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Polymers, catalysts and nanostructures : a hybrid approach to biomolecule detection

机译:聚合物,催化剂和纳米结构:生物分子检测的混合方法

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摘要

The main goals in electroanalytical sensing are towards improved sensitivity and selectivity, or specificity, of an analyte. There are several approaches to achieving these goals with the main approach being modification of an electrode surface with synthetic or natural catalysts (enzymes), polymers and also utilisation of nanostructured materials. At present, there is a strong movement towards hybrid sensing which couple different properties of two or more surface modification approaches. In this thesis, a range of these surface modifications were explored foranalysis and detection of two main analytes: the amino acid, tryptophan (Trp); and, the neurotransmitter, dopamine (DA). Specifically, this thesis aimed to utilise thesemethods to enhance the sensitivity and selectivity for Trp over an interferent, the indoleamine, melatonin (Mel); and, DA over the vitamin, ascorbic acid (AA).For Trp detection, immobilisation of an enzyme, Tryptophanase (Trpase) resulted in poor selectivity for the analyte. However, enhanced sensitivity and selectivity wasachieved through pH manipulation of the electrolyte medium at a Nafion®-modified electrode surface for both Trp and Mel. At pH 3.0, the Mel and Trp anodic peak potentials were sufficiently resolved allowing for an LOD of 1.60 and 1.62 nM,respectively, and permitting the accurate analysis of Trp in a dietary supplement containing Mel. Multi-walled carbon nanotubes (MWCNTs) suspended in Nafion® exhibited further increases in the signal responses of these analytes at pH 3.0 and 7.4 with minimal change in the resolution of the anodic peaks. A lower sensitivity was, therefore, observed at the Nafion® and MWCNT modified electrode compared to the Nafion®-modified electrode at pH 3.0 with LODs of 0.59 and 0.80 nM exhibited for Trp and Mel, respectively. Enhanced selectivity for Trp in the presence of Mel can be achieved with MWCNTs in the presence of metallotetrasulphonated phthalocyanines (MTSPcs) particularly at pH 3.0, owing to cation exchange effects.However, the lack of sensitivity towards Trp, and even Mel, at this CoTSPc and MWCNT modified electrode remains a drawback. For DA, detection at the MWCNT and Nafion® surface resulted in improved sensitivity over that of both the bare electrode (613.0 nM) and the Nafion® modifiedelectrode (1045.1 nM) with a calculated LOD of 133.9 nM at this layer. Furthermore, improvements in the selectivity of DA were achieved at the Nafion® and MWCNT modified electrode as exclusion of AA (150 μM) was achieved. At the MWCNT and CoTSPc surface, AA was excluded up to 130 μM with sensitivity for DA extending as low as 14.3 nM, far greater than observed for Trp and Mel. These concentrations arewell within physiological concentration ranges and represent the most significant solution yet in terms of AA exclusion and enhanced sensitivity for DA.An examination of the surface layering by impedance spectroscopy and atomic force microscopy indicates that the success of the hybrid sensor utilising CoTSPc and MWCNTs lay in improved dispersion of MWCNTs and improved electron transfer kinetics, facilitated by the net charge of the materials present.This thesis, thus, showed the utility of a judicious selection of synthetic and biological catalysts, polymers and carbon nanomaterials towards a hybrid approach to theelectrochemical sensing of Trp, Mel, DA and AA with focus on sensitivity and selectivity of these analytes.
机译:电分析感测的主要目标是提高分析物的灵敏度和选择性或特异性。有几种实现这些目标的方法,主要方法是用合成或天然催化剂(酶),聚合物修饰电极表面,以及利用纳米结构材料。目前,正在向结合两种或更多种表面修饰方法的不同特性的混合感测发展。本文研究了一系列的表面修饰,以分析和检测两种主要分析物:氨基酸,色氨酸(Trp),氨基酸,色氨酸(Trp)和氨基酸。神经递质多巴胺(DA)。具体而言,本论文旨在利用这些方法来增强对Trp的干扰素和吲哚胺,褪黑激素(Mel)的敏感性和选择性。对于Trp检测,固定化酶色氨酸酶(Trpase)对分析物的选择性较差。但是,通过在Nafion®修饰电极表面对Trp和Mel进行电解质介质的pH调节,可以提高灵敏度和选择性。在pH 3.0时,Mel和Trp的阳极峰值电势已得到充分分辨,分别允许LOD为1.60和1.62 nM,并允许对含Mel的膳食补充剂中的Trp进行准确分析。悬浮在Nafion®中的多壁碳纳米管(MWCNT)在pH 3.0和7.4时显示出这些分析物的信号响应进一步增加,而阳极峰的分辨率变化却很小。因此,与Nafion®和MWCNT修饰电极相比,在pH 3.0时,Nafion®修饰电极的灵敏度较低,Trp和Mel的LOD分别为0.59和0.80 nM。由于阳离子交换作用,特别是在pH 3.0时,在金属四磺化酞菁(MTSPcs)存在的情况下,使用MWCNT可以在MEL存在下提高Trp的选择性,但是由于CoTSPc对Trp甚至Mel缺乏敏感性。 MWCNT修饰电极仍然是一个缺点。对于DA,在MWCNT和Nafion®表面进行检测可提高灵敏度,高于裸电极(613.0 nM)和Nafion®修饰电极(1045.1 nM),其在该层的LOD计算值为133.9 nM。此外,在Nafion®和MWCNT修饰电极上,由于AA(150μM)的排除,DA的选择性得到了改善。在MWCNT和CoTSPc表面,AA被排除在130μM以内,对DA的敏感性低至14.3 nM,远远大于对Trp和Mel的观察。这些浓度都在生理浓度范围内,代表了对AA的排斥和对DA的增强灵敏度方面最重要的解决方案。通过阻抗谱和原子力显微镜对表面分层的检查表明,利用CoTSPc和MWCNT的混合传感器的成功应用在于现有材料的净电荷促进了MWCNT的分散性和电子转移动力学的改善。因此,本论文表明,明智地选择合成和生物催化剂,聚合物和碳纳米材料可用于电化学混合方法对Trp,Mel,DA和AA的检测,重点是这些分析物的灵敏度和选择性。

著录项

  • 作者

    Frith Kelly-Anne;

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  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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