Direct electrical contact of NAD+/NADH-dependent dehydrogenase on electrode surface enabled by non-native solid-binding peptide as a molecular binder. (20th July 2022)
- Record Type:
- Journal Article
- Title:
- Direct electrical contact of NAD+/NADH-dependent dehydrogenase on electrode surface enabled by non-native solid-binding peptide as a molecular binder. (20th July 2022)
- Main Title:
- Direct electrical contact of NAD+/NADH-dependent dehydrogenase on electrode surface enabled by non-native solid-binding peptide as a molecular binder
- Authors:
- Reginald, Stacy Simai
Kim, Min Ji
Lee, Hyeryeong
Fazil, Nabilah
Choi, Serah
Oh, Soyoung
Seo, Junhyeok
Chang, In Seop - Abstract:
- Highlights: NAD + /NADH-dependent FDH fused with solid-binding peptide retain biocatalytic activity. Solid-binding of fusion enzymes depends on fusion site and tertiary structure. Sbp fusion renders enzyme to electrode for facile interfacial electron transfer. A platform for direct electrical contact of NAD + /NADH-dependent enzymes on the electrode surface is developed. NADH oxidation and NAD + reduction at low overpotential for bioelectronics applications is established. Abstract: NAD + /NADH-dependent redox enzymes constitute most known oxidoreductases, but their inherent complexity due to their reliance on the diffusional nature of soluble cofactors limits their application in bioelectrocatalytic systems. Herein, a gold-binding peptide (gbp) is genetically introduced at the NAD + /NADH-dependent formate dehydrogenase (FDH) to add a non-native gold-binding activity to directly wiring the enzyme to the electrode surface. Our gold-binding kinetics studies on the native and synthetic FDHs revealed that the gold-binding properties of the fused enzymes are highly dependent on the fusion site and that the tertiary structure of the fusion enzyme controls the efficiency of gold-binding domain display fusion. As such, the highest gold-binding activity was observed with the fusion of gbp at the C-terminus (FDHgbpC ), whereas binding at both termini FDHgbpNC and FDHgbpN appeared to be less active. Moreover, the presence of gbp increased the stability of an integrated enzymeHighlights: NAD + /NADH-dependent FDH fused with solid-binding peptide retain biocatalytic activity. Solid-binding of fusion enzymes depends on fusion site and tertiary structure. Sbp fusion renders enzyme to electrode for facile interfacial electron transfer. A platform for direct electrical contact of NAD + /NADH-dependent enzymes on the electrode surface is developed. NADH oxidation and NAD + reduction at low overpotential for bioelectronics applications is established. Abstract: NAD + /NADH-dependent redox enzymes constitute most known oxidoreductases, but their inherent complexity due to their reliance on the diffusional nature of soluble cofactors limits their application in bioelectrocatalytic systems. Herein, a gold-binding peptide (gbp) is genetically introduced at the NAD + /NADH-dependent formate dehydrogenase (FDH) to add a non-native gold-binding activity to directly wiring the enzyme to the electrode surface. Our gold-binding kinetics studies on the native and synthetic FDHs revealed that the gold-binding properties of the fused enzymes are highly dependent on the fusion site and that the tertiary structure of the fusion enzyme controls the efficiency of gold-binding domain display fusion. As such, the highest gold-binding activity was observed with the fusion of gbp at the C-terminus (FDHgbpC ), whereas binding at both termini FDHgbpNC and FDHgbpN appeared to be less active. Moreover, the presence of gbp increased the stability of an integrated enzyme electrode in the bioelectrocatalytic reactions occurring at the enzyme-electrode interface. Direct electrochemical NADH oxidation produced by the enzymatic reaction in the presence of formate and NAD + was observed at a low overpotential range of −0.45 to −0.15 V vs Ag/Ag + for all types of enzyme-electrodes, which indicates direct-electrical contact between the cofactor binding site and the electrode surface. The enhanced electron transfer kinetics could be explained by the shorter distance between the cofactor-binding site and electrode surface. Furthermore, the addition of NADH and CO2 increased the reductive catalytic current, which suggested the enzymatic CO2 reduction to formate using a hydride of NADH and a subsequent reduction of the generated NAD + . We demonstrated that biotechnology can directly contact enzymes onto the electrode surface, which has proven to be a reliable method for bio-electronic applications, especially involving NAD + /NADH-dependent enzymes. Graphical abstract: Image, graphical abstract … (more)
- Is Part Of:
- Electrochimica acta. Volume 421(2022)
- Journal:
- Electrochimica acta
- Issue:
- Volume 421(2022)
- Issue Display:
- Volume 421, Issue 2022 (2022)
- Year:
- 2022
- Volume:
- 421
- Issue:
- 2022
- Issue Sort Value:
- 2022-0421-2022-0000
- Page Start:
- Page End:
- Publication Date:
- 2022-07-20
- Subjects:
- NAD+/NADH-dependent enzyme -- Direct electrical contact -- NADH oxidation -- NAD+ reduction -- Solid-binding peptide
Electrochemistry -- Periodicals
Electrochemistry, Industrial -- Periodicals
541.37 - Journal URLs:
- http://www.sciencedirect.com/science/journal/00134686 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.electacta.2022.140480 ↗
- Languages:
- English
- ISSNs:
- 0013-4686
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3698.950000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 21528.xml