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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Enhanced photoelectrochemical aptasensing platform amplified through the sensitization effect of CdTe@CdS core-shell quantum dots coupled with exonuclease-I assisted target recycling
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Enhanced photoelectrochemical aptasensing platform amplified through the sensitization effect of CdTe@CdS core-shell quantum dots coupled with exonuclease-I assisted target recycling

机译:通过CdTe @ CdS核壳量子点与核酸外切酶-I辅助的靶标回收的增敏作用增强了增强的光电化学适体平台

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A novel, enhanced photoelectrochemical aptasensing platform was developed through integrating the sensitization effect of CdTe@CdS core-shell quantum dots (QDs) coupled with exonuclease-I (Exo-I) assisted target recycling for significant signal amplification. Carcinoembryonic antigen (CEA) was selected as the target analyte to exhibit the analytical performance of this platform. Specifically, nitrogen-doped mesoporous TiO2 (mTiO(2.): N) was firstly synthesized through an evaporation-induced self-assembly (EISA) method. Then, an mTiO(2): N/Au hybrid structure was prepared through depositing Au nanoparticles on the surface of the mTiO(2): N film and this acted as the photoelectrochemical matrix to immobilize the complementary DNA (cDNA) of the CEA aptamer probe (pDNA). CdTe@CdS core-shell QDs as sensitization agents were covalently bound at the front-end of pDNA. After pDNA was hybridized with cDNA, the labels of the CdTe@CdS core-shell QDs were very close to the mTiO(2): N/Au electrode surface, resulting in an evidently enhanced photocurrent intensity due to the generation of the sensitization effect. When the aptasensor was incubated with CEA and Exo-I simultaneously, CdTe@CdS QD labeled pDNA (denoted QD-pDNA) became specifically bound with CEA and meanwhile was separated from the electrode surface, leading to an obviously weakened sensitization effect and a decreased photocurrent intensity. Moreover, as Exo-I could digest the single strand form of pDNA, the previously bound CEA was released and continuously interacted with the rest of the pDNA on the electrode surface, causing further decreased photocurrent intensity. The well-designed photoelectrochemical aptasensor exhibited a low detection limit of 0.12 pg mL(-1) and a wide linear range from 0.5 pg mL(-1) to 10 ng mL(-1) for CEA detection, and it also showed good selectivity, reproducibility and stability. The proposed signal amplification strategy provides a promising universal photoelectrochemical platform for sensitively detecting various biomolecules at low levels.
机译:通过整合CdTe @ CdS核壳量子点(QD)的增敏作用与核酸外切酶I(Exo-I)辅助的靶标回收,开发出了一种新型的增强型光电化学适体平台,可有效放大信号。选择癌胚抗原(CEA)作为目标分析物,以展示该平台的分析性能。具体而言,首先通过蒸发诱导自组装(EISA)方法合成了氮掺杂的介孔TiO2(mTiO(2。):N)。然后,通过将Au纳米颗粒沉积在mTiO(2):N膜的表面上来制备mTiO(2):N / Au杂化结构,该结构充当光电化学基质以固定CEA适体的互补DNA(cDNA)探针(pDNA)。 CdTe @ CdS核壳量子点作为敏化剂共价结合在pDNA的前端。 pDNA与cDNA杂交后,CdTe @ CdS核壳QD的标记非常接近mTiO(2):N / Au电极表面,由于产生了敏化效应,导致光电流强度明显增强。当将适体传感器与CEA和Exo-I同时孵育时,CdTe @ CdS QD标记的pDNA(称为QD-pDNA)变得与CEA特异结合,同时与电极表面分离,导致敏化作用明显减弱,光电流降低。强度。此外,由于Exo-I可以消化pDNA的单链形式,因此释放了先前结合的CEA,并与电极表面上的其余pDNA持续相互作用,从而导致光电流强度进一步降低。设计良好的光电化学适体传感器对CEA的检测限低,为0.12 pg mL(-1),线性范围从0.5 pg mL(-1)到10 ng mL(-1),并且具有良好的选择性,重现性和稳定性。拟议的信号放大策略为灵敏地检测各种低水平的生物分子提供了一个有希望的通用光电化学平台。

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