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Electrochemical Impedimetric Study of Non-Watson–Crick Base Pairs of DNA

机译:非沃森 - 克里克碱对DNA的电化学阻抗研究

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摘要

Electrochemical impedance spectroscopy (EIS) was used to detect non-Watson–Crick base pairs of DNA. Thiol-modified DNA as a probe and mercaptohexanol (MCH) were co-immobilized to form a DNA/MCH mixed self-assembled monolayer on a gold electrode surface and then hybridized with complementary DNAs. The DNA layers were measured by the EIS method and interpreted by equivalent circuits. Every terminal base mismatch of the DNA duplex brought about an increase in the charge-transfer resistance (R _(ct)), unlike the case with a fully matched DNA duplex. The value of R _(ct) was highly sensitive to the number of base mismatches for both unpaired and overhang DNA at the terminal. For internal base mismatches, however, no significant increase in R _(ct) was observed. These experimental results proved that the charge transfer of redox molecules to the electrode surface is largely hindered by an end fraying motion due to base unpairing and dangling overhang. EIS was able to detect these steric properties of DNA strands. Furthermore, an electrode modified with G-quadruplex (G4) DNA demonstrated the influences of bulkiness and loop structure on the accessibility of the redox probe to the electrode.
机译:电化学阻抗光谱(EIS)用于检测非Watson-Crick碱基对DNA。将硫醇改性的DNA作为探针和巯基己醇(MCH)共固定,以在金电极表面上形成DNA / MCH混合的自组装单层,然后用互补的DNA杂交。通过EIS方法测量DNA层,并通过等效电路解释。与完全匹配的DNA双链体的情况不同,DNA双相的每个终端基础均未增加电荷转移电阻( R _(CT))。 r _(ct)的值对终端未配对和悬垂DNA的碱性不匹配数非常敏感。然而,对于内部基础不匹配,观察到 R _(CT)没有显着增加。这些实验结果证明,由于基部不配位和悬空悬垂,氧化还原分子对电极表面的氧化还原分子的电荷转移主要受到终端磨损运动。 EIS能够检测DNA链的这些空间特性。此外,用G-Quadreplex(G4)DNA改性的电极证明了大容量和环形结构对氧化还原探针的可访问性的影响。

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