Shandong Provincial Key Laboratory of Biosensors, Biology Institute, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250103, China.
State Key Laboratory of Microbial Technology, Institute of Microbial Technology, Shandong University, Qingdao 266237, China.
Int J Mol Sci. 2021 May 24;22(11):5529. doi: 10.3390/ijms22115529.
The discovery or engineering of fungus-derived FAD-dependent glucose 1-dehydrogenase (FAD-GDH) is especially important in the fabrication and performance of glucose biosensors. In this study, a novel FAD-GDH gene, phylogenetically distantly with other FAD-GDHs from species, was identified. Additionally, the wild-type GDH enzyme, and its fusion enzyme (GDH-NL-CBM2) with a carbohydrate binding module family 2 (CBM2) tag attached by a natural linker (NL), were successfully heterogeneously expressed. In addition, while the GDH was randomly immobilized on the electrode by conventional methods, the GDH-NL-CBM2 was orientationally immobilized on the nanocellulose-modified electrode by the CBM2 affinity adsorption tag through a simple one-step approach. A comparison of the performance of the two electrodes demonstrated that both electrodes responded linearly to glucose in the range of 0.12 to 40.7 mM with a coefficient of determination R > 0.999, but the sensitivity of immobilized GDH-NL-CBM2 (2.1362 × 10 A/(Mcm)) was about 1-fold higher than that of GDH (1.2067 × 10 A/(Mcm)). Moreover, a lower detection limit (51 µM), better reproducibility (<5%) and stability, and shorter response time (≈18 s) and activation time were observed for the GDH-NL-CBM2-modified electrode. This facile and easy immobilization approach used in the preparation of a GDH biosensor may open up new avenues in the development of high-performance amperometric biosensors.
真菌来源的 FAD 依赖型葡萄糖 1-脱氢酶(FAD-GDH)的发现或工程化在葡萄糖生物传感器的制造和性能方面尤为重要。在这项研究中,鉴定了一种新型的 FAD-GDH 基因,它与来自 物种的其他 FAD-GDH 在系统发育上有很大的不同。此外,成功地异源表达了野生型 GDH 酶及其融合酶(GDH-NL-CBM2),该融合酶通过天然接头(NL)连接有碳水化合物结合模块家族 2(CBM2)标签。此外,虽然 GDH 通常通过常规方法随机固定在电极上,但 GDH-NL-CBM2 通过 CBM2 亲和吸附标签通过简单的一步法在纳米纤维素修饰的电极上定向固定。对两种电极性能的比较表明,两种电极对 0.12 至 40.7 mM 范围内的葡萄糖均呈线性响应,决定系数 R >0.999,但固定化 GDH-NL-CBM2 的灵敏度(2.1362×10 A/(Mcm))约为 GDH 的 1 倍(1.2067×10 A/(Mcm))。此外,GDH-NL-CBM2 修饰电极的检测限(51 µM)更低,重现性(<5%)和稳定性更好,响应时间(≈18 s)和激活时间更短。这种用于制备 GDH 生物传感器的简便固定化方法可能为高性能电流型生物传感器的开发开辟新途径。