Department of Microbiology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Groningen, The Netherlands.
J Bacteriol. 2012 Jan;194(1):115-21. doi: 10.1128/JB.05838-11. Epub 2011 Oct 21.
Rieske nonheme monooxygenase 3-ketosteroid 9α-hydroxylase (KSH) enzymes play a central role in bacterial steroid catabolism. KSH is a two-component iron-sulfur-containing enzyme, with KshA representing the terminal oxygenase component and KshB the reductase component. We previously reported that the KshA1 and KshA5 homologues of Rhodococcus rhodochrous DSM43269 have clearly different substrate preferences. KshA protein sequence alignments and three-dimensional crystal structure information for KshA(H37Rv) of Mycobacterium tuberculosis H37Rv served to identify a variable region of 58 amino acids organized in a β sheet that is part of the so-called helix-grip fold of the predicted KshA substrate binding pocket. Exchange of the β sheets between KshA1 and KshA5 resulted in active chimeric enzymes with substrate preferences clearly resembling those of the donor enzymes. Exchange of smaller parts of the KshA1 and KshA5 β-sheet regions revealed that a highly variable loop region located at the entrance of the active site strongly contributes to KSH substrate preference. This loop region may be subject to conformational changes, thereby affecting binding of different substrates in the active site. This study provides novel insights into KshA structure-function relationships and shows that KSH monooxygenase enzymes are amenable to protein engineering for the development of biocatalysts with improved substrate specificities.
Rieske 非血红素单加氧酶 3-酮类固醇 9α-羟化酶(KSH)酶在细菌类固醇代谢中起着核心作用。KSH 是一种含有铁硫的二组分酶,其中 KshA 代表末端加氧酶组分,KshB 代表还原酶组分。我们之前报道过,红球菌 DSM43269 的 KshA1 和 KshA5 同源物具有明显不同的底物偏好。KshA 蛋白序列比对和分枝杆菌结核 H37Rv 的 KshA(H37Rv)的三维晶体结构信息用于鉴定一个由 58 个氨基酸组成的可变区域,该区域组织在β片层中,是所谓的 KshA 底物结合口袋的螺旋夹折叠的一部分。在 KshA1 和 KshA5 之间交换β片层导致具有明显类似于供体酶的底物偏好的活性嵌合酶。交换 KshA1 和 KshA5 β-片层区域的较小部分表明,位于活性位点入口处的高度可变环区域强烈有助于 KSH 底物偏好。该环区域可能经历构象变化,从而影响在活性位点中不同底物的结合。本研究为 KshA 结构-功能关系提供了新的见解,并表明 KSH 单加氧酶酶适合蛋白质工程,用于开发具有改进底物特异性的生物催化剂。