Literature DB >> 30057265

Designer fungus FAD glucose dehydrogenase capable of direct electron transfer.

Kohei Ito1, Junko Okuda-Shimazaki2, Kazushige Mori2, Katsuhiro Kojima2, Wakako Tsugawa1, Kazunori Ikebukuro1, Chi-En Lin3, Jeffrey La Belle3, Hiromi Yoshida4, Koji Sode5.   

Abstract

Fungi-derived flavin adenine dinucleotide glucose dehydrogenases (FADGDHs) are currently the most popular and advanced enzymes for self-monitoring of blood glucose sensors; however, the achievement of direct electron transfer (DET) with FADGDHs is difficult. In this study, a designer FADGDH was constructed by fusing Aspergillus flavus derived FADGDH (AfGDH) and a Phanerochaete chrisosporium CDH (PcCDH)-derived heme b-binding cytochrome domain to develop a novel FADGDH that is capable of direct electron transfer with an electrode. A structural prediction suggested that the heme in the CDH may exist in proximity to the FAD of AfGDH if the heme b-binding cytochrome domain is fused to the AfGDH N-terminal region. Spectroscopic observations of recombinantly produced designer FADGDH confirmed the intramolecular electron transfer between FAD and the heme. A decrease in pH and the presence of a divalent cation improved the intramolecular electron transfer. An enzyme electrode with the immobilized designer FADGDH showed an increase in current immediately after the addition of glucose in a glucose concentration-dependent manner, whereas those with wild-type AfGDH did not show an increase in current. Therefore, the designer FADGDH was confirmed to be a novel GDH that possesses electrode DET ability. The difference in the surface electrostatic potentials of AfGDH and the catalytic domain of PcCDH might be why their intramolecular electron transfer ability is inferior to that of CDH. These relevant and consistent findings provide us with a novel strategic approach for the improvement of the DET properties of designer FADGDH. (241 words).
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Cellobiose dehydrogenase; Designer FADGDH; Direct electron transfer; Fusion protein; Glucose dehydrogenase; Heme b-binding cytochrome domain

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Year:  2018        PMID: 30057265     DOI: 10.1016/j.bios.2018.07.027

Source DB:  PubMed          Journal:  Biosens Bioelectron        ISSN: 0956-5663            Impact factor:   10.618


  3 in total

Review 1.  Cellobiose dehydrogenase in biofuel cells.

Authors:  Stefan Scheiblbrandner; Florian Csarman; Roland Ludwig
Journal:  Curr Opin Biotechnol       Date:  2021-09-03       Impact factor: 10.279

2.  Control of carbon monoxide dehydrogenase orientation by site-specific immobilization enables direct electrical contact between enzyme cofactor and solid surface.

Authors:  Stacy Simai Reginald; Hyeryeong Lee; Nabilah Fazil; Basit Sharif; Mungyu Lee; Min Ji Kim; Haluk Beyenal; In Seop Chang
Journal:  Commun Biol       Date:  2022-04-26

Review 3.  Amperometric Biosensors Based on Direct Electron Transfer Enzymes.

Authors:  Franziska Schachinger; Hucheng Chang; Stefan Scheiblbrandner; Roland Ludwig
Journal:  Molecules       Date:  2021-07-27       Impact factor: 4.927

  3 in total

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