycle. Thus, a large amount of H1-H2 duplex is produced after the cyclic process. At this point, a lot of signal indicators streptavidin-conjugated alkaline phosphatase (SA-ALP) are. immobilized on the electrode by the specific binding of avidin-biotin. Then, thousands of ascorbic acid, which is the enzymatic product of ALP, induces the electrochemical-chemical-chemical redox cycling to produce a strongly electrochemical response in the presence of ferrocene methanol and tris (2-carboxyethyl) phosphine. Under the optimal experimental conditions, the established biosensor can detect target miRNA down to 0.05 fM (S/N=3) with a linear range from 0.1 fM to 100 pM, and discriminate target miRNA from mismatched miRNA with a high selectivity. (C) 2016 Elsevier B.V. All rights reserved.
机译:基于氧化钨-石墨烯复合材料与催化的发夹组装靶回收和酶信号放大相结合的超微小分子(miRNA)电化学生物传感器的开发。 WO3-Gr通过简单的水热法制备,然后与金纳米粒子偶联以充当传感平台。巯基终止的捕获探针H1通过Au-S相互作用固定在电极上。在存在目标miRNA的情况下,H1通过与目标miRNA杂交来打开其发夹结构。可以通过另一个稳定的生物素化发夹DNA(H2)将这种杂交从结构上移开,并将目标miRNA释放回样品溶液中进行下一个循环。因此,在循环过程之后产生大量的H1-H2双链体。此时,许多信号指示剂是链霉亲和素缀合的碱性磷酸酶(SA-ALP)。通过抗生物素蛋白-生物素的特异性结合固定在电极上。然后,在二茂铁甲醇和三(2-羧乙基)膦存在下,成千上万的抗坏血酸(ALP的酶促产物)诱导电化学-化学-化学氧化还原循环,从而产生强烈的电化学反应。在最佳实验条件下,已建立的生物传感器可以检测低至0.05 fM(S / N = 3)的靶标miRNA,线性范围从0.1 fM到100 pM,并以高选择性将靶标miRNA与错配的miRNA进行区分。 (C)2016 Elsevier B.V.保留所有权利。

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