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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >A single mutation in the castor Delta(9)-18 : 0-desaturase changes reaction partitioning from desaturation to oxidase chemistry
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A single mutation in the castor Delta(9)-18 : 0-desaturase changes reaction partitioning from desaturation to oxidase chemistry

机译:蓖麻Delta(9)-18:0-去饱和酶中的单个突变将反应分区从去饱和变为氧化酶化学

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摘要

Sequence analysis of the diiron cluster-containing soluble desaturases suggests they are unrelated to other diiron enzymes; however, structural alignment of the core four-helix bundle of desaturases to other diiron enzymes reveals a conserved iron binding motif with similar spacing in all enzymes of this structural class, implying a common evolutionary ancestry. Detailed structural comparison of the castor desaturase with that of a peroxiclase, rubrerythrin, shows remarkable conservation of both identity and geometry of residues surrounding the diiron center, with the exception of residue 199. Position 199 is occupied by a threonine in the castor desaturase, but the equivalent position in rubrerythrin contains a glutamic acid. We previously hypothesized that a carboxylate in this location facilitates oxidase chemistry in rubrerythrin by the close apposition of a residue capable of facilitating proton transfer to the activated oxygen (in a hydrophobic cavity adjacent to the diiron center based on the crystal structure of the oxygen-binding mimic azide). Here we report that desaturase mutant T199D binds substrate but its desaturase activity decreases by approximate to 2 x 10(3)-fold. However, it shows a > 31-fold increase in peroxide-dependent oxidase activity with respect to WT desaturase, as monitored by single-turnover stopped-flow spectrometry. A 2.65-angstrom crystal structure of T199D reveals active-site geometry remarkably similar to that of rubrerythrin, consistent with its enhanced function as an oxidase enzyme. That a single amino acid substitution can switch reactivity from desaturation to oxidation provides experimental support for the hypothesis that the desaturase evolved from an ancestral oxidase enzyme.
机译:含有二铁簇的可溶性去饱和酶的序列分析表明它们与其他二铁酶无关。然而,去饱和酶的核心四螺旋束与其他二铁酶的结构比对揭示了在该结构类别的所有酶中具有相似间隔的保守的铁结合基序,这暗示着共同的进化祖先。蓖麻去饱和酶与过氧化物酶红血球菌素的详细结构比较表明,除了残基199外,在二铁中心周围的残基的身份和几何形状均得到了显着的保留。199位在蓖麻去饱和酶中被苏氨酸占据,但是紫杉醇中的等效位置含有谷氨酸。我们先前假设该位置的羧酸盐通过紧密结合能够促进质子转移至活化氧的残基(在与氧结合的晶体结构基于二铁中心的疏水腔中),促进了红荧素中的氧化酶化学反应。模拟叠氮化物)。在这里我们报告去饱和酶突变体T199D结合底物,但其去饱和酶活性降低了约2 x 10(3)倍。但是,相对于WT去饱和酶,它显示出过氧化物依赖性氧化酶活性增加> 31倍,如通过单周转停止流光谱法监测的。 T199D的2.65埃晶体结构揭示了活性部位的几何形状,与红荧素非常相似,与其增强的氧化酶功能相一致。单个氨基酸取代可以将反应性从去饱和转换为氧化,为该去饱和酶由祖先氧化酶进化而来的假设提供了实验支持。

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