Kristan Katja, Stojan Jure, Adamski Jerzy, Lanisnik Rizner Tea
Institute of Biochemistry, Faculty of Medicine, University of Ljubljana, Vrazov trg 2, 1000 Ljubljana, Slovenia.
J Biotechnol. 2007 Mar 30;129(1):123-30. doi: 10.1016/j.jbiotec.2006.11.025. Epub 2006 Dec 3.
Reduction of 17-ketosteroids is a biocatalytic process of economic significance for the production of steroid drugs. This reaction can be catalyzed by different microbial 17beta-hydroxysteroid dehydrogenases (17beta-HSD), like the 17beta-HSD activity of Saccharomyces cerevisiae, Pichia faranosa and Mycobacterium sp., and by purified 3beta,17beta-HSD from Pseudomonas testosteroni. In addition to the bacterial 3beta,17beta-HSD the 17beta-HSD of the filamentous fungus Cochliobolus lunatus is the only microbial 17beta-HSD that has been expressed as a recombinant protein and fully characterized. On the basis of its modeled 3D structure, we selected several positions for the replacement of amino acids by site-directed mutagenesis to change substrate specificity, alter coenzyme requirements, and improve overall catalytic activity. Replacement of Val161 and Tyr212 in the substrate-binding region by Gly and Ala, respectively, increased the initial rates for the conversion of androstenedione to testosterone. Replacement of Tyr49 within the coenzyme binding site by Asp changed the coenzyme specificity of the enzyme. This latter mutant can convert the steroids not only in the presence of NADP(+) and NADPH, but also in the presence of NADH and NAD(+). The replacement of His164, located in the non-flexible part of the 'lid' covering the active center resulted in a conformation of the enzyme that possessed a higher catalytic activity.
17-酮类固醇的还原是甾体药物生产中具有经济意义的生物催化过程。该反应可由不同的微生物17β-羟基类固醇脱氢酶(17β-HSD)催化,如酿酒酵母、法氏毕赤酵母和分枝杆菌属的17β-HSD活性,以及睾丸酮假单胞菌纯化的3β,17β-HSD。除了细菌3β,17β-HSD外,丝状真菌新月弯孢霉的17β-HSD是唯一已作为重组蛋白表达并得到充分表征的微生物17β-HSD。基于其模拟的三维结构,我们通过定点诱变选择了几个氨基酸替换位置,以改变底物特异性、改变辅酶需求并提高整体催化活性。分别用甘氨酸和丙氨酸替换底物结合区域中的缬氨酸161和酪氨酸212,提高了雄烯二酮转化为睾酮的初始速率。用天冬氨酸替换辅酶结合位点内的酪氨酸49改变了该酶的辅酶特异性。后一种突变体不仅可以在NADP(+)和NADPH存在的情况下转化甾体,也可以在NADH和NAD(+)存在的情况下转化甾体。位于覆盖活性中心的“盖子”非柔性部分的组氨酸164的替换导致该酶具有更高催化活性的构象。