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Spectroscopic Studies of the Corrinoid/Iron–Sulfur Protein from Moorella thermoacetica

机译:嗜热穆尔氏菌中类固醇/铁硫蛋白的光谱研究

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摘要

Methyl transfer reactions are important in a number of biochemical pathways. An important class of methyltransferases uses the cobalt cofactor cobalamin, which receives a methyl group from an appropriate methyl donor protein to form an intermediate organometallic methyl–Co bond that subsequently is cleaved by a methyl acceptor. Control of the axial ligation state of cobalamin influences both the mode (i.e., homolytic vs heterolytic) and the rate of Co–C bond cleavage. Here we have studied the axial ligation of a corrinoid iron–sulfur protein (CFeSP) that plays a key role in energy generation and cell carbon synthesis by anaerobic microbes, such as methanogenic archaea and acetogenic bacteria. This protein accepts a methyl group from methyltetrahydrofolate forming Me–Co3+CFeSP that then donates a methyl cation (Me) from Me–Co3+CFeSP to a nickel site on acetyl-CoA synthase. To unambiguously establish the binding scheme of the corrinoid cofactor in the CFeSP, we have combined resonance Raman, magnetic circular dichroism, and EPR spectroscopic methods with computational chemistry. Our results clearly demonstrate that the Me–Co3+ and Co2+ states of the CFeSP have an axial water ligand like the free MeCbi+ and Co2+Cbi+ cofactors; however, the Co–OH2 bond length is lengthened by about 0.2 Å for the protein-bound cofactor. Elongation of the Co–OH2 bond of the CFeSP-bound cofactor is proposed to make the cobalt center more “Co1+-like”, a requirement to facilitate heterolytic Co–C bond cleavage.
机译:甲基转移反应在许多生化途径中都很重要。一类重要的甲基转移酶使用钴辅因子钴胺素,钴胺素从合适的甲基供体蛋白接收甲基,形成中间的有机金属甲基-Co键,随后被甲基受体裂解。钴胺素的轴向连接状态的控制既影响模式(即均溶还是杂溶),也影响Co-C键的裂解速率。在这里,我们研究了类固醇铁-硫蛋白(CFeSP)的轴向连接,该蛋白在厌氧微生物(如产甲烷的古细菌和产乙酸的细菌)的能量生成和细胞碳合成中起着关键作用。该蛋白质接受来自四氢叶酸甲酯的甲基,形成Me–Co 3 + CFeSP,然后将Me–Co 3 + CFeSP的甲基阳离子(Me)捐赠给镍乙酰辅酶A合酶。为了明确地建立CFeSP中类皮质激素辅因子的结合方案,我们将共振拉曼光谱,磁性圆二色性光谱和EPR光谱法与计算化学相结合。我们的结果清楚地表明,CFeSP的Me–Co 3 + 和Co 2 + 状态具有轴向水配体,如自由的MeCbi + 和Co 2 + Cbi + 辅助因子;但是,对于蛋白质结合的辅因子,Co-OH2键的长度延长了约0.2Å。提议延长与CFeSP结合的辅因子的Co-OH2键,以使钴中心更像“ Co 1 + -样”,这是促进杂化Co-C键裂解的要求。

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