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首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >Isotropic exchange interaction between Mo and the proximal FeS center in the xanthine oxidase family member aldehyde oxidoreductase from Desulfovibrio gigas on native and polyalcohol inhibited samples: an EPR and QM/MM study
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Isotropic exchange interaction between Mo and the proximal FeS center in the xanthine oxidase family member aldehyde oxidoreductase from Desulfovibrio gigas on native and polyalcohol inhibited samples: an EPR and QM/MM study

机译:Mo和近端FeS中心之间的各向同性交换相互作用:来自天然和多元醇抑制样品的Desulfovibrio gigas的黄嘌呤氧化酶家族成员醛氧化还原酶:EPR和QM / MM研究

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摘要

Aldehyde oxidoreductase from Desulfovibrio gigas (DgAOR) is a homodimeric molybdenum-containing protein that catalyzes the hydroxylation of aldehydes to carboxylic acids and contains a Mo-pyranopterin active site and two FeS centers called FeS 1 and FeS 2. The electron transfer reaction inside DgAOR is proposed to be performed through a chemical pathway linking Mo and the two FeS clusters involving the pyranopterin ligand. EPR studies performed on reduced as-prepared DgAOR showed that this pathway is able to transmit very weak exchange interactions between Mo(V) and reduced FeS 1. Similar EPR studies but performed on DgAOR samples inhibited with glycerol and ethylene glycol showed that the value of the exchange coupling constant J increases similar to 2 times upon alcohol inhibition. Structural studies in these DgAOR samples have demonstrated that the Mo-FeS 1 bridging pathway does not show significant differences, confirming that the changes in J observed upon inhibition cannot be ascribed to structural changes associated neither with pyranopterin and FeS 1 nor with changes in the electronic structure of FeS 1, as its EPR properties remain unchanged. Theoretical calculations indicate that the changes in J detected by EPR are related to changes in the electronic structure of Mo(V) determined by the replacement of the OHx labile ligand for an alcohol molecule. Since the relationship between electron transfer rate and isotropic exchange interaction, the present results suggest that the intraenzyme electron transfer process mediated by the pyranopterin moiety is governed by a Mo ligand-based regulatory mechanism.
机译:脱硫弧菌的醛氧化还原酶(DgAOR)是一种含钼的均二聚体蛋白,可催化醛羟基化为羧酸,并包含一个Mo-吡喃蝶呤活性位点和两个称为FeS 1和FeS 2的FeS中心。DgAOR内部的电子转移反应为提议通过连接钼和涉及吡喃蝶呤配体的两个FeS簇的化学途径进行。对降低的DgAOR进行的EPR研究表明,该途径能够传递Mo(V)与还原的FeS 1之间非常弱的交换相互作用。类似的EPR研究,但对受甘油和乙二醇抑制的DgAOR样品进行了研究,表明当酒精被抑制时,交换偶合常数J增加到类似的两倍。在这些DgAOR样品中进行的结构研究表明,Mo-FeS 1的桥接途径没有显示出显着差异,这证实了抑制后观察到的J的变化既不能归因于吡喃蝶呤和FeS 1的结构变化,也不能归因于电子的变化FeS 1的结构,因为其EPR性能保持不变。理论计算表明,EPR检测到的J的变化与Mo(V)的电子结构的变化有关,Mo(V)的电子结构是由醇分子的OHx不稳定配体取代而确定的。由于电子转移速率和各向同性交换相互作用之间的关系,本研究结果表明,吡喃蝶呤部分介导的酶内电子转移过程受基于Mo配体的调控机制支配。

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