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Probing molecular interactions with methylene blue derivatized self-assembled monolayers

机译:探索与亚甲蓝衍生的自组装单分子层的分子相互作用

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Abstract The emergence of stratified and personalised medicine and the associated need for highly multiplexed detection strategies are driving the development of innovative sensor technology. Electronic immunosensor arrays capable of label-free and highly parallel monitoring of ligand binding have emerged as a particularly promising technology capable of meeting these new diagnostic challenges. In this study, we present an approach for interrogating molecular interactions electronically using redox active molecular monolayers. Specifically, we have synthesised self-assembled molecular monolayers assembled from long-chain alkanethiols (LCAT) incorporating oligoethyleneglycol (OEG) linkers that can be derivatized with a range of functional groups, including the redox active molecule methylene blue. Critically, we show that the electron transport properties of this redox-active monolayer are highly sensitive to the electrochemical environment, including the local concentration of protons and the electrostatic potential at the plane of electron transfer. Using a combination of cyclic voltammetry and QCM-D to study in detail the behaviour of the monolayer during functionalisation and analyte binding, we demonstrate that these redox properties can be exploited for the electrochemical sensing of molecular interactions (biotin–avidin in our case) on SAMs. Given the versatility of LCAT-OEG monolayers, in terms of linker lengths, choice of functional group, and ability to create mixed component layers and the straight-forward assembly of mixed {SAMs} of high quality, our electrochemical sensing approach forms an excellent and generic label-free platform for probing a wide range of molecular interactions.
机译:摘要分层和个性化医学的出现以及对高度多重检测策略的相关需求正在推动创新传感器技术的发展。能够无标记且高度平行监测配体结合的电子免疫传感器阵列已成为一种特别有希望的技术,能够应对这些新的诊断挑战。在这项研究中,我们提出了一种使用氧化还原活性分子单层电子查询分子相互作用的方法。具体来说,我们已经合成了由长链烷硫醇(LCAT)组装而成的自组装分子单分子层,其中长链烷硫醇(OLCAT)掺入了可通过一系列功能基团衍生化的低聚乙二醇(OEG)接头,包括氧化还原活性分子亚甲基蓝。至关重要的是,我们表明该氧化还原活性单分子层的电子传输特性对电化学环境高度敏感,包括质子的局部浓度和电子转移平面上的静电势。使用循环伏安法和QCM-D的组合来详细研究功能化和分析物结合过程中单分子层的行为,我们证明了这些氧化还原特性可用于电化学传感分子相互作用(在我们的情况下为生物素-亲和素) SAM。鉴于LCAT-OEG单层的多功能性,从连接子的长度,官能团的选择以及创建混合组分层的能力以及高质量的混合{SAMs}的直接组装的角度来看,我们的电化学传感方法形成了一种出色的通用的无标记平台,可用于探测广泛的分子相互作用。

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