Sanz Vanesa, de Marcos Susana, Castillo Juan R, Galbán Javier
GEAS, Analytical Chemistry Department, Faculty of Sciences, University of Zaragoza, Zaragoza-50009, Spain.
J Am Chem Soc. 2005 Jan 26;127(3):1038-48. doi: 10.1021/ja046830k.
In this paper an in depth study is presented of the use of the horseradish peroxidase (HRP) enzyme as a self-indicating biorecognition reagent in UV-vis molecular absorption spectrometry. The HRP/H2O2 reaction mechanism in the absence of an external substrate has been clarified, and the interaction between HRP and glucose oxidase (GOx) has been studied. It has been demonstrated that GOx can act as a substrate of HRP; in both cases the kinetic constants have been obtained and mathematical models have been developed. Second, the HRP/H2O2 reaction is used to follow a H2O2-producing enzymatic reaction, the glucose reaction with GOx being used as a model. As an application of this, two methodologies have been proposed for glucose determination: with or without previous incubation of glucose with GOx. In both cases mathematical models relating HRP absorbance changes to glucose concentration have been developed and tested; both methods have been optimized, analytically characterized, and tested for glucose determination in samples. The methodology described could be applied to other heme-proteins and to other H2O2-producing enzymatic reactions. The models permit the reaction constants to be calculated. From the analytical chemistry point of view the models allow the prediction of the method sensitivity for other analytes involved in this type of reaction if the kinetic constants are known and can be used in the design of optical sensors.
本文深入研究了辣根过氧化物酶(HRP)作为紫外可见分子吸收光谱中一种自指示生物识别试剂的应用。阐明了在无外部底物情况下HRP/H₂O₂的反应机制,并研究了HRP与葡萄糖氧化酶(GOx)之间的相互作用。已证明GOx可作为HRP的底物;在这两种情况下都获得了动力学常数并建立了数学模型。其次,HRP/H₂O₂反应用于跟踪产生H₂O₂的酶促反应,以葡萄糖与GOx的反应作为模型。作为此应用,提出了两种测定葡萄糖的方法:葡萄糖与GOx预孵育或不预孵育。在这两种情况下,都建立并测试了将HRP吸光度变化与葡萄糖浓度相关联的数学模型;两种方法都经过了优化、分析表征,并用于样品中葡萄糖测定的测试。所描述的方法可应用于其他血红素蛋白以及其他产生H₂O₂的酶促反应。这些模型允许计算反应常数。从分析化学的角度来看,如果已知动力学常数,这些模型可以预测该方法对这类反应中其他分析物的灵敏度,并且可用于光学传感器的设计。