Complete reversal of enantioselectivity of an enzyme-catalyzed reaction by directed evolution
暂无分享,去创建一个
Manfred T. Reetz | Karl-Erich Jaeger | M. Reetz | K. Jaeger | Stephanie Wilensek | Dongxing Zha | Dongxing Zha | Markus Hermes | Stephanie Wilensek | Markus Hermes
[1] M. T. Reetz,et al. Erzeugung enantioselektiver Biokatalysatoren für die Organische Chemie durch In‐vitro‐Evolution , 1997 .
[2] W. Stemmer. Rapid evolution of a protein in vitro by DNA shuffling , 1994, Nature.
[3] F. Arnold. Combinatorial and computational challenges for biocatalyst design , 2001, Nature.
[4] W. Stemmer,et al. DNA shuffling of a family of genes from diverse species accelerates directed evolution , 1998, Nature.
[5] M. T. Reetz,et al. Kombinatorische und evolutionsgesteuerte Methoden zur Bildung enantioselektiver Katalysatoren , 2001 .
[6] M. Nardini,et al. University of Groningen Crystal structure of Pseudomonas aeruginosa lipase in the open conformation-The prototype for family I.1 of bacterial lipases Nardini, , 2000 .
[7] F. Arnold. Design by Directed Evolution , 1998 .
[8] M. Reetz. Application of directed evolution in the development of enantioselective enzymes , 2000 .
[9] Frances H. Arnold,et al. Inverting enantioselectivity by directed evolution of hydantoinase for improved production of l-methionine , 2000, Nature Biotechnology.
[10] A. Crameri,et al. Combinatorial multiple cassette mutagenesis creates all the permutations of mutant and wild-type sequences. , 1995, BioTechniques.
[11] Chi-Huey Wong,et al. Enzymes for chemical synthesis , 2001, Nature.
[12] M. T. Reetz,et al. Gerichtete Evolution eines enantioselektiven Enzyms durch kombinatorische multiple Kassetten‐Mutagenese , 2001 .