Literature DB >> 32333194

Covalent immobilization of recombinant Citrobacter koseri transaminase onto epoxy resins for consecutive asymmetric synthesis of L-phosphinothricin.

Dong-Xu Jia1,2, Hai-Peng Xu1,2, Chen-Yi Sun1,2, Chen Peng1,2, Jun-Liang Li1,2, Li-Qun Jin1,2, Feng Cheng1,2, Zhi-Qiang Liu1,2, Ya-Ping Xue3,4, Yu-Guo Zheng1,2.   

Abstract

Transaminase responsible for alienating prochiral ketone compound is applicable to asymmetric synthesis of herbicide L-phosphinothricin (L-PPT). In this work, the covalent immobilization of recombinant transaminase from Citrobacter koseri (CkTA) was investigated on different epoxy resins. Using optimum ES-105 support, a higher immobilized activity was obtained via optimizing immobilization process in terms of enzyme loading, coupling time and initial PLP concentration. Crucially, due to blocking unreacted epoxy groups on support surface with amino acids, the reaction temperature of blocked immobilized biocatalyst was enhanced from 37 to 57 °C. Its thermostability at 57 °C was also found to be superior to that of free CkTA. The Km value was shifted from 36.75 mM of free CkTA to 39.87 mM of blocked immobilized biocatalyst, demonstrating that the affinity of enzyme to the substrate has not been apparently altered. Accordingly, the biocatalyst performed the consecutive synthesis of L-PPT for 11 cycles (yields>91%) with retaining more than 91.13% of the initial activity. The seemingly the highest reusability demonstrates this biocatalyst has prospective for reducing the costs of consecutive synthesis of L-PPT with high conversion.

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Keywords:  Asymmetric synthesis; Covalent immobilization; L-phosphinothricin; Transaminase

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Year:  2020        PMID: 32333194     DOI: 10.1007/s00449-020-02351-3

Source DB:  PubMed          Journal:  Bioprocess Biosyst Eng        ISSN: 1615-7591            Impact factor:   3.210


  1 in total

1.  Kinetics of enzyme-catalysed desymmetrisation of prochiral substrates: product enantiomeric excess is not always constant.

Authors:  Peter J Halling
Journal:  Beilstein J Org Chem       Date:  2021-04-21       Impact factor: 2.883

  1 in total

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