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基于肽增强血红素/G-四链体电催化和纳米复合材料作为纳米载体的高灵敏电化学凝血酶适体传感器。

Highly sensitive electrochemical thrombin aptasensor based on peptide-enhanced electrocatalysis of hemin/G-quadruplex and nanocomposite as nanocarrier.

机构信息

College of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou 450001, PR China.

College of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou 450001, PR China.

出版信息

Biosens Bioelectron. 2017 Nov 15;97:317-324. doi: 10.1016/j.bios.2017.06.023. Epub 2017 Jun 11.

Abstract

In this work, we first conjugated a short peptide to thrombin binding aptamer (TBA) and bond hemin to the hybrid, effectively rendering hemin/G4-peptide more active over the original hemin/G4, so that a highly sensitive electrochemical thrombin (TB) aptasensor was developed based on it and PtNTs@rGO nanocomposite. It was the first report on the application of hemin/G4-peptide in electrochemical aptasensor. PtNTs@rGO with large surface area served as excellent nanocarrier for high loading of hemin/G4-peptide hybrids, resulting in the formation of hemin/G4-peptide-PtNTs@rGO bioconjugate as the secondary aptamer and further signal enhancement. The specific affinity of aptamer for target TB made the secondary aptamer go into the sensing interface, and then a noticeable current signal was obtained from hemin without additional redox mediators. Due to the collaborative electrocatalysis of hemin/G4-peptide and PtNTs toward HO, which was formed in situ during the process of hemin/G4-peptide-catalyzed oxidation of NADH with dissolved O, the current intensity increased dramatically. Such an electrochemical aptasensing system could be used to detect TB with a linear range of 0.05 pM-60nM and very lower detection limit of 15fM. Notably, this method exhibited a higher sensitivity than that of many hemin/G4-based electrochemical strategies for TB detection due to the improvement of the catalytic activity of hemin/G4-peptide. The present works opened a new way for expanding the application of hemin/G4 in biological detection. With the mediator-free, proteinous enzyme-free yet high-sensitivity advantages, this electrochemical aptasensor held great promise for other biomarker detections in clinical diagnostics.

摘要

在这项工作中,我们首先将一个短肽与凝血酶结合适体(TBA)缀合,并将血红素键合到该杂交物上,从而使血红素/G4-肽比原始血红素/G4 更具活性,因此基于它和 PtNTs@rGO 纳米复合材料开发了一种高灵敏度的电化学凝血酶(TB)适体传感器。这是血红素/G4-肽在电化学适体传感器中应用的首次报道。具有大表面积的 PtNTs@rGO 用作血红素/G4-肽杂交物的高负载的优异纳米载体,导致形成血红素/G4-肽-PtNTs@rGO 生物缀合物作为二级适体并进一步增强信号。适体对靶 TB 的特异性亲和力使二级适体进入传感界面,然后从没有额外氧化还原介质的血红素中获得可察觉的电流信号。由于血红素/G4-肽和 PtNTs 对 HO 的协同电催化作用,HO 是在血红素/G4-肽催化 NADH 与溶解氧氧化过程中原位形成的,电流强度急剧增加。这种电化学适体传感系统可用于检测 TB,线性范围为 0.05 pM-60nM,检测限低至 15fM。值得注意的是,由于血红素/G4-肽催化活性的提高,该方法表现出比许多基于血红素/G4 的电化学策略更高的 TB 检测灵敏度。本工作为血红素/G4 在生物检测中的应用开辟了新途径。由于该电化学适体传感器具有无介体、无蛋白质酶且灵敏度高的优点,因此在临床诊断中对其他生物标志物的检测具有广阔的应用前景。

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