Literature DB >> 14576280

Engineering of a water-soluble plant cytochrome P450, CYP73A1, and NMR-based orientation of natural and alternate substrates in the active site.

Guillaume A Schoch1, Roger Attias, Maya Belghazi, Patrick M Dansette, Danièle Werck-Reichhart.   

Abstract

CYP73A1 catalyzes cinnamic acid hydroxylation, a reaction essential for the synthesis of lignin monomers and most phenolic compounds in higher plants. The native CYP73A1, initially isolated from Jerusalem artichoke (Helianthus tuberosus), was engineered to simplify purification from recombinant yeast and improve solublity and stability in the absence of detergent by replacing the hydrophobic N terminus with the peptitergent amphipathic sequence PD1. Optimized expression and purification procedures yielded 4 mg engineered CYP73A1 L(-1) yeast culture. This water-soluble enzyme was suitable for 1H-nuclear magnetic resonance (NMR) investigation of substrate positioning in the active site. The metabolism and interaction with the enzyme of cinnamate and four analogs were compared by UV-visible and 1H-NMR analysis. It was shown that trans-3-thienylacrylic acid, trans-2-thienylacrylic acid, and 4-vinylbenzoic acid are good ligands and substrates, whereas trans-4-fluorocinnamate is a competitive inhibitor. Paramagnetic relaxation effects of CYP73A1-Fe(III) on the 1H-NMR spectra of cinnamate and analogs indicate that their average initial orientation in the active site is parallel to the heme. Initial orientation and distances of ring protons to the iron do not explain the selective hydroxylation of cinnamate in the 4-position or the formation of single products from the thienyl compounds. Position adjustments are thus likely to occur during the later steps of the catalytic cycle.

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Year:  2003        PMID: 14576280      PMCID: PMC281615          DOI: 10.1104/pp.103.020305

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  43 in total

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7.  NMR studies of substrate binding to cytochrome P450 BM3: comparisons to cytochrome P450 cam.

Authors:  S Modi; W U Primrose; J M Boyle; C F Gibson; L Y Lian; G C Roberts
Journal:  Biochemistry       Date:  1995-07-18       Impact factor: 3.162

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9.  The chemically inducible plant cytochrome P450 CYP76B1 actively metabolizes phenylureas and other xenobiotics

Authors: 
Journal:  Plant Physiol       Date:  1998-11       Impact factor: 8.340

10.  Mammalian microsomal cytochrome P450 monooxygenase: structural adaptations for membrane binding and functional diversity.

Authors:  P A Williams; J Cosme; V Sridhar; E F Johnson; D E McRee
Journal:  Mol Cell       Date:  2000-01       Impact factor: 17.970

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  9 in total

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Authors:  Richard K Hughes; Eric J Belfield; Mylrajan Muthusamay; Anuja Khan; Arthur Rowe; Stephen E Harding; Shirley A Fairhurst; Stephen Bornemann; Ruth Ashton; Roger N F Thorneley; Rod Casey
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Journal:  PLoS Biol       Date:  2005-06-21       Impact factor: 8.029

5.  Transient expression vectors for functional genomics, quantification of promoter activity and RNA silencing in plants.

Authors:  Roger P Hellens; Andrew C Allan; Ellen N Friel; Karen Bolitho; Karryn Grafton; Matthew D Templeton; Sakuntala Karunairetnam; Andrew P Gleave; William A Laing
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Review 6.  Recombinant production of eukaryotic cytochrome P450s in microbial cell factories.

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Journal:  Biosci Rep       Date:  2018-03-05       Impact factor: 3.840

7.  Transcriptomic dissection reveals wide spread differential expression in chickpea during early time points of Fusarium oxysporum f. sp. ciceri Race 1 attack.

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8.  Increased Phenacetin Oxidation upon the L382V Substitution in Cytochrome P450 1A2 is Associated with Altered Substrate Binding Orientation.

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Review 9.  Evolving a Peptide: Library Platforms and Diversification Strategies.

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  9 in total

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