Shan Li, Chen Yuanyuan, Tan Xiaoran, Ge Shenguang, Zhang Lina, Li Lin, Yu Jinghua, Li Li
School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.
Institute for Advanced Interdisciplinary Research, University of Jinan, Jinan 250022, P. R. China.
Anal Chem. 2023 Mar 14;95(10):4760-4767. doi: 10.1021/acs.analchem.2c05686. Epub 2023 Mar 1.
Herein, a newly designed two-in-one tetrahedral DNA (TDN) nanostructure with an antifouling surface and backbone-rigidified interfacial tracks was developed for highly sensitive and selective detection of miRNA-182-5p. The well-regulated TDN tracks were assembled onto the surface of the TiO/MIL-125-NH-functionalized paper electrode, which efficiently avoided the obstacle of DNA strand tangling and decreased the probability of suspension during the walking process, thus greatly promoting the moving efficiency of DNA walkers. More interestingly, the TDN-modified sensing interfaces demonstrated incomparable antifouling ability against protein samples and interfering miRNAs due to the strong hydrophilic capacity and special molecular conformations, which addressed the dilemma of low sensitivity from traditional antifouling coating strategies. As a proof of concept, the designed bifunctional tetrahedron-modified paper-based photoelectrochemical sensor was successfully used to quantify miRNA-182-5p with a low detection limit of 0.09 fM and high specificity and was validated for monitoring of miRNA-182-5p in real samples. This TDN-engineered biointerface could be used as a universal platform for tracking various targets by substituting the biorecognition events, providing great promise for bioanalysis and clinical diagnosis.
在此,我们开发了一种新设计的具有防污表面和主链刚性化界面轨道的二合一四面体DNA(TDN)纳米结构,用于高灵敏度和选择性地检测miRNA-182-5p。经过良好调控的TDN轨道组装在TiO/MIL-125-NH功能化纸电极表面,有效避免了DNA链缠结的障碍,并降低了行走过程中悬浮的概率,从而极大地提高了DNA步行器的移动效率。更有趣的是,由于具有强大的亲水性和特殊的分子构象,TDN修饰的传感界面表现出对蛋白质样品和干扰性miRNA无与伦比的防污能力,解决了传统防污涂层策略灵敏度低的困境。作为概念验证,所设计的双功能四面体修饰的纸基光电化学传感器成功用于定量检测miRNA-182-5p,检测限低至0.09 fM,特异性高,并在实际样品中用于监测miRNA-182-5p。这种TDN工程化的生物界面可以通过替换生物识别事件作为追踪各种目标的通用平台,为生物分析和临床诊断带来巨大希望。