Department of Biotechnology, Graduate School of Engineering, Tokyo University of Agriculture & Technology, 2-24-16 Naka-cho, Koganei, Tokyo, 184-8588, Japan.
Enzyme Microb Technol. 2013 Feb 5;52(2):123-8. doi: 10.1016/j.enzmictec.2012.11.002. Epub 2012 Nov 16.
The FAD-dependent glucose dehydrogenase (FADGDH) from Burkholderia cepacia has several attractive features for glucose sensing. However, expanding the application of this enzyme requires improvement of its substrate specificity, especially decreasing its high activity toward maltose. A three-dimensional structural model of the FADGDH catalytic subunit was generated by homology modeling. By comparing the predicted active site with that of glucose oxidase, the two amino acid residues serine 326 and serine 365 were targeted for site-directed mutagenesis. The single mutations that produced the highest glucose specificity were combined, leading to the creation of the S326Q/S365Y double mutant, which was virtually nonreactive to maltose while retaining high glucose dehydrogenase activity. The engineered FADGDH was used to develop a direct electron transfer-type, disposable glucose sensor strip by immobilizing the enzyme complex onto a carbon screen-printed electrode. While the electrode employing wild-type FADGDH provided dangerously flawed results in the presence of maltose, the sensor employing our engineered FADGDH showed a clear glucose concentration-dependent response that was not affected by the presence of maltose.
法呢基二磷酸依赖型葡萄糖脱氢酶(FADGDH)来源于洋葱伯克霍尔德氏菌,具有多种适用于葡萄糖传感的特性。然而,要扩大这种酶的应用范围,就需要提高其底物特异性,尤其是降低其对麦芽糖的高活性。通过同源建模生成了 FADGDH 催化亚基的三维结构模型。通过比较预测的活性位点与葡萄糖氧化酶的活性位点,选择了两个氨基酸残基丝氨酸 326 和丝氨酸 365 进行定点突变。产生最高葡萄糖特异性的单个突变被组合在一起,导致了 S326Q/S365Y 双突变体的产生,该突变体几乎对麦芽糖无反应,同时保留了高葡萄糖脱氢酶活性。通过将酶复合物固定在碳丝网印刷电极上,将工程化的 FADGDH 用于开发直接电子转移型、一次性葡萄糖传感器条。虽然在存在麦芽糖的情况下,使用野生型 FADGDH 的电极提供了有严重缺陷的结果,但使用我们工程化的 FADGDH 的传感器显示出了清晰的、与葡萄糖浓度相关的响应,不受麦芽糖的影响。