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1.
Colloids Surf B Biointerfaces ; 164: 240-246, 2018 Apr 01.
Article de Anglais | MEDLINE | ID: mdl-29413602

RÉSUMÉ

HYPOTHESIS: Electrosynthesis of the MIP nano-film after binding of the separated domains or holo-cytochrome BM3 via an engineered anchor should result in domain-specific cavities in the polymer layer. EXPERIMENTS: Both the two domains and the holo P450 BM3 have been bound prior polymer deposition via a N-terminal engineered his6-anchor to the electrode surface. Each step of MIP preparation was characterized by cyclic voltammetry of the redox-marker ferricyanide. Rebinding after template removal was evaluated by quantifying the suppression of the diffusive permeability of the signal for ferricyanide and by the NADH-dependent reduction of cytochrome c by the reductase domain (BMR). FINDINGS: The working hypothesis is verified by the discrimination of the two domains by the respective MIPs: The holoenzyme P450 BM3 was ca. 5.5 times more effectively recognized by the film imprinted with the oxidase domain (BMO) as compared to the BMR-MIP or the non-imprinted polymer (NIP). Obviously, a cavity is formed during the imprinting process around the his6-tag-anchored BMR which cannot accommodate the broader BMO or the P450 BM3. The affinity of the MIP towards P450 BM3 is comparable with that to the monomer in solution. The his6-tagged P450 BM3 binds (30 percent) stronger which shows the additive effect of the interaction with the MIP and the binding to the electrode.


Sujet(s)
Protéines bactériennes/composition chimique , Cytochrome P-450 enzyme system/composition chimique , Empreinte moléculaire/méthodes , NADPH-ferrihemoprotéine reductase/composition chimique , Animaux , Hexacyanoferrates III/composition chimique , Fluorescence , Equus caballus , Polymères/composition chimique , Domaines protéiques , Solutions
2.
Appl Biochem Biotechnol ; 144(1): 27-36, 2008 Jan.
Article de Anglais | MEDLINE | ID: mdl-18415984

RÉSUMÉ

Cytochrome P450 BM-3 with the mutations A74G, F87V, and L188Q could catalyze indole to produce indigo and indirubin. To further enhance this capability, site-directed and random mutageneses on the monooxygenase domain of P450 BM-3 mutant (A74G/F87V/L188Q; 3X) were performed. The mutant libraries created by error-prone polymerase chain reaction were screened using a colorimetric colony-based method on agar plates followed by a spectroscopic assay involving in absorption of indigo at 670 nm and NADPH at 340 nm in microtiter plate. Three mutants (K434R/3X, E435D/3X, and D168N/ A225V/K440N/3X) exhibited higher hydroxylation activity toward indole in comparison to parent enzyme. Moreover, using saturation site-directed mutagenesis at amino acid positions 168, 225, 434, 435, and 440, two P450 BM-3 variants (D168H/3X, E435T/3X) with an up to sixfold increase in catalytic efficiency (kcat/Km) were identified, and the mutant D168H/3X acquired higher regioselectivity resulting in more indigo (dimerized 3hydroxy-indole) compared to parent mutant (93 vs 72%).


Sujet(s)
Protéines bactériennes/génétique , Protéines bactériennes/métabolisme , Cytochrome P-450 enzyme system/génétique , Cytochrome P-450 enzyme system/métabolisme , Indoles/métabolisme , Mixed function oxygenases/génétique , Mixed function oxygenases/métabolisme , Bacillus megaterium/enzymologie , Bacillus megaterium/génétique , Protéines bactériennes/composition chimique , Séquence nucléotidique , Domaine catalytique/génétique , Cytochrome P-450 enzyme system/composition chimique , ADN bactérien/génétique , Évolution moléculaire dirigée , Hydroxylation , Carmin d'indigo , Cinétique , Mixed function oxygenases/composition chimique , Modèles moléculaires , Mutagenèse , Mutagenèse dirigée , NADPH-ferrihemoprotéine reductase , Conformation des protéines , Protéines recombinantes/composition chimique , Protéines recombinantes/génétique , Protéines recombinantes/métabolisme
3.
Appl Microbiol Biotechnol ; 66(2): 180-6, 2004 Dec.
Article de Anglais | MEDLINE | ID: mdl-15375636

