Department of Chemistry, Inorganic Chemistry Laboratory, University of Oxford, Oxford OX1 3QR, U.K.
Division of Molecular Microbiology, School of Life Sciences, University of Dundee, Dundee DD1 5EH, U.K.
Biochem J. 2018 Apr 16;475(7):1353-1370. doi: 10.1042/BCJ20180053.
Under anaerobic conditions, is able to metabolize molecular hydrogen via the action of several [NiFe]-hydrogenase enzymes. Hydrogenase-2, which is typically present in cells at low levels during anaerobic respiration, is a periplasmic-facing membrane-bound complex that functions as a proton pump to convert energy from hydrogen (H) oxidation into a proton gradient; consequently, its structure is of great interest. Empirically, the complex consists of a tightly bound core catalytic module, comprising large (HybC) and small (HybO) subunits, which is attached to an Fe-S protein (HybA) and an integral membrane protein (HybB). To date, efforts to gain a more detailed picture have been thwarted by low native expression levels of Hydrogenase-2 and the labile interaction between HybOC and HybA/HybB subunits. In the present paper, we describe a new overexpression system that has facilitated the determination of high-resolution crystal structures of HybOC and, hence, a prediction of the quaternary structure of the HybOCAB complex.
在厌氧条件下, 能够通过几种 [NiFe]-氢化酶的作用来代谢分子氢。氢化酶-2 在厌氧呼吸过程中通常以低水平存在于细胞中,是一种面向周质的膜结合复合物,作为质子泵起作用,将能量从氢 (H) 的氧化转化为质子梯度;因此,其结构非常重要。经验上,该复合物由紧密结合的核心催化模块组成,包括大(HybC)和小(HybO)亚基,其连接到 Fe-S 蛋白 (HybA) 和整合膜蛋白 (HybB)。迄今为止,由于氢化酶-2 的天然表达水平低和 HybOC 与 HybA/HybB 亚基之间不稳定的相互作用,获得更详细图片的努力一直受到阻碍。在本文中,我们描述了一种新的过表达系统,该系统有助于确定 HybOC 的高分辨率晶体结构,从而预测 HybOCAB 复合物的四级结构。