Literature DB >> 12768628

Asymmetric synthesis of L-homophenylalanine by equilibrium-shift using recombinant aromatic L-amino acid transaminase.

Byung-Kwan Cho1, Joo-Hyun Seo, Tae-Won Kang, Byung-Gee Kim.   

Abstract

L-Homophenylalanine (L-HPA) was asymmetrically synthesized from 2-oxo-4-phenylbutyric acid (2-OPBA) and L-aspartate using a recombinant aromatic amino acid transaminase (AroAT). To screen microorganisms having such an L-specific AroAT with a relaxed substrate inhibition in the asymmetric synthesis of unnatural amino acids, enrichment cultures were performed in a minimal media containing 50 mM L-HPA as a sole nitrogen source. To reduce the intracellular background synthetic activity by amino acid pools in the cells, a two-step screening method was used. The putative AroAT (i.e., AroATEs) from the screened Enterobacter sp. BK2K-1 was cloned, sequenced, and overexpressed in E. coli cells. The activity of the overexpressed AroATEs was 314-fold higher than that of the wild-type cell. The substrate specificities of the enzyme and homology search revealed that the cloned transaminase is true AroAT. The AroATEs showed a substrate inhibition by 2-OPBA from 40 mM in the asymmetric synthesis, which made it difficult to perform batch asymmetric synthesis of L-HPA at high concentrations of 2-OPBA. To avoid the substrate inhibition by 2-OPBA, intermittent addition of the solid-state substrate was attempted to obtain a high concentration of L-HPA. By using the cell extract (75 U) obtained from the recombinant E. coli harboring the AroATEs gene, the asymmetric synthesis of L-HPA at 840 mM of 2-OPBA resulted in >94% of conversion yield and >99% ee of L-HPA of optical purity. Due to the low solubility (<2 mM) of L-HPA in the reaction buffer, synthesized L-HPA was continuously precipitated in the reaction media, which drives the reaction equilibrium towards the product formation. After full completion of the reaction, L-HPA of high purity (>99% ee) was easily recovered by simple pH shift of the reaction media. This method can permit very efficient asymmetric synthesis of other unnatural amino acids using a single transaminase reaction. Copyright 2003 Wiley Periodicals, Inc. Biotechnol Bioeng 83: 226-234, 2003.

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Year:  2003        PMID: 12768628     DOI: 10.1002/bit.10661

Source DB:  PubMed          Journal:  Biotechnol Bioeng        ISSN: 0006-3592            Impact factor:   4.530


  4 in total

1.  Cloning and characterization of a novel beta-transaminase from Mesorhizobium sp. strain LUK: a new biocatalyst for the synthesis of enantiomerically pure beta-amino acids.

Authors:  Juhan Kim; Dohyun Kyung; Hyungdon Yun; Byung-Kwan Cho; Joo-Hyun Seo; Minho Cha; Byung-Gee Kim
Journal:  Appl Environ Microbiol       Date:  2007-01-26       Impact factor: 4.792

2.  The substrate specificity, enantioselectivity and structure of the (R)-selective amine : pyruvate transaminase from Nectria haematococca.

Authors:  Christopher Sayer; Ruben J Martinez-Torres; Nina Richter; Michail N Isupov; Helen C Hailes; Jennifer A Littlechild; John M Ward
Journal:  FEBS J       Date:  2014-04-07       Impact factor: 5.542

3.  Thermostable Branched-Chain Amino Acid Transaminases From the Archaea Geoglobus acetivorans and Archaeoglobus fulgidus: Biochemical and Structural Characterization.

Authors:  Michail N Isupov; Konstantin M Boyko; Jan-Moritz Sutter; Paul James; Christopher Sayer; Marcel Schmidt; Peter Schönheit; Alena Yu Nikolaeva; Tatiana N Stekhanova; Andrey V Mardanov; Nikolai V Ravin; Ekaterina Yu Bezsudnova; Vladimir O Popov; Jennifer A Littlechild
Journal:  Front Bioeng Biotechnol       Date:  2019-01-24

Review 4.  Reprogramming natural proteins using unnatural amino acids.

Authors:  Anup Adhikari; Bibek Raj Bhattarai; Ashika Aryal; Niru Thapa; Puja Kc; Ashma Adhikari; Sushila Maharjan; Prem B Chanda; Bishnu P Regmi; Niranjan Parajuli
Journal:  RSC Adv       Date:  2021-11-26       Impact factor: 4.036

  4 in total

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