4.8 Article

Amplified Thrombin Aptasensor Based on Alkaline Phosphatase and Hemin/G-Quadruplex-Catalyzed Oxidation of 1-Naphthol

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 7, 期 19, 页码 10308-10315

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b00988

关键词

alkaline phosphatase; hemin/G-quadruplex; signal-amplified aptasensor; catalytic oxidation of 1-naphthol

资金

  1. National Natural Science Foundation of China [21275119, 51473136]
  2. Fundamental Research Funds for the Central Universities, China [XDJK2013A027, XDJK2014A012]

向作者/读者索取更多资源

An alkaline phosphatase (ALP)-based biosensor can in situ generate an electroactive product by enzymatic hydrolysis of inactive substptes. To obtain a higher signal-to-background ratio, a chemical redox cycling signal-amplified strategy based on the addition of a strong reducing agent has often be applied in the construction of ALP-based biosensors.. However, the strong reducing agent not only affects the activity of ALP but also -readily reacts with dissolved oxygen, leading to inaccurate results. In this work, a new signal-amplified strategy for a thrombin (TB) aptasensor based on the catalytic oxidation of ALP-generated products, 1-naphthol (NP), using hemin/G-quadruplex DNAzymes was reported. We implemented gold-nanoparticle-decorated zinc oxide nanoflowers (AuZnO) as the matrix for Munobiliiing ALP and TB aptamer (TBA) and then labeled it with hemin to form hemin/G-quadruplex/ALP/Au-ZnO bioconjugates (TBA II bioconjugates). Through a sandwich reaction, TBA II bioconjugates. were captured on the electrode surface. The amplified signal was carried out in two steps: (i) an ALP-catalyzed inactive substrate, 1-naphthyl phosphate (NPP), in situ produces NP on the surface of the electrode; on the one hand, NP as a new reactant could-be directly electro oxidized and generated an aectroChemical signal, but, on the other hand, NP could be oxidized by hemin/G-quadruplex in the presence of H2O2, resulting in amplification of the 'electrochemical signal. The proposed TB aptasensor achieved a linear range of 1 pM to 30 nM with a detection limit of 0.37 pM (defined as S/N = 3).

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