RÉSUMÉ

The gene encoding CYP102A2, a novel P450 monooxygenase from Bacillus subtilis, was cloned and expressed in Escherichia coli. The recombinant enzyme formed was purified by immobilised metal chelate affinity chromatography (IMAC) and characterised. CYP102A2 is a 119-kDa self-sufficient monooxygenase, consisting of an FMN/FAD-containing reductase domain and a heme domain. The deduced amino acid sequence of CYP102A2 exhibits a high level of identity with the amino acid sequences of CYP102A1 from B. megaterium (59%) and CYP102A3 from B. subtilis (60%). In reduced, CO-bound form, the enzyme shows a typical Soret band at 449 nm. It catalyses the oxidation of even- and odd-chain saturated and unsaturated fatty acids. In all reactions investigated, the products were the respective omega-3, omega-2 and omega-1 hydroxylated fatty acids. Activity was highest towards oleic acid (K(M)=17.36+/-1.4 microM, k(cat)=2,244+/-72 min(-1)) and linoleic acid (K(M)=12.25+/-1.8 microM, k(cat)=1,950+/-84 min(-1)). Comparison of a CYP102A2 homology model with the CYP102A1 crystal structure revealed significant differences in the substrate access channels, which might explain the differences in the catalytic properties of these two enzymes.


Sujet(s)
Bacillus subtilis/enzymologie , Protéines bactériennes/génétique , Cytochrome P-450 enzyme system/génétique , Bacillus subtilis/génétique , Protéines bactériennes/composition chimique , Protéines bactériennes/isolement et purification , Protéines bactériennes/métabolisme , Clonage moléculaire , Cytochrome P-450 enzyme system/composition chimique , Cytochrome P-450 enzyme system/isolement et purification , Cytochrome P-450 enzyme system/métabolisme , Acides gras/métabolisme , Expression des gènes , Spécificité du substrat
4.
Appl Microbiol Biotechnol ; 64(3): 317-25, 2004 Apr.
Article de Anglais | MEDLINE | ID: mdl-14716467

RÉSUMÉ

Oxidations are key reactions in chemical syntheses. Biooxidations using fermentation processes have already conquered some niches in industrial oxidation processes since they allow the introduction of oxygen into non-activated carbon atoms in a sterically and optically selective manner that is difficult or impossible to achieve by synthetic organic chemistry. Biooxidation using isolated enzymes is limited to oxidases and dehydrogenases. Surprisingly, cytochrome P450 monooxygenases have scarcely been studied for use in biooxidations, although they are one of the largest known superfamilies of enzyme proteins. Their gene sequences have been identified in various organisms such as humans, bacteria, algae, fungi, and plants. The reactions catalyzed by P450s are quite diverse and range from biosynthetic pathways (e.g. those of animal hormones and secondary plant metabolites) to the activation or biodegradation of hydrophobic xenobiotic compounds (e.g. those of various drugs in the liver of higher animals). From a practical point of view, the great potential of P450s is limited by their functional complexity, low activity, and limited stability. In addition, P450-catalyzed reactions require a constant supply of NAD(P)H which makes continuous cell-free processes very expensive. Quite recently, several groups have started to investigate cost-efficient ways that could allow the continuous supply of electrons to the heme iron. These include, for example, the use of electron mediators, direct electron supply from electrodes, and enzymatic approaches. In addition, methods of protein design and directed evolution have been applied in an attempt to enhance the activity of the enzymes and improve their selectivity. The promising application of bacterial P450s as catalyzing agents in biocatalytic reactions and recent progress made in this field are both covered in this review.


Sujet(s)
Bactéries/enzymologie , Biotechnologie/méthodes , Cytochrome P-450 enzyme system/métabolisme , Cytochrome P-450 enzyme system/isolement et purification , Stabilité enzymatique , Enzymes immobilisées/métabolisme , NADP/métabolisme , Oxydoréduction , Ingénierie des protéines
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