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首页> 外文期刊>ACS nano >DNA-Tetrahedral-Nanostructure-Based Entropy-Driven Amplifier for High-Performance Photoelectrochemical Biosensing
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DNA-Tetrahedral-Nanostructure-Based Entropy-Driven Amplifier for High-Performance Photoelectrochemical Biosensing

机译:基于DNA-四面体 - 纳米结构的熵驱动放大器,用于高性能光电化学生物传感

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摘要

In virtue of the inherent molecular recognition and programmability, DNA has recently become the most promising for high-performance biosensors. The rationally engineered nucleic acid architecture will be very advantageous to hybridization eff iciency, specificity, and sensitivity. Herein, a robust and split-mode photoelectrochemical (PEC) biosensor for miRNA-196a was developed based on an entropy-driven tetrahedral DNA (EDTD) amplifier coupled with superparamagnetic nanostructures. The DNA tetrahedron structure features in rigidity and structural stability that contribute to obtain precise identification units and specific orientations, improving the hybridization efficiency, sensitivity, and selectivity of the as-designed PEC biosensor. Further, superparamagnetic Fe3O4@SiO2@CdS particles integrated with DNA nanostructures are beneficial for the construction of a split-mode, highly selective, and reliable PEC biosensor. Particularly, the enzyme- and hairpin-free EDTD amplifier eliminates unnecessary interference from the complex secondary structure of pseudoknots or kissing loops in typical hairpin DNAs, significantly lowers the background noise, and improves the detection sensitivity. This PEC biosensor is capable of monitoring miRNA-196a in practical settings with additional advantages of efficient electrode fabrication, stability, and reproducibility. This strategy can be extended to various miRNA assays in complex biological systems with excellent performance.
机译:由于其固有的分子识别和可编程性,DNA最近成为高性能生物传感器中最有前途的一种。合理设计的核酸结构将有利于杂交效率、特异性和敏感性。在此,基于熵驱动的四面体DNA(EDTD)放大器和超顺磁性纳米结构,开发了一种用于miRNA-196a的稳健的分模光电化学(PEC)生物传感器。DNA四面体结构具有刚性和结构稳定性,有助于获得精确的识别单元和特定方向,提高设计的PEC生物传感器的杂交效率、灵敏度和选择性。此外,超顺磁性Fe3O4@SiO2@与DNA纳米结构结合的CdS颗粒有利于构建分裂模式、高选择性和可靠的PEC生物传感器。特别是,无酶和发夹的EDTD放大器消除了来自典型发夹DNA中假结或吻环的复杂二级结构的不必要干扰,显著降低了背景噪声,并提高了检测灵敏度。这种PEC生物传感器能够在实际环境中监测miRNA-196a,具有高效电极制作、稳定性和再现性等额外优势。该策略可以扩展到复杂生物系统中的各种miRNA分析,并具有优异的性能。

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