4.6 Article

Highly Sensitive Indicator-Free Impedance Sensing of DNA Hybridization Based on Poly(m-aminobenzenesulfonic acid)/TiO2 Nanosheet Membranes with Pulse Potentiostatic Method Preparation

期刊

CHEMISTRY-A EUROPEAN JOURNAL
卷 16, 期 6, 页码 1992-1999

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.200901870

关键词

DNA; indicator-free impedance; membranes; nanostructures; pulse potentiostatic method

资金

  1. National Natural Science Foundation of China [20635020, 20805025, 20975057]
  2. Doctoral Foundation of the Ministry of Education of China [20060426001]
  3. Foundation of Qingdao City [09-1-3-25-jch]
  4. Doctoral Fund of OUST [0022278]

向作者/读者索取更多资源

A direct electrochemical detection procedure for DNA hybridization by using the electrochemical signal changes of conductive poly(m-amino-benzenesulfonic) acid (PABSA)/TiO2 nanosheet membranes, which were electropolymerized by using the pulse Potentiostatic method, is reported. Due to the unique properties of TiO2 nanoparticles, m-aminobenzenesulfonic acid monomers tend to be adsorbed around the particles, and the electropolymerization efficiency is greatly improved. The combination of TiO2 nanoparticles and PABSA resulted in a nanocomposite membrane with unique and novel nanosheet morphology that provides more activation sites and enhances the Surface electron-transfer rate. These characteristics were propitious for the magnification of PABSA electrochemical signals and the direct detection of DNA hybridization. Owing to the presence of abundant sulfonic acid groups, PABSA could overcome the drawbacks of polyaniline and be used to detect bioanalytes at physiological pH. DNA probes could be covalently attached to the sulfonic groups through the amines of DNA sequences by using an acyl chloride cross-linking reaction. After immobilization of probe DNA, the electrochemical impedance value increased significantly compared to that of PABSA/TiO2 nanosheet membranes. and then decreased dramatically after the hybridization reaction of the probe DNA with the complementary DNA sequence compared to that of the probe-immobilized electrode. Electrochemical impedance spectroscopy was adopted for indicator-free DNA bio-sensing, which had an eminent ability for the recognition between double-base mismatched sequences or non-complementary DNA sequences and complementary DNA sequences. A gene fragment. which is related to one of the screening genes for the transgenically modified plants, the cauliflower mosaic virus 35S gene was satisfactorily detected. This is the first report for the indicator-free impedance DNA hybridization detection by using PABSA/TiO2 membranes under neutral conditions.

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