4EE7 image
Deposition Date 2012-03-28
Release Date 2012-11-14
Last Version Date 2025-03-26
Entry Detail
PDB ID:
4EE7
Keywords:
Title:
Crystal Structure of the Novel Phenazine Prenyltransferase EpzP in complex with S-thiolodiphosphate (methylated)
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
1.67 Å
R-Value Free:
0.22
R-Value Work:
0.18
R-Value Observed:
0.18
Space Group:
P 21 21 21
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:Prenyltransferase
Gene (Uniprot):epzP
Chain IDs:A, B
Chain Length:304
Number of Molecules:2
Biological Source:Streptomyces cinnamonensis
Modified Residue
Compound ID Chain ID Parent Comp ID Details 2D Image
MLY A LYS N-DIMETHYL-LYSINE
Primary Citation
Structure-based engineering increased the catalytic turnover rate of a novel phenazine prenyltransferase.
Plos One 7 e48427 e48427 (2012)
PMID: 23119011 DOI: 10.1371/journal.pone.0048427

Abstact

Prenyltransferases (PTs) catalyze the regioselective transfer of prenyl moieties onto aromatic substrates in biosynthetic pathways of microbial secondary metabolites. Therefore, these enzymes contribute to the chemical diversity of natural products. Prenylation is frequently essential for the pharmacological properties of these metabolites, including their antibiotic and antitumor activities. Recently, the first phenazine PTs, termed EpzP and PpzP, were isolated and biochemically characterized. The two enzymes play a central role in the biosynthesis of endophenazines by catalyzing the regiospecific prenylation of 5,10-dihydrophenazine-1-carboxylic acid (dhPCA) in the secondary metabolism of two different Streptomyces strains. Here we report crystal structures of EpzP in its unliganded state as well as bound to S-thiolodiphosphate (SPP), thus defining the first three-dimensional structures for any phenazine PT. A model of a ternary complex resulted from in silico modeling of dhPCA and site-directed mutagenesis. The structural analysis provides detailed insight into the likely mechanism of phenazine prenylation. The catalytic mechanism suggested by the structure identifies amino acids that are required for catalysis. Inspection of the structures and the model of the ternary complex furthermore allowed us to rationally engineer EpzP variants with up to 14-fold higher catalytic reaction rate compared to the wild-type enzyme. This study therefore provides a solid foundation for additional enzyme modifications that should result in efficient, tailor-made biocatalysts for phenazines production.

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