Making glucose oxidase fit for biofuel cell applications by directed protein evolution

被引:100
作者
Zhu, ZW [1 ]
Momeu, C [1 ]
Zakhartsev, M [1 ]
Schwaneberg, U [1 ]
机构
[1] Int Jacobs Univ Bremen, Sch Sci & Engn, D-28759 Bremen, Germany
关键词
biofuel cell; glucose oxidase; directed evolution; high-throughput screening; GODA;
D O I
10.1016/j.bios.2005.11.018
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Progress in miniature chip-design raises demands for implantable power sources in health care applications such as continuous glucose monitoring of diabetic patients. Pioneered by Adam Heller, miniaturized enzymatic biofuel cells (mBCs) convert blood sugars into electrical energy by employing for example glucose oxidase (GOx) on the anode and bilirubin oxidase on the cathode. To match application demands it is crucial to increase lifetime and power output of mBCs. The power output has been limited by the performance of GOx on the anode. We developed a glucose oxidase detection assay (GODA) as medium-throughput screening system for improving GOx properties by directed protein evolution. GODA is a reaction product detection assay based on coupled enzymatic reactions leading to NADPH formation which is recorded at 340 nm. The main advantage of the assay is that it detects the production Of D-gluconolactone instead of the side-product hydrogen peroxide and enables to improve bioelectrochemical properties of GOx. For validating the screening system, a mutagenic library of GOx from Aspergillus niger (EC 1.1.3.4) was generated and screened for improved activity using Saccharomyces cerevisiae as host. Directed evolution resulted in a GOx mutant 1115V with 1.4-1.5-fold improved activity for beta-D-glucose (V-max from 7.94 to 10.81 mu mol min(-1) mg(-1); K-m similar to 19-21 mM) and oxygen consumption kinetics correlate well [V-max (O-2) from 5.94 to 8.34 mu mol min(-1) mg(-1); Km (O-2) from 700 to 474 mu M]. The developed mutagenic protocol and GODA represent a proof-of-principle that GOx can be evolved by directed evolution in S. cerevisiae for putative use in biofuel cells. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:2046 / 2051
页数:6
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