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Journal Abstract Search


403 related items for PubMed ID: 19469578

  • 1. Directed evolution of an enantioselective epoxide hydrolase: uncovering the source of enantioselectivity at each evolutionary stage.
    Reetz MT, Bocola M, Wang LW, Sanchis J, Cronin A, Arand M, Zou J, Archelas A, Bottalla AL, Naworyta A, Mowbray SL.
    J Am Chem Soc; 2009 Jun 03; 131(21):7334-43. PubMed ID: 19469578
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  • 3. Cloning of an epoxide hydrolase-encoding gene from Aspergillus niger M200, overexpression in E. coli, and modification of activity and enantioselectivity of the enzyme by protein engineering.
    Kotik M, Stepánek V, Kyslík P, Maresová H.
    J Biotechnol; 2007 Oct 15; 132(1):8-15. PubMed ID: 17875334
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  • 5. Directed evolution of epoxide hydrolase from A. radiobacter toward higher enantioselectivity by error-prone PCR and DNA shuffling.
    van Loo B, Spelberg JH, Kingma J, Sonke T, Wubbolts MG, Janssen DB.
    Chem Biol; 2004 Jul 15; 11(7):981-90. PubMed ID: 15271356
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  • 6. Laboratory evolution of an epoxide hydrolase - towards an enantioconvergent biocatalyst.
    Kotik M, Archelas A, Faměrová V, Oubrechtová P, Křen V.
    J Biotechnol; 2011 Oct 20; 156(1):1-10. PubMed ID: 21854816
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  • 7. Novel microbial epoxide hydrolases for biohydrolysis of glycidyl derivatives.
    Kotik M, Brichac J, Kyslík P.
    J Biotechnol; 2005 Dec 06; 120(4):364-75. PubMed ID: 16061300
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  • 8. Learning from directed evolution: Further lessons from theoretical investigations into cooperative mutations in lipase enantioselectivity.
    Reetz MT, Puls M, Carballeira JD, Vogel A, Jaeger KE, Eggert T, Thiel W, Bocola M, Otte N.
    Chembiochem; 2007 Jan 02; 8(1):106-12. PubMed ID: 17133645
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  • 9. Effect of Binding on Enantioselectivity of Epoxide Hydrolase.
    Zaugg J, Gumulya Y, Bodén M, Mark AE, Malde AK.
    J Chem Inf Model; 2018 Mar 26; 58(3):630-640. PubMed ID: 29424533
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  • 14. Inverting enantioselectivity of Burkholderia gladioli esterase EstB by directed and designed evolution.
    Ivancic M, Valinger G, Gruber K, Schwab H.
    J Biotechnol; 2007 Mar 30; 129(1):109-22. PubMed ID: 17147964
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  • 15. Enhancing the efficiency of directed evolution in focused enzyme libraries by the adaptive substituent reordering algorithm.
    Feng X, Sanchis J, Reetz MT, Rabitz H.
    Chemistry; 2012 Apr 27; 18(18):5646-54. PubMed ID: 22434591
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  • 17. Fungal epoxide hydrolases: new landmarks in sequence-activity space.
    Smit MS.
    Trends Biotechnol; 2004 Mar 27; 22(3):123-9. PubMed ID: 15036862
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  • 18. Revisiting the lipase from Pseudomonas aeruginosa: directed evolution of substrate acceptance and enantioselectivity using iterative saturation mutagenesis.
    Prasad S, Bocola M, Reetz MT.
    Chemphyschem; 2011 Jun 06; 12(8):1550-7. PubMed ID: 21472964
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  • 19. Efficient kinetic resolution of phenyl glycidyl ether by a novel epoxide hydrolase from Tsukamurella paurometabola.
    Wu K, Wang H, Sun H, Wei D.
    Appl Microbiol Biotechnol; 2015 Nov 06; 99(22):9511-21. PubMed ID: 26088175
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  • 20. Preparative-scale kinetic resolution of racemic styrene oxide by immobilized epoxide hydrolase.
    Yildirim D, Tükel SS, Alagöz D, Alptekin O.
    Enzyme Microb Technol; 2011 Dec 10; 49(6-7):555-9. PubMed ID: 22142731
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