Threonine aldolases—screening, properties and applications in the synthesis of non-proteinogenic β-hydroxy-α-amino acids

被引:0
作者
Nina Dückers
Katrin Baer
Sabine Simon
Harald Gröger
Werner Hummel
机构
[1] evocatal GmbH,Department of Chemistry and Pharmacy
[2] University of Erlangen-Nuremberg,Institute of Molecular Enzyme Technology
[3] Heinrich-Heine-University of Düsseldorf,undefined
[4] Research Centre Jülich,undefined
来源
Applied Microbiology and Biotechnology | 2010年 / 88卷
关键词
Threonine aldolases; Carbon–carbon bond formation; Racemic resolution; Asymmetric synthesis; Phenylserine; Review;
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摘要
Threonine aldolases (TAs) constitute a powerful tool for catalyzing carbon–carbon bond formations in synthetic organic chemistry, thus enabling an enantio- and diastereoselective synthesis of β-hydroxy-α-amino acids. Starting from the achiral precursors glycine and an aldehyde, two new stereogenic centres are formed in this catalytic step. The resulting chiral β-hydroxy-α-amino acid products are important precursors for pharmaceuticals such as thiamphenicol, a l-threo-phenylserine derivative or l-threo-3,4-dihydroxyphenylserine. TAs are pyridoxal-5-phosphate-dependent enzymes, which, in nature, catalyze the cleavage of l-threonine or l-allo-threonine to glycine and acetaldehyde in a glycine biosynthetic pathway. TAs from a broad number of species of bacteria and fungi have been isolated and characterised as biocatalysts for the synthesis of β-hydroxy-α-amino acids. In this review, screening methods to obtain novel TAs, their biological function, biochemical characterisation and preparative biotransformations with TAs are described.
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页码:409 / 424
页数:15
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