Directed Molecular Evolution of Cytochrome c Peroxidase
- 11 August 2000
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 39 (35) , 10790-10798
- https://doi.org/10.1021/bi001121e
Abstract
Cytochrome c peroxidase (CCP) from Saccharomyces cerevisiae was subjected to directed molecular evolution to generate mutants with increased activity against the classical peroxidase substrate guaiacol, thus changing the substrate specificity of CCP from the protein cytochrome c to a small organic molecule. After three rounds of DNA shuffling and screening, mutants were isolated which possessed a 300-fold increased activity against guaiacol and an up to 1000-fold increased specificity for this substrate relative to that for the natural substrate. In all of the selected mutants, the distal arginine (Arg48), which is fully conserved in the superfamily of peroxidases, was mutated to histidine, showing that this mutation plays a key role in the significant increase in activity against phenolic substrates. The results suggest that, in addition to stabilizing the reactive intermediate compound I, the distal arginine plays an important role as a gatekeeper in the active site of CCP, controlling the access to the ferryl oxygen and the distal histidine. Other isolated mutations increase the general reactivity of the peroxidase or increase the intracellular concentration of the active holo form, allowing their selection under the employed screening conditions. The results illustrate the ability of directed molecular evolution technologies to deliver solutions to biochemical problems that would not be readily predicted by rational design.Keywords
This publication has 11 references indexed in Scilit:
- Directed evolution of biocatalystsPublished by Elsevier ,2000
- Unusual Oxidative Chemistry ofN ω-Hydroxyarginine and N-Hydroxyguanidine Catalyzed at an Engineered Cavity in a Heme PeroxidasePublished by Elsevier ,2000
- The Structures of the Horseradish Peroxidase C-Ferulic Acid Complex and the Ternary Complex with Cyanide Suggest How Peroxidases Oxidize Small Phenolic SubstratesJournal of Biological Chemistry, 1999
- Conversion of an Engineered Potassium-binding Site into a Calcium-selective Site in Cytochrome c PeroxidaseJournal of Biological Chemistry, 1999
- Evolutionary molecular engineering by random elongation mutagenesisNature Biotechnology, 1999
- Role of the hemA gene product and delta-aminolevulinic acid in regulation of Escherichia coli heme synthesisJournal of Bacteriology, 1997
- Identification of the Colored Guaiacol Oxidation Product Produced by PeroxidasesAnalytical Biochemistry, 1997
- Overexpression, Purification, and Characterization of the Catalase-peroxidase KatG from Mycobacterium tuberculosisJournal of Biological Chemistry, 1997
- Charge Reversal of a Critical Active‐Site Residue of Cytochrome‐c PeroxidaseEuropean Journal of Biochemistry, 1997
- Active-site mutations in cytochrome c peroxidase: a critical role for histidine-52 in the rate of formation of compound IJournal of the American Chemical Society, 1992