Whittington D A, Lippard S J
Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
J Am Chem Soc. 2001 Feb 7;123(5):827-38. doi: 10.1021/ja003240n.
The oxidation of methane to methanol is performed at carboxylate-bridged dinuclear iron centers in the soluble methane monooxygenase hydroxylase (MMOH). Previous structural studies of MMOH, and the related R2 subunit of ribonucleotide reductase, have demonstrated the occurrence of carboxylate shifts involving glutamate residues that ligate the catalytic iron atoms. These shifts are thought to have important mechanistic implications. Recent kinetic and theoretical studies have also emphasized the importance of hydrogen bonding and pH effects at the active site. We report here crystal structures of MMOH from Methylococcus capsulatus (Bath) in the diiron(II), diiron(III), and mixed-valent Fe(II)Fe(III) oxidation states, and at pH values of 6.2, 7.0, and 8.5. These structures were investigated in an effort to delineate the range of possible motions at the MMOH active site and to identify hydrogen-bonding interactions that may be important in understanding catalysis by the enzyme. Our results present the first view of the diiron center in the mixed-valent state, and they indicate an increased lability for ferrous ions in the enzyme. Alternate conformations of Asn214 near the active site according to redox state and a distortion in one of the alpha-helices adjacent to the metal center in the diiron(II) state have also been identified. These changes alter the surface of the protein in the vicinity of the catalytic core and may have implications for small-molecule accessibility to the active site and for protein component interactions in the methane monooxygenase system. Collectively, these results help to explain previous spectroscopic observations and provide new insight into catalysis by the enzyme.
甲烷向甲醇的氧化反应在可溶性甲烷单加氧酶羟化酶(MMOH)中由羧酸盐桥连的双核铁中心进行。此前对MMOH以及核糖核苷酸还原酶相关R2亚基的结构研究表明,涉及连接催化铁原子的谷氨酸残基会发生羧酸盐移位。这些移位被认为具有重要的机制意义。最近的动力学和理论研究也强调了活性位点处氢键和pH效应的重要性。我们在此报告来自荚膜甲基球菌(巴斯)的MMOH在二价铁、三价铁以及混合价态Fe(II)Fe(III)氧化态下,于pH值为6.2、7.0和8.5时的晶体结构。对这些结构进行研究是为了描绘MMOH活性位点可能的运动范围,并识别在理解该酶催化作用中可能重要的氢键相互作用。我们的结果首次展示了混合价态下的双核铁中心,并且表明该酶中亚铁离子的活性增加。还确定了活性位点附近Asn214根据氧化还原状态的交替构象以及二价铁状态下与金属中心相邻的一个α螺旋中的扭曲。这些变化改变了催化核心附近蛋白质的表面,可能对活性位点小分子的可及性以及甲烷单加氧酶系统中蛋白质组分的相互作用产生影响。总体而言,这些结果有助于解释先前的光谱观察结果,并为该酶的催化作用提供新的见解。