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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >An interface comprising molecular wires and poly(ethylene glycol) spacer units self-assembled on carbon electrodes for studies of protein electrochemistry
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An interface comprising molecular wires and poly(ethylene glycol) spacer units self-assembled on carbon electrodes for studies of protein electrochemistry

机译:一种接口,包括分子线和自组装在碳电极上的聚乙二醇间隔基单元,用于蛋白质电化学研究

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摘要

The characterization and application of a modified electrode interface for protein electrochemistry is reported. This generic interface is composed of a mixed monolayer of oligo(phenylethynylene) molecular wires (MWs) and poly(ethylene glycol)(PEG) deposited on glassy carbon electrodes by reductive adsorption of the respective aryl diazonium salts. Electrochemistry and scanning electron microscopy demonstrate that the PEG component exhibits a distinct decrease in nonspecific adsorption of blood serum and the proteins bovine serum albumin (BSA) and horseradish peroxidase (HRP) relative to a bare glassy carbon electrode. The ability of the MWs to facilitate efficient electron transfer through the PEG layer to the underlying electrode was demonstrated by covalently attaching ferrocenemethylamine to the end of the MWs. The calculated rate constant for this system was 229 +/- 30 s(-1). Covalent attachment of HRP to the MWs allowed direct electron transfer to the redox protein with almost ideal electrochemistry, indicating a specific interaction between the MW and HRP, with a rate constant of 13.4 +/- 2.3 s(-1). This rate constant is more rapid than previously reported for HRP shown to still be catalytically active. Retained catalytic activity of HRP was demonstrated by the enzyme responding to the addition of hydrogen peroxide. Similarly, by attaching myoglobin to the end of the MWs, a rate constant for this protein of 2 s(-1) was measured. The rigidity of the MWs, as well as it being longer than the PEG diluent, means this generic interface can be employed to investigate the electrochemistry of a wide range of redox proteins.
机译:报告了蛋白质电化学修饰电极界面的表征和应用。该通用界面由低聚(苯基亚乙炔基)分子线(MW)和聚(乙二醇)(PEG)的混合单层组成,通过还原吸附相应的芳基重氮盐沉积在玻璃碳电极上。电化学和扫描电子显微镜显示,相对于裸露的玻璃碳电极,PEG组分在血清和蛋白质牛血清白蛋白(BSA)和辣根过氧化物酶(HRP)的非特异性吸附方面表现出明显的降低。通过将二茂铁甲胺共价附于MWs末端,证明了MWs促进有效的电子通过PEG层转移至下面的电极的能力。该系统的计算速率常数为229 +/- 30 s(-1)。 HRP与MWs的共价结合使得电子可以直接转移到氧化还原蛋白上,具有理想的电化学性质,表明MW与HRP之间存在特定的相互作用,速率常数为13.4 +/- 2.3 s(-1)。该速率常数比以前报道的HRP仍具有催化活性要快得多。通过对过氧化氢的添加作出反应,证明了HRP保留了催化活性。同样,通过将肌红蛋白连接到MWs末端,测得该蛋白的速率常数为2 s(-1)。 MW的刚性以及比PEG稀释剂更长的刚性,意味着该通用界面可用于研究多种氧化还原蛋白的电化学。

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