Department of Bioanalysis, Institute of Biochemistry, Life Sciences Center, Vilnius University, Saulėtekio av. 7, LT-10257 Vilnius, Lithuania.
Department of Molecular Microbiology and Biotechnology, Institute of Biochemistry, Life Sciences Center, Vilnius University, Saulėtekio av. 7, LT-10257 Vilnius, Lithuania.
Biosensors (Basel). 2021 Nov 19;11(11):466. doi: 10.3390/bios11110466.
As electrode nanomaterials, thermally reduced graphene oxide (TRGO) and modified gold nanoparticles (AuNPs) were used to design bioelectrocatalytic systems for reliable D-tagatose monitoring in a long-acting bioreactor where the valuable sweetener D-tagatose was enzymatically produced from a dairy by-product D-galactose. For this goal D-fructose dehydrogenase (FDH) from immobilized on these electrode nanomaterials by forming three amperometric biosensors: AuNPs coated with 4-mercaptobenzoic acid (AuNP/4-MBA/FDH) or AuNPs coated with 4-aminothiophenol (AuNP/PATP/FDH) monolayer, and a layer of TRGO on graphite (TRGO/FDH) were created. The immobilized FDH due to changes in conformation and spatial orientation onto proposed electrode surfaces catalyzes a direct D-tagatose oxidation reaction. The highest sensitivity for D-tagatose of 0.03 ± 0.002 μA mMcm was achieved using TRGO/FDH. The TRGO/FDH was applied in a prototype bioreactor for the quantitative evaluation of bioconversion of D-galactose into D-tagatose by L-arabinose isomerase. The correlation coefficient between two independent analyses of the bioconversion mixture: spectrophotometric and by the biosensor was 0.9974. The investigation of selectivity showed that the biosensor was not active towards D-galactose as a substrate. Operational stability of the biosensor indicated that detection of D-tagatose could be performed during six hours without loss of sensitivity.
作为电极纳米材料,热还原氧化石墨烯(TRGO)和修饰后的金纳米粒子(AuNPs)被用于设计生物电化学催化体系,以在长效生物反应器中可靠地监测有价值的甜味剂 D-塔格糖。在这个生物反应器中,D-塔格糖是通过酶法从乳制品副产物 D-半乳糖生产的。为此,D-果糖脱氢酶(FDH)通过三种电流型生物传感器固定在这些电极纳米材料上:AuNP 上涂有 4-巯基苯甲酸(AuNP/4-MBA/FDH)或 AuNP 上涂有 4-氨基硫酚(AuNP/PATP/FDH)单层,以及在石墨上涂有一层 TRGO(TRGO/FDH)。固定化 FDH 由于构象和空间取向的变化,在提出的电极表面上催化 D-塔格糖的直接氧化反应。使用 TRGO/FDH 获得了 0.03 ± 0.002 μA mMcm 的 D-塔格糖的最高灵敏度。TRGO/FDH 被应用于原型生物反应器中,用于通过 L-阿拉伯糖异构酶对 D-半乳糖的生物转化进行定量评估。两种独立分析生物转化混合物的相关性系数:分光光度法和生物传感器法为 0.9974。选择性研究表明,生物传感器对 D-半乳糖作为底物没有活性。生物传感器的操作稳定性表明,在六小时内检测 D-塔格糖不会损失灵敏度。