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Analysis of Substrate Access to Active Sites in Bacterial Multicomponent Monooxygenase Hydroxylases: X-Ray Crystal Structure of Xenon-Pressurized Phenol Hydroxylase from Pseudomonas Sp Ox1

机译:细胞多组分单加氧酶羟化酶中底物进入活性位点的分析:来自假单胞菌spox1的氙加压苯酚羟化酶的X射线晶体结构

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摘要

In all structurally characterized bacterial multicomponent monooxygenase (BMM) hydroxylase proteins, a series of hydrophobic cavities in the α-subunit trace a conserved path from the protein exterior to the carboxylate-bridged diiron active site. This study examines these cavities as a potential route for transport of dioxygen to the active site by crystallographic characterization of a xenon-pressurized sample of the hydroxylase component of phenol hydroxylase from Pseudomonas sp. OX1. Computational analyses of the hydrophobic cavities in the hydroxylase α-subunits of phenol hydroxylase (PHH), soluble methane monooxygenase (MMOH), and toluene/o-xylene monooxygenase (ToMOH) are also presented. The results, together with previous findings from crystallographic studies of xenon-pressurized sMMO hydroxylase, clearly identify the propensity for these cavities to bind hydrophobic gas molecules in the protein interior. This proposed functional role is supported by recent stopped flow kinetic studies of ToMOH variants [Song, W. J., et al. (2011) Proc. Natl. Acad. Sci. U.S.A.108, 14795–14800]. In addition to information about the Xe sites, the structure determination revealed significantly weakened binding of regulatory protein to the hydroxylase in comparison to that in the previously reported structure of PHH, as well as the presence of a newly identified metal-binding site in the α-subunit that adopts a linear coordination environment consistent with Cu(I), and a glycerol molecule bound to Fe1 in a fashion that is unique among hydrocarbon–diiron site adducts reported to date in BMM hydroxylase structures. Finally, a comparative analysis of the α-subunit structures of PHH, MMOH, and ToMOH details proposed routes for the other three BMM substrates, the hydrocarbon, electrons, and protons, comprising cavities, channels, hydrogen-bonding networks, and pores in the structures of their α-subunits.
机译:在所有具有结构特征的细菌多组分单加氧酶(BMM)羟化酶蛋白中,α-亚基中的一系列疏水性腔都从蛋白质外部到羧酸盐桥联的二铁活性位点,都守恒着一条路径。这项研究检查了这些腔体作为氙气加压假单胞菌苯酚羟化酶羟化酶成分的样品的晶体学表征,作为将双氧运输到活性位点的潜在途径。 OX1。还介绍了对苯酚羟化酶(PHH),可溶性甲烷单加氧酶(MMOH)和甲苯/邻二甲苯单加氧酶(ToMOH)的羟化酶α亚基中疏水腔的计算分析。该结果与氙加压sMMO羟化酶的晶体学研究的先前发现一起,清楚地确定了这些空腔与蛋白质内部疏水性气体分子结合的倾向。最近提出的ToMOH变体的停止流动动力学研究[Song,W. J.,et al。 (2011)Proc。 Natl。学院科学U.S.A.108,14795–14800]。除了有关Xe位点的信息外,结构测定还表明,与以前报道的PHH结构相比,调节蛋白与羟化酶的结合显着减弱,并且α中存在新鉴定的金属结合位点-亚基,采用与Cu(I)一致的线性配位环境,以及一种以迄今在BMM羟化酶结构中报道的烃-二铁位点加合物独特的方式与Fe1结合的甘油分子。最后,对PHH,MMOH和ToMOH的α亚基结构进行比较分析,详细说明了其他三种BMM底物,碳氢化合物,电子和质子的提议路线,包括空腔,通道,氢键网络和孔中的孔。 α-亚基的结构。

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