Schulz Frank, Leca François, Hollmann Frank, Reetz Manfred T
Max-Planck-Institut für Kohlenforschung Kaiser-Wilhelm-Platz 1, D-45470 Mülheim/Ruhr, Germany.
Beilstein J Org Chem. 2005 Oct 7;1(1):10. doi: 10.1186/1860-5397-1-10.
Baeyer-Villiger monooxygenases (BVMOs) are extremely promising catalysts useful for enantioselective oxidation reactions of ketones, but organic chemists have not used them widely due to several reasons. These include instability of the enzymes in the case of in vitro and even in vivo systems, reactant/product inhibition, problems with upscaling and the necessity of using specialized equipment. The present study shows that the thermally stable phenylacetone monooxygenase (PAMO) and recently engineered mutants can be used as a practical catalysts for enantioselective Baeyer-Villiger oxidations of several ketones on a preparative scale under in vitro conditions. For this purpose several parameters such as buffer composition, the nature of the solvent system and the co-factor regeneration system were optimized. Overall a fairly versatile and efficient catalytic system for enantioselective laboratory scale BV-oxidations of ketones was developed, which can easily be applied even by those organic chemists who are not well versed in the use of enzymes.
拜耳-维利格单加氧酶(BVMOs)是用于酮的对映选择性氧化反应的极具前景的催化剂,但由于多种原因,有机化学家尚未广泛使用它们。这些原因包括在体外甚至体内系统中酶的不稳定性、反应物/产物抑制、放大问题以及使用专门设备的必要性。本研究表明,热稳定的苯丙酮单加氧酶(PAMO)及其最近改造的突变体可作为实用催化剂,在体外条件下对几种酮进行制备规模的对映选择性拜耳-维利格氧化反应。为此,对缓冲液组成、溶剂体系性质和辅因子再生系统等几个参数进行了优化。总体而言,开发了一种用于酮的对映选择性实验室规模BV氧化反应的相当通用且高效的催化体系,即使是那些不太熟悉酶使用的有机化学家也能轻松应用。