IMPROVING ENZYME-ELECTRODE CONTACTS BY REDOX MODIFICATION OF COFACTORS

被引:207
作者
RIKLIN, A
KATZ, E
WILLNER, I
STOCKER, A
BUCKMANN, AF
机构
[1] HEBREW UNIV JERUSALEM, INST CHEM, IL-91904 JERUSALEM, ISRAEL
[2] GESELL BIOTECHNOL FORSCH MBH, DEPT ENZYMOL, D-38124 BRAUNSCHWEIG, GERMANY
关键词
D O I
10.1038/376672a0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
EFFICIENT electron transfer of redox proteins to and from their environment is essential for the use of such proteins in biotechnological applications such as amperometric biosensors and photosynthetic biocatalysts(1-3). But most redox enzymes lack pathways that can transport an electron from their embedded redox site to an electrode(4,5) or a diffusing photoexcited species(6). Electrical communication between redox proteins and electrode surfaces has been improved by aligning proteins on chemically modified electrodes(7-9), by attaching electron-transporting groups(10,11) and by immobilizing proteins in polymer matrices tethered by redox groups(12-14). Generally these methods involve contacting the enzymes at random with electron relay units, Here we report an approach that allows site-specific positioning of electron-mediating units in redox proteins, We strip glucose oxidase of its flavin adenine dinucleotide (FAD) cofactors, modify tbe latter with redox-active ferrocene-containing groups, and then reconstitute the apoprotein with these modified cofactors, In this way, electrical contact between an electrode and the resulting enzyme in solution is greatly enhanced in a controlled and reproducible way.
引用
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页码:672 / 675
页数:4
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