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三位一体:通过工程化胺转氨酶的辅因子结合元件实现温度、溶剂和催化稳定性

Three in One: Temperature, Solvent and Catalytic Stability by Engineering the Cofactor-Binding Element of Amine Transaminase.

作者信息

Börner Tim, Rämisch Sebastian, Bartsch Sebastian, Vogel Andreas, Adlercreutz Patrick, Grey Carl

机构信息

Department of Chemistry and Biotechnology, Institute of Materials Science, Nestlé Research Center, Route du Jorat 57, 1000, Lausanne 26, Switzerland.

Schief Lab, Department of Immunology and Microbial Science, The Scripps Research Institute, 10550 N Torrey Pines Road, La Jolla, CA, 92037, USA.

出版信息

Chembiochem. 2017 Aug 4;18(15):1482-1486. doi: 10.1002/cbic.201700236. Epub 2017 Jun 13.

Abstract

Amine transaminase (ATA) catalyse enantioselectively the direct amination of ketones, but insufficient stability during catalysis limits their industrial applicability. Recently, we revealed that ATAs suffer from substrate-induced inactivation mechanism involving dissociation of the enzyme-cofactor intermediate. Here, we report on engineering the cofactor-ring-binding element, which also shapes the active-site entrance. Only two point mutations in this motif improved temperature and catalytic stability in both biphasic media and organic solvent. Thermodynamic analysis revealed a higher melting point for the enzyme-cofactor intermediate. The high cofactor affinity eliminates the need for pyridoxal 5'-phosphate supply, thus making large-scale reactions more cost effective. This is the first report on stabilising a tetrameric ATA by mutating a single structural element. As this structural "hotspot" is a common feature of other transaminases it could serve as a general engineering target.

摘要

胺转氨酶(ATA)可对酮进行对映选择性直接胺化反应,但催化过程中稳定性不足限制了其在工业上的应用。最近,我们发现ATA存在底物诱导的失活机制,该机制涉及酶 - 辅因子中间体的解离。在此,我们报道了对辅因子环结合元件的工程改造,该元件也塑造了活性位点入口。此基序中仅两个点突变就提高了在双相介质和有机溶剂中的温度稳定性及催化稳定性。热力学分析表明酶 - 辅因子中间体具有更高的熔点。高辅因子亲和力消除了对磷酸吡哆醛供应的需求,从而使大规模反应更具成本效益。这是通过突变单个结构元件来稳定四聚体ATA的首次报道。由于这个结构“热点”是其他转氨酶的共同特征,它可作为一个通用的工程靶点。

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