Cytochromes P450: a success story.
Цитохромы P450: история успеха
2000-01-01
SCID: 54.1/58k9eqvc
Discuss with AI
Cytochrome P450P450 diversificationheme-thiolate proteinsoxidative catalysisxenobiotic metabolism
Figures from the paper
Abstract (AI)
SUMMARY: Cytochrome P450 proteins, named for the absorption band at 450 nm of their carbon-monoxide-bound form, are one of the largest superfamilies of enzyme proteins. The P450 genes (also called CYP) are found in the genomes of virtually all organisms, but their number has exploded in plants. Their amino-acid sequences are extremely diverse, with levels of identity as low as 16% in some cases, but their structural fold has remained the same throughout evolution. P450s are heme-thiolate proteins; their most conserved structural features are related to heme binding and common catalytic properties, the major feature being a completely conserved cysteine serving as fifth (axial) ligand to the heme iron. Canonical P450s use electrons from NAD(P)H to catalyze activation of molecular oxygen, leading to regiospecific and stereospecific oxidative attack of a plethora of substrates. The reactions carried out by P450s, though often hydroxylation, can be extremely diverse and sometimes surprising. They contribute to vital processes such as carbon source assimilation, biosynthesis of hormones and of structural components of living organisms, and also carcinogenesis and degradation of xenobiotics. In plants, chemical defense seems to be a major reason for P450 diversification. In prokaryotes, P450s are soluble proteins. In eukaryotes, they are usually bound to the endoplasmic reticulum or inner mitochondrial membranes. The electron carrier proteins used for conveying reducing equivalents from NAD(P)H differ with subcellular localization. P450 enzymes catalyze many reactions that are important in drug metabolism or that have practical applications in industry; their economic impact is therefore considerable.
Key Findings
1
Canonical P450s use NAD(P)H-derived electrons to activate molecular oxygen and perform highly regiospecific and stereospecific oxidation of diverse substrates.
2
Cytochrome P450s form one of the largest enzyme superfamilies and occur in the genomes of virtually all organisms.
3
Despite amino-acid sequence identities as low as 16%, P450 proteins retain a conserved structural fold and a completely conserved heme-ligating cysteine.
4
P450-catalyzed reactions support essential biological processes, xenobiotic degradation, carcinogenesis, drug metabolism, and industrial applications, giving the enzymes considerable economic importance.
5
Plant P450 genes have undergone substantial diversification, likely driven largely by chemical defense requirements.
Research Object
Cytochrome P450 enzyme proteins across organisms, especially the diversified plant P450 superfamily
Research Subject
Their conserved structural fold, heme-thiolate architecture, electron-dependent oxygen activation, diverse regiospecific and stereospecific catalytic reactions, and biological and industrial roles
Publication Details
Publication Date
2000-01-01
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest