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Electrochemical studies of glucose oxidase immobilized on glutathione coated gold nanoparticles

机译:谷胱甘肽包覆的金纳米粒子固定化葡萄糖氧化酶的电化学研究

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Glutathione(L-??-glutamyl-L-cysteinyl-L-glycine; GSH) forms a surface monolayer on gold nanoparticles by tethering via sulfur bonds (Au:GSH). In the present study, glucose oxidase (GOx; EC 1.1.3.4) was immobilized by covalent chemical coupling reactions on to Au:GSH nanoparticles and the enzyme coupled nanoparticles formed a stable colloid (stable for several weeks) in water. The immobilized enzyme was investigated for electrochemical characteristics to monitor the FAD (prosthetic group of the GOx) redox potentials. Various concentrations of substrate (glucose) were added to check the oxidation characteristics. It was observed that with increase in substrate concentrations, the oxidation rate increased proportionally with the current. The present study demonstrated that GOx was effectively coupled to the gold nanoparticle (Au:GSH). The coupled nanoparticle system could be used in a potential biosensor application. Similarly, other enzymes (e.g., horseradish peroxidase) could be immobilized to the Au:GSH nanoparticles via the peptide arm (GSH) to achieve the desired characteristics needed for a specific application in biosensor.
机译:谷胱甘肽(L-β-谷氨酰基-L-半胱氨酸-L-甘氨酸; GSH)通过硫键束缚(Au:GSH)在金纳米颗粒上形成表面单层。在本研究中,通过共价化学偶联反应将葡萄糖氧化酶(GOx; EC 1.1.3.4)固定在Au:GSH纳米颗粒上,酶偶联的纳米颗粒在水中形成稳定的胶体(稳定数周)。研究了固定化酶的电化学特性,以监测FAD(GOx的辅基)氧化还原电势。添加各种浓度的底物(葡萄糖)以检查氧化特性。观察到随着底物浓度的增加,氧化速率与电流成比例地增加。本研究表明,GOx与金纳米颗粒(Au:GSH)有效耦合。偶联的纳米颗粒系统可以用于潜在的生物传感器应用中。类似地,其他酶(例如辣根过氧化物酶)可以通过肽臂(GSH)固定在Au:GSH纳米颗粒上,以实现生物传感器中特定应用所需的所需特性。

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