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Electrochemical Sensing and Biosensing Platform Based on Chemically Reduced Graphene Oxide

机译:基于化学还原氧化石墨烯的电化学传感和生物传感平台

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In this paper, the characterization and application of a chemically reduced graphene oxide modified glassy carbon (CR-GO/GC) electrode, a novel electrode system, for the preparation of electrochemical sensing and biosensing platform are proposed. Different kinds of important inorganic and organic electroactive compounds (i.e., probe molecule (potassium ferricyanide), free bases of DNA (guanine (G), adenine (A), thymine (T), and cytosine (C)), oxidase/dehydrogenase-related molecules (hydrogen peroxide (H_(2)O_(2))/beta-nicotinamide adenine dinucleotide (NADH)), neurotransmitters (dopamine (DA)), and other biological molecules (ascorbic acid (AA), uric acid (UA), and acetaminophen (APAP)) were employed to study their electrochemical responses at the CR-GO/GC electrode, which shows more favorable electron transfer kinetics than graphite modified glassy carbon (graphite/GC) and glassy carbon (GC) electrodes. The greatly enhanced electrochemical reactivity of the four free bases of DNA at the CR-GO/GC electrode compared with that at graphite/GC and GC electrodes makes the CR-GO/GC electrode a better choice for the electrochemical biosensing of four DNA bases in both the single-stranded DNA (ssDNA) and double-stranded DNA (dsDNA) at physiological pH without a prehydrolysis step. This allows us to detect a single-nucleotide polymorphism (SNP) site for short oligomers with a particular sequence at the CR-GO/GC electrode without any hybridization or labeling processes in this work, suggesting the potential applications of CR-GO in the label-free electrochemical detection of DNA hybridization or DNA damage for further research. Based on the greatly enhanced electrochemical reactivity of H_(2)O_(2) and NADH at the CR-GO/GC electrode, CR-GO/GC electrode-based bioelectrodes (in connection with glucose oxidase (GOD) and alcohol dehydrogenase (ADH)) show a better analytical performance for the detection of glucose and ethanol compared with graphite/GC- or GC-based bioelectrodes. By comparing the electrochemical performance of CR-GO with that of the conventional graphite and GC, we reveal that CR-GO with the nature of a single sheet showing favorable electrochemical activity should be a kind of more robust and advanced carbon electrode material which may hold great promise for electrochemical sensors and biosensors design.
机译:本文提出了一种化学还原型氧化石墨烯修饰的玻碳(CR-GO / GC)电极的表征和应用,该电极系统用于制备电化学传感和生物传感平台。不同种类的重要无机和有机电活性化合物(例如,探针分子(铁氰化钾),DNA的游离碱(鸟嘌呤(G),腺嘌呤(A),胸腺嘧啶(T)和胞嘧啶(C)),氧化酶/脱氢酶相关分子(过氧化氢(H_(2)O_(2))/β-烟酰胺腺嘌呤二核苷酸(NADH)),神经递质(多巴胺(DA))和其他生物分子(抗坏血酸(AA),尿酸(UA) ,和对乙酰氨基酚(APAP)用于研究它们在CR-GO / GC电极上的电化学响应,与石墨修饰的玻璃碳(石墨/ GC)和玻璃碳(GC)电极相比,显示出更有利的电子传递动力学。与石墨/ GC和GC电极相比,CR-GO / GC电极上DNA的四个游离碱基具有增强的电化学反应性,这使得CR-GO / GC电极成为两个电极中四个DNA碱基的电化学生物传感的更好选择。单链DNA(ssDNA)和双链DNA(dsDNA)生理pH,无需预水解步骤。这使我们能够在CR-GO / GC电极上检测具有特定序列的短寡核苷酸的单核苷酸多态性(SNP)位点,而无需进行任何杂交或标记过程,这表明CR-GO在标记中的潜在应用DNA杂交或DNA损伤的无电化学检测有待进一步研究。基于H_(2)O_(2)和NADH在CR-GO / GC电极上的电化学反应性大大提高,基于CR-GO / GC电极的生物电极(与葡萄糖氧化酶(GOD)和醇脱氢酶(ADH)有关) ))与基于石墨/ GC或GC的生物电极相比,在检测葡萄糖和乙醇方面表现出更好的分析性能。通过比较CR-GO与常规石墨和GC的电化学性能,我们发现具有单片性质且显示出良好电化学活性的CR-GO应该是一种更坚固,更先进的碳电极材料,可以保持电化学传感器和生物传感器设计的巨大前景。

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