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In vivo plug-and-play: a modular multi-enzyme single-cell catalyst for the asymmetric amination of ketoacids and ketones

机译:体内即插即用:模块化的多酶单细胞催化剂,用于酮酸和酮的不对称胺化

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Background Transaminases have become a key tool in biocatalysis to introduce the amine functionality into a range of molecules like prochiral α-ketoacids and ketones. However, due to the necessity of shifting the equilibrium towards the product side (depending on the amine donor) an efficient amination system may require three enzymes. So far, this well-established transformation has mainly been performed in vitro by assembling all biocatalysts individually, which comes along with elaborate and costly preparation steps. We present the design and characterization of a flexible approach enabling a quick set-up of single-cell biocatalysts producing the desired enzymes. By choosing an appropriate co-expression strategy, a modular system was obtained, allowing for flexible plug-and-play combination of enzymes chosen from the toolbox of available transaminases and/or recycling enzymes tailored for the desired application. Results By using a two-plasmid strategy for the recycling enzyme and the transaminase together with chromosomal integration of an amino acid dehydrogenase, two enzyme modules could individually be selected and combined with specifically tailored E. coli strains. Various plug-and-play combinations of the enzymes led to the construction of a series of single-cell catalysts suitable for the amination of various types of substrates. On the one hand the fermentative amination of α-ketoacids coupled both with metabolic and non-metabolic cofactor regeneration was studied, giving access to the corresponding α-amino acids in up to 96% conversion. On the other hand, biocatalysts were employed in a non-metabolic, “in vitro-type” asymmetric reductive amination of the prochiral ketone 4-phenyl-2-butanone, yielding the amine in good conversion (77%) and excellent stereoselectivity ( ee =?98%). Conclusions The described modularized concept enables the construction of tailored single-cell catalysts which provide all required enzymes for asymmetric reductive amination in a flexible fashion, representing a more efficient approach for the production of chiral amines and amino acids.
机译:背景转氨酶已成为生物催化中将胺官能团引入一系列分子(如前手性α-酮酸和酮)的关键工具。但是,由于必须将平衡移向产物侧(取决于胺供体),因此有效的胺化系统可能需要三种酶。迄今为止,这种公认的转化主要是通过单独组装所有生物催化剂在体外进行的,同时还伴随着复杂且昂贵的制备步骤。我们介绍了一种灵活的方法的设计和表征,该方法可以快速设置产生所需酶的单细胞生物催化剂。通过选择合适的共表达策略,获得了模块化系统,该系统允许灵活的即插即用组合酶,这些酶选自可用的转氨酶工具箱和/或为所需应用量身定制的循环酶。结果通过使用两种质粒的回收酶和转氨酶策略以及氨基酸脱氢酶的染色体整合,可以分别选择两种酶模块,并与专门定制的大肠杆菌菌株结合。酶的各种即插即用组合导致构建了一系列适用于胺化各种类型底物的单细胞催化剂。一方面,研究了α-酮酸的发酵胺化以及代谢和非代谢辅因子的再生,从而以高达96%的转化率获得了相应的α-氨基酸。另一方面,生物催化剂被用于前手性酮4-苯基-2-丁酮的非代谢,“体外型”不对称还原胺化反应中,产生的胺具有良好的转化率(77%)和出色的立体选择性(ee =?98%)。结论所描述的模块化概念使构建定制的单细胞催化剂成为可能,该催化剂以灵活的方式提供了不对称还原胺化所需的所有酶,代表了生产手性胺和氨基酸的更有效方法。

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