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基于双重信号电化学和光电流极性转换策略的高选择性和高灵敏度 microRNA-210 分析。

Highly Selective and Sensitive microRNA-210 Assay Based on Dual-Signaling Electrochemical and Photocurrent-Polarity-Switching Strategies.

机构信息

State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, P.R. China.

出版信息

Anal Chem. 2021 Oct 26;93(42):14272-14279. doi: 10.1021/acs.analchem.1c03354. Epub 2021 Oct 13.

Abstract

Highly sensitive and selective microRNA (miRNA) assay is of great significance for disease diagnosis and therapy. Herein, a magnetic-assisted electrochemistry (EC)-photoelectrochemistry (PEC) dual-mode biosensing platform was developed for miRNA-210 detection based on dual-signaling EC and photocurrent-polarity-switching PEC strategies. Porous magnetic FeO octahedra with a large surface area were synthesized by calcining Fe-based metal-organic frameworks. Subsequently, the magnetic photoelectric materials (FeO@CdS) were developed by the successive ionic layer adsorption and reaction method in Cd and S solutions. Then, the self-assembled DNA nanoprisms contained three thiols/hanging arms that could capture miRNA-210 efficiently and were anchored to the FeO@CdS octahedra via the Cd-S bond. When miRNA-210 was present, the double-stranded DNA concatemers [the self-assembled duplex helixes based on a pair of methylene blue (MB)-labeled single-stranded DNAs (AP1 and AP2) through the hybridization chain reaction and then intercalated with adriamycin (Dox) into their grooves] were connected with the FeO@CdS-DNA nanoprisms. MB and Dox not only acted as the electrochemical probes but also synergistically switched the photocurrent polarity of the FeO@CdS octahedra. Thus, miRNA-210 was assayed sensitively and selectively via the proposed EC-PEC dual-mode biosensing platform. Additionally, the abovementioned recognition steps occurred in a homogeneous system, and the effects of the impurities and interferences on the miRNA-210 assay could be easily avoided by magnetic separation due to the good magnetic properties of FeO octahedra. The proposed EC-PEC dual-mode biosensing platform showed a wide range of potential applications in bioanalysis and early diagnosis of disease.

摘要

高灵敏度和选择性的 microRNA (miRNA) 分析对于疾病的诊断和治疗具有重要意义。在此,基于双信号电化学 (EC) 和光电流极性转换光电化学 (PEC) 策略,我们开发了一种用于 miRNA-210 检测的磁辅助 EC-PEC 双模生物传感平台。通过在 Fe 基金属有机骨架中煅烧,合成了具有大表面积的多孔磁性 FeO 八面体。随后,通过 Cd 和 S 溶液中的连续离子层吸附和反应法,开发了磁性光电材料 (FeO@CdS)。然后,自组装的 DNA 纳米棱柱包含三个硫醇/悬挂臂,能够高效捕获 miRNA-210,并通过 Cd-S 键锚定在 FeO@CdS 八面体上。当存在 miRNA-210 时,双链 DNA 串联物[通过杂交链式反应基于一对亚甲基蓝 (MB) 标记的单链 DNA (AP1 和 AP2) 自组装的双链螺旋体,然后将阿霉素 (Dox) 插入其沟槽]与 FeO@CdS-DNA 纳米棱柱连接。MB 和 Dox 不仅充当电化学探针,还协同转换 FeO@CdS 八面体的光电流极性。因此,通过所提出的 EC-PEC 双模生物传感平台,可以灵敏且选择性地检测 miRNA-210。此外,由于 FeO 八面体具有良好的磁性,上述识别步骤在均相体系中进行,通过磁性分离可以很容易地避免杂质和干扰对 miRNA-210 测定的影响。所提出的 EC-PEC 双模生物传感平台在生物分析和疾病的早期诊断中具有广泛的潜在应用。

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