Enhanced oxygen tolerance of hydrogenase from Klebsiella oxytoca HP1 by Gly–Cys exchanges nearby Fe–S clusters as biocatalysts in biofuel cells or hydrogen production
-
Add time:08/05/2019 Source:sciencedirect.com
Hydrogenase is the key point of H2-based biotechnology. However, the O2-sensitivity largely hinders its applications in biofuel cells and biological H2 production. Therefore, substantial breakthrough on understanding the molecular basis of O2-sensitivity and developing more O2-tolerant hydrogenases are urgently required. In this study, we found adding extra cysteines to the vicinity of the proximal Fe–S cluster to the NiFe active centre could largely enhance oxygen tolerance of hydrogen-evolving hydrogenase 3 from Klebsiella oxytoca HP1 (KoHyd3), through homologous sequence comparison and site-directed mutagenesis. Ratio of aerobic hydrogen yield to anaerobic hydrogen yield (RHH) of Gly47Cys (Gly47 was replaced with Cys47), Gly50Cys, Gly113Cys, Gly120Cys and Gly50Cys–Gly120Cys (double exchange) were increased by 46.99%, 42.15%, 59.19%, 44.74% and 78.72%, respectively, comparing with that of wild type. Moreover, TiO2-KoHyd3 (Gly47Cys, Gly50Cys, Gly113Cys, Gly120Cys and Gly50Cys–Gly120Cys) particles acted well in UV light-driven H2 production from water. These results revealed that extra cysteines nearby Fe–S clusters had significant effects on oxygen tolerance of KoHyd3. It also provided a promising way to produce O2-tolerant hydrogenase as biocatalysts in biofuel cells or H2 production by photolysis of water.
We also recommend Trading Suppliers and Manufacturers of CYS-GLY (cas 19246-18-5). Pls Click Website Link as below: cas 19246-18-5 suppliers
Prev:Arg–Cys and Arg–cysteamine adsorbed on gold and the G-protein–adsorbate interaction
Next:Spectroscopic characterization of metal bound phytochelatin analogue (Glu–Cys)4–Gly) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Surface tailoring for selective endothelialization and platelet inhibition via a combination of SI-ATRP and click chemistry using Cys–Ala–Gly-peptide08/08/2019
- Enzymatic inactivation of SRS-CYS-GLY (cas 19246-18-5) (leukotriene D)08/07/2019
- Spectroscopic characterization of metal bound phytochelatin analogue (Glu–Cys)4–Gly08/06/2019
- Arg–Cys and Arg–cysteamine adsorbed on gold and the G-protein–adsorbate interaction08/04/2019
- Binding of Hg2+ by Cys, CYS-GLY (cas 19246-18-5) and reduced glutathione: Study by differential pulse voltammetry on rotating Au-disk electrode, electrospray ionization mass-spectrometry and isothermal titration calorimetry08/03/2019
- Tandem ligation at X-Cys and Gly-Gly positions via an orthogonally protected auxiliary group08/02/2019
- Synthesis and chemical stability of a disulfide bond in a model cyclic pentapeptide: Cyclo(1,4)‐Cys‐Gly‐Phe‐Cys‐Gly‐OH08/01/2019
- Low energy photoelectron resonance capture ionization aerosol mass spectrometry of small peptides with cysteine residues: CYS-GLY (cas 19246-18-5), γ-Glu-Cys, and glutathione (γ-Glu-CYS-GLY (cas 19246-18-5))07/31/2019
- Radical scavenging activities of Tyr-, Trp-, Cys- and Met-Gly and their protective effects against AAPH-induced oxidative damage in human erythrocytes07/30/2019


