Chiral-substrate-assisted stereoselective epoxidation catalyzed by H2O2-dependent cytochrome P450SPα.
暂无分享,去创建一个
H. Sugimoto | O. Shoji | Y. Shiro | T. Fujishiro | Norifumi Kawakami | Y. Watanabe | Takahiro Watanabe
[1] H. Sugimoto,et al. Crystal structure of H2O2-dependent cytochrome P450SPalpha with its bound fatty acid substrate: insight into the regioselective hydroxylation of fatty acids at the alpha position. , 2011, The Journal of biological chemistry.
[2] O. Shoji,et al. Use of perfluorocarboxylic acids to trick cytochrome P450BM3 into initiating the hydroxylation of gaseous alkanes. , 2011, Angewandte Chemie.
[3] O. Shoji,et al. Design of H2O2-dependent oxidation catalyzed by hemoproteins. , 2011, Metallomics : integrated biometal science.
[4] O. Shoji,et al. Non-covalent modification of the active site of cytochrome P450 for inverting the stereoselectivity of monooxygenation , 2011 .
[5] O. Shoji,et al. Understanding substrate misrecognition of hydrogen peroxide dependent cytochrome P450 from Bacillus subtilis , 2010, JBIC Journal of Biological Inorganic Chemistry.
[6] Toshiki Furuya,et al. Genome mining approach for the discovery of novel cytochrome P450 biocatalysts , 2010, Applied Microbiology and Biotechnology.
[7] Kevin Cowtan,et al. research papers Acta Crystallographica Section D Biological , 2005 .
[8] Matthias Dietrich,et al. Cytochrome P450 monooxygenase from Clostridium acetobutylicum: a new alpha-fatty acid hydroxylase. , 2007, Biochemical and biophysical research communications.
[9] O. Shoji,et al. Hydrogen peroxide dependent monooxygenations by tricking the substrate recognition of cytochrome P450BSbeta. , 2007, Angewandte Chemie.
[10] Vlada B Urlacher,et al. Cytochrome P450 monooxygenases: perspectives for synthetic application. , 2006, Trends in biotechnology.
[11] R. Bernhardt,et al. Cytochromes P450 as versatile biocatalysts. , 2006, Journal of biotechnology.
[12] A. W. Schüttelkopf,et al. PRODRG: a tool for high-throughput crystallography of protein-ligand complexes. , 2004, Acta crystallographica. Section D, Biological crystallography.
[13] V. Urlacher,et al. Microbial P450 enzymes in biotechnology , 2004, Applied Microbiology and Biotechnology.
[14] F. Arnold,et al. A self-sufficient peroxide-driven hydroxylation biocatalyst. , 2003, Angewandte Chemie.
[15] Andreas Schmid,et al. Practical issues in the application of oxygenases. , 2003, Trends in biotechnology.
[16] Dong-Sun Lee,et al. Substrate Recognition and Molecular Mechanism of Fatty Acid Hydroxylation by Cytochrome P450 from Bacillus subtilis , 2003, The Journal of Biological Chemistry.
[17] F. Guengerich,et al. Cytochrome p450 enzymes in the generation of commercial products , 2002, Nature Reviews Drug Discovery.
[18] A. Schmid,et al. Oxidative biotransformations using oxygenases. , 2002, Current opinion in chemical biology.
[19] F. Arnold,et al. Protein engineering of oxygenases for biocatalysis. , 2002, Current opinion in chemical biology.
[20] J. Ogawa,et al. Critical role of the residue size at position 87 in H2O2- dependent substrate hydroxylation activity and H2O2 inactivation of cytochrome P450BM-3. , 2001, Biochemical and biophysical research communications.
[21] R. Sheldon,et al. Selective oxygen transfer catalysed by heme peroxidases: synthetic and mechanistic aspects. , 2000, Current opinion in biotechnology.
[22] E. Kusunose,et al. Fatty acid-specific, regiospecific, and stereospecific hydroxylation by cytochrome P450 (CYP152B1) from Sphingomonas paucimobilis: Substrate structure required for α-hydroxylation , 2000, Lipids.
[23] N. Fujiwara,et al. Characterization of the ybdT gene product of Bacillus subtilis: Novel fatty acid β-hydroxylating cytochrome P450 , 1999, Lipids.
[24] M F Sanner,et al. Python: a programming language for software integration and development. , 1999, Journal of molecular graphics & modelling.
[25] David S. Goodsell,et al. Automated docking using a Lamarckian genetic algorithm and an empirical binding free energy function , 1998, J. Comput. Chem..
[26] A. Vagin,et al. MOLREP: an Automated Program for Molecular Replacement , 1997 .
[27] T. Poulos,et al. The structure of the cytochrome p450BM-3 haem domain complexed with the fatty acid substrate, palmitoleic acid , 1997, Nature Structural Biology.
[28] J. Dawson,et al. Heme-Containing Oxygenases. , 1996, Chemical reviews.
[29] D. Dodds,et al. Chloroperoxidase-catalyzed asymmetric oxidations: substrate specificity and mechanistic study. , 1995 .
[30] T. Poulos,et al. The crystal structure of chloroperoxidase: a heme peroxidase--cytochrome P450 functional hybrid. , 1995, Structure.
[31] J. Thornton,et al. PROCHECK: a program to check the stereochemical quality of protein structures , 1993 .
[32] S. Boddupalli,et al. Fatty acid monooxygenation by cytochrome P-450BM-3. , 1990, The Journal of biological chemistry.
[33] L. Narhi,et al. Characterization of a catalytically self-sufficient 119,000-dalton cytochrome P-450 monooxygenase induced by barbiturates in Bacillus megaterium. , 1986, The Journal of biological chemistry.
[34] T. Omura,et al. THE CARBON MONOXIDE-BINDING PIGMENT OF LIVER MICROSOMES. I. EVIDENCE FOR ITS HEMOPROTEIN NATURE. , 1964, The Journal of biological chemistry.
[35] Martyn D Winn,et al. Macromolecular TLS refinement in REFMAC at moderate resolutions. , 2003, Methods in enzymology.
[36] Z. Otwinowski,et al. research papers Acta Crystallographica Section A Foundations of , 2003 .
[37] W. Delano. The PyMOL Molecular Graphics System , 2002 .
[38] G N Murshudov,et al. Use of TLS parameters to model anisotropic displacements in macromolecular refinement. , 2001, Acta crystallographica. Section D, Biological crystallography.