Division of Environmental and Biomolecular Systems, Oregon Health and Sciences University, 20000 NW Walker Road, Beaverton, OR 97006, USA.
J Biol Inorg Chem. 2011 Feb;16(2):285-97. doi: 10.1007/s00775-010-0725-z. Epub 2010 Oct 31.
Sco is a red copper protein that plays an essential yet poorly understood role in the metalation of the Cu(A) center of cytochrome oxidase, and is stable in both the Cu(I) and Cu(II) forms. To determine which oxidation state is important for function, we constructed His135 to Met or selenomethionine (SeM) variants that were designed to stabilize the Cu(I) over the Cu(II) state. H135M was unable to complement a scoΔ strain of Bacillus subtilis, indicating that the His to Met substitution abrogated cytochrome oxidase maturation. The Cu(I) binding affinities of H135M and H135SeM were comparable to that of the WT and 100-fold tighter than that of the H135A variant. The coordination chemistry of the H135M and H135SeM variants was studied by UV/vis, EPR, and XAS spectroscopy in both the Cu(I) and the Cu(II) forms. Both oxidation states bound copper via the S atoms of C45, C49 and M135. In particular, EXAFS data collected at both the Cu and the Se edges of the H135SeM derivative provided unambiguous evidence for selenomethionine coordination. Whereas the coordination chemistry and copper binding affinity of the Cu(I) state closely resembled that of the WT protein, the Cu(II) state was unstable, undergoing autoreduction to Cu(I). H135M also reacted faster with H(2)O(2) than WT Sco. These data, when coupled with the complete elimination of function in the H135M variant, imply that the Cu(I) state cannot be the sole determinant of function; the Cu(II) state must be involved in function at some stage of the reaction cycle.
Sco 是一种红色铜蛋白,在细胞色素氧化酶 Cu(A) 中心的金属化过程中发挥着重要但尚未完全理解的作用,并且在 Cu(I) 和 Cu(II) 两种形式下都稳定。为了确定哪种氧化态对功能重要,我们构建了 His135 突变为 Met 或硒代甲硫氨酸 (SeM) 的变体,这些变体旨在稳定 Cu(I) 而不是 Cu(II) 状态。H135M 无法补充枯草芽孢杆菌 scoΔ 菌株,表明 His 到 Met 的取代使细胞色素氧化酶成熟失活。H135M 和 H135SeM 的 Cu(I) 结合亲和力与 WT 相当,比 H135A 变体强 100 倍。通过 UV/vis、EPR 和 XAS 光谱研究了 H135M 和 H135SeM 变体在 Cu(I)和 Cu(II)两种形式下的配位化学。两种氧化态都通过 C45、C49 和 M135 的 S 原子与铜结合。特别是,在 H135SeM 衍生物的 Cu 和 Se 边缘收集的 EXAFS 数据为硒代甲硫氨酸配位提供了明确的证据。尽管 Cu(I) 状态的配位化学和铜结合亲和力与 WT 蛋白非常相似,但 Cu(II) 状态不稳定,会自动还原为 Cu(I)。H135M 与 H2O2 的反应速度也比 WT Sco 快。这些数据,加上 H135M 变体完全丧失功能,表明 Cu(I) 状态不能是功能的唯一决定因素;Cu(II) 状态必须在反应循环的某个阶段参与功能。