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Evaluation of Electrokinetic Parameters for All DNA Bases with Sputter Deposited Nanocarbon Film Electrode

机译:用溅射沉积纳米碳膜电极评估所有DNA碱基的电动参数

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The electrokinetic parameters of all the DNA bases were evaluated using a sputter-deposited nanocarbon film electrode. It is very difficult to evaluate the electrokinetic parameters of DNA bases with conventional electrodes, and particularly those of pyrimidine bases, owing to their high oxidation potentials. Nanocarbon film formed by employing an electron cyclotron resonance sputtering method consists of a nanocrystalline sp~2 and sp~3 mixed bond structure that exhibits a sufficient potential window, very low adsorption of DNA molecules, and sufficient electrochemical activity to oxidize all DNA bases. A precise evaluation of rate constants (k) between all the bases and the electrodes is achieved for the first time by obtaining rotating disc electrode measurements with our nanocarbon film electrode. We found that the k value of each DNA base was dominantly dependent on the surface oxygen-containing group of the nanocarbon film electrode, which was controlled by electrochemical pretreatment. In fact, the treated electrode exhibited optimum k values for all the mononucleotides, namely, 2.0 × 10~(-2), 2.5 × 10~(-1), 2.6 × 10~(-3), and 5.6 × 10~(-3) cm s~(-1) for GMP, AMP, TMP, and CMP, respectively. The k value of AMP was sufficiently enhanced by up to 33 times with electrochemical pretreatment. We also found the k values for pyrimidine bases to be much lower than those of purine bases although there was no large difference between their diffusion coefficient constants. Moreover, the theoretical oxidation potential values for all the bases coincided with those obtained in electrochemical experiments using our nanocarbon film electrode.
机译:使用溅射沉积的纳米碳膜电极评估所有DNA碱基的电动参数。由于具有很高的氧化电位,因此很难用常规电极来评估DNA碱基的电动参数,尤其是嘧啶碱基的电动参数。通过采用电子回旋共振溅射法形成的纳米碳膜由纳米晶的sp〜2和sp〜3混合键结构组成,该结构具有足够的电势窗口,对DNA分子的极低吸附以及足以氧化所有DNA碱基的电化学活性。通过使用我们的纳米碳膜电极获得转盘式电极的测量值,首次实现了所有基底与电极之间的速率常数(k)的精确评估。我们发现,每个DNA碱基的k值主要取决于纳米碳膜电极的表面含氧基团,而这是通过电化学预处理来控制的。实际上,经处理的电极对所有单核苷酸均显示最佳k值,即2.0×10〜(-2),2.5×10〜(-1),2.6×10〜(-3)和5.6×10〜(对于GMP,AMP,TMP和CMP分别为-3)cm s〜(-1)。通过电化学预处理,AMP的k值可充分提高33倍。我们还发现,虽然嘧啶碱基的扩散系数常数之间没有太大差异,但嘧啶碱基的k值远低于嘌呤碱基的k值。此外,所有碱的理论氧化电位值与使用我们的纳米碳膜电极的电化学实验中获得的值一致。

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