Ege University, Faculty of Science, Biochemistry Department, Bornova, 35100 Izmir, Turkey.
Bioelectrochemistry. 2010 Oct;79(2):211-7. doi: 10.1016/j.bioelechem.2010.05.001. Epub 2010 May 10.
In situ synthesis of poly(ethylene glycol) (PEG) hydrogels containing gold nanoparticles (AuNPs) and glucose oxidase (GOx) enzyme by photo-induced electron transfer process was reported here and applied in electrochemical glucose biosensing as the model system. Newly designed bionanocomposite matrix by simple one-step fabrication offered a good contact between the active site of the enzyme and AuNPs inside the network that caused the promotion in the electron transfer properties that was evidenced by cyclic voltammetry as well as higher amperometric biosensing responses in comparing with response signals obtained from the matrix without AuNPs. As well as some parameters important in the optimization studies such as optimum pH, enzyme loading and AuNP amount, the analytical characteristics of the biosensor (AuNP/GOx) were examined by the monitoring of chronoamperometric response due to the oxygen consumption through the enzymatic reaction at -0.7 V under optimized conditions at sodium acetate buffer (50 mM, pH 4.0) and the linear graph was obtained in the range of 0.1-1.0 mM glucose. The detection limit (LOD) of the biosensor was calculated as 0.06 mM by using the signal to noise ratio of 3. Moreover, the presence of AuNPs was visualized by TEM. Finally, the biosensor was applied for glucose analysis for some beverages and obtained data were compared with HPLC as the reference method to test the possible matrix effect due to the nature of the samples.
通过光诱导电子转移过程原位合成含有金纳米粒子 (AuNPs) 和葡萄糖氧化酶 (GOx) 酶的聚乙二醇 (PEG) 水凝胶,并将其应用于电化学葡萄糖生物传感作为模型系统。新设计的生物纳米复合材料通过简单的一步制备提供了酶的活性位点与网络内的 AuNPs 之间的良好接触,这导致电子转移性质得到促进,这通过循环伏安法以及与没有 AuNPs 的基质相比获得的更高的安培生物传感响应得到证明。以及一些在优化研究中很重要的参数,如最佳 pH 值、酶负载量和 AuNP 量,通过在优化条件下(在 50mM、pH4.0 的醋酸钠缓冲液中)在 -0.7V 下监测由于酶反应引起的耗氧量来检查生物传感器(AuNP/GOx)的分析特性,在 0.1-1.0mM 葡萄糖范围内获得线性图。通过使用信噪比为 3 计算出生物传感器的检测限 (LOD) 为 0.06mM。此外,通过 TEM 可视化 AuNPs 的存在。最后,将该生物传感器用于一些饮料的葡萄糖分析,并将获得的数据与 HPLC 作为参考方法进行比较,以测试由于样品性质可能存在的基质效应。