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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 >The exchange activities of [Fe] hydrogenase (iron-sulfur-cluster-free hydrogenase) from methanogenic archaea in comparison with the exchange activities of [FeFe] and [NiFe] hydrogenases
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The exchange activities of [Fe] hydrogenase (iron-sulfur-cluster-free hydrogenase) from methanogenic archaea in comparison with the exchange activities of [FeFe] and [NiFe] hydrogenases

机译:与[FeFe]和[NiFe]氢化酶的交换活性相比,产甲烷古菌中的[Fe]氢化酶(无铁硫簇的氢化酶)的交换活性

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摘要

[Fe] hydrogenase (iron-sulfur-cluster-free hydrogenase) catalyzes the reversible reduction of methenyltetrahydromethanopterin (methenyl-H4MPT+) with H-2 to methylene-H4MPT, a reaction involved in methanogenesis from H-2 and CO2 in many methanogenic archaea. The enzyme harbors an iron-containing cofactor, in which a low-spin iron is complexed by a pyridone, two CO and a cysteine sulfur. [Fe] hydrogenase is thus similar to [NiFe] and [FeFe] hydrogenases, in which a low-spin iron carbonyl complex, albeit in a dinuclear metal center, is also involved in H-2 activation. Like the [NiFe] and [FeFe] hydrogenases, [Fe] hydrogenase catalyzes an active exchange of H-2 with protons of water; however, this activity is dependent on the presence of the hydride-accepting methenyl-H4MPT+. In its absence the exchange activity is only 0.01% of that in its presence. The residual activity has been attributed to the presence of traces of methenyl-H4MPT+ in the enzyme preparations, but it could also reflect a weak binding of H-2 to the iron in the absence of methenyl-H4MPT+. To test this we reinvestigated the exchange activity with [Fe] hydrogenase reconstituted from apoprotein heterologously produced in Escherichia coli and highly purified iron-containing cofactor and found that in the absence of added methenyl-H4MPT+ the exchange activity was below the detection limit of the tritium method employed (0.1 nmol min(-1) mg(-1)). The finding reiterates that for H-2 activation by [Fe] hydrogenase the presence of the hydride-accepting methenyl-H4MPT+ is essentially required. This differentiates [Fe] hydrogenase from [FeFe] and [NiFe] hydrogenases, which actively catalyze H-2/H2O exchange in the absence of exogenous electron acceptors.
机译:[Fe]加氢酶(无铁硫簇的加氢酶)催化将H-2的亚甲基四氢甲蝶呤(亚甲基-H4MPT +)可逆还原为亚甲基-H4MPT,该反应涉及许多产甲烷古菌中H-2和CO2的甲烷化反应。该酶带有含铁的辅因子,其中低旋铁由吡啶酮,两个CO和一个半胱氨酸硫络合。因此,[Fe]氢化酶与[NiFe]和[FeFe]氢化酶相似,其中低旋转羰基铁羰基络合物(尽管位于双核金属中心)也参与H-2活化。像[NiFe]和[FeFe]氢化酶一样,[Fe]氢化酶催化H-2与水质子的主动交换;但是,这种活性取决于接受氢化物的亚甲基-H4MPT +的存在。在不存在的情况下,交换活性仅为在其存在下的交换活性的0.01%。残留活性归因于酶制剂中痕量的亚甲基-H4MPT +的存在,但是它也可能反映了在不存在亚甲基-H4MPT +的情况下H-2与铁的弱结合。为了测试这一点,我们用由大肠杆菌异源产生的脱辅基蛋白和高度纯化的含铁辅因子重构的[Fe]氢化酶对交换活性进行了重新研究,发现在不添加亚甲基-H4MPT +的情况下,交换活性低于the的检测极限。所用方法(0.1 nmol min(-1)mg(-1))。该发现重申,对于通过[Fe]氢化酶进行H-2活化,基本上需要存在氢化物的亚甲基-H4MPT +。这将[Fe]氢化酶与[FeFe]和[NiFe]氢化酶区分开来,后者在没有外源电子受体的情况下会积极催化H-2 / H2O交换。

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