Knaus Tanja, Böhmer Wesley, Mutti Francesco G
Van't Hoff Institute for Molecular Sciences (HIMS), University of Amsterdam, Science Park 904, 1098 XH, The Netherlands.
Green Chem. 2017 Jan 21;19(2):453-463. doi: 10.1039/C6GC01987K.
Amines constitute the major targets for the production of a plethora of chemical compounds that have applications in the pharmaceutical, agrochemical and bulk chemical industries. However, the asymmetric synthesis of α-chiral amines with elevated catalytic efficiency and atom economy is still a very challenging synthetic problem. Here, we investigated the biocatalytic reductive amination of carbonyl compounds employing a rising class of enzymes for amine synthesis: amine dehydrogenases (AmDHs). The three AmDHs from this study - operating in tandem with a formate dehydrogenase from (Cb-FDH) for the recycling of the nicotinamide coenzyme - performed the efficient amination of a range of diverse aromatic and aliphatic ketones and aldehydes with up to quantitative conversion and elevated turnover numbers (TONs). Moreover, the reductive amination of prochiral ketones proceeded with perfect stereoselectivity, always affording the ()-configured amines with more than 99% enantiomeric excess. The most suitable amine dehydrogenase, the optimised catalyst loading and the required reaction time were determined for each substrate. The biocatalytic reductive amination with this dual-enzyme system (AmDH-Cb-FDH) possesses elevated atom efficiency as it utilizes the ammonium formate buffer as the source of both nitrogen and reducing equivalents. Inorganic carbonate is the sole by-product.
胺类化合物是众多具有医药、农用化学品和大宗化学品工业应用的化合物生产的主要目标。然而,以高催化效率和原子经济性实现α-手性胺的不对称合成仍然是一个极具挑战性的合成问题。在此,我们研究了利用一类新兴的用于胺合成的酶——胺脱氢酶(AmDHs)对羰基化合物进行生物催化还原胺化反应。本研究中的三种胺脱氢酶与来自嗜热栖热放线菌(Cb-FDH)的甲酸脱氢酶协同作用以实现烟酰胺辅酶的循环利用,它们对一系列不同的芳香族和脂肪族酮及醛进行了高效胺化反应,转化率高达定量且周转数(TONs)有所提高。此外,前手性酮的还原胺化反应具有完美的立体选择性,总是以超过99%的对映体过量得到()构型的胺。针对每种底物确定了最合适的胺脱氢酶、优化的催化剂负载量和所需的反应时间。这种双酶体系(AmDH-Cb-FDH)的生物催化还原胺化反应具有较高的原子效率,因为它利用甲酸铵缓冲液作为氮源和还原当量的来源。无机碳酸盐是唯一的副产物。