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Protein-engineered shift of the reaction equilibrium in transaminase reaction direction enables the asymmetric
Bin Yan1, Hongru Zhao2, Bingmei Su3
1College of Biological Science and Engineering, Fuzhou University, Fuzhou, 350108, China.
Abstract:
(R)-1-Phenylethylamine [(R)-1-PEA] is an important chiral compound widely used in pharmaceuticals, chemical synthesis, and materials science. ω-Transaminases are valuable biocatalysts for the asymmetric amination of ketone substrates under mild conditions and represent an attractive tool for the green synthesis of chiral amines. However, in natural (R)-selective transaminases, acetophenone (AP) is more commonly produced as the deamination product of (R)-1-PEA, whereas its amination as an amino acceptor is generally inefficient. In this study, an (R)-selective ω-transaminase from Thermomyces stellatus (TsRTA), which originally catalyzed only the deamination of (R)-1-PEA to AP, was selected as the engineering target. Protein engineering was performed to shift its reaction equilibrium, thereby enabling the asymmetric synthesis of (R)-1-PEA from AP. To overcome the thermodynamic limitation caused by acetone accumulation, an "acetone elimination-cofactor regeneration" coupled module was introduced to improve the whole-cell catalytic efficiency for (R)-1-PEA synthesis using AP as the substrate. Under optimal reaction conditions (35 °C, pH 10.0, 0.5 mM PLP, an isopropylamine/AP molar ratio of 4:1, 200 mM formate, and 0.2 mM NAD+), the whole-cell catalytic system produced 67 mM (R)-1-PEA from 100 mM AP within 8 h. This study lays a foundation for the scalable preparation of (R)-1-PEA and provides a useful reference for regulating the reaction direction of transaminases.
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