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THE ROLE OF IRON PROTEIN-NUCLEOTIDE INTERACTION AND CONFORMATIONS CHANGE IN NITROGENASE CATALYSIS

机译:铁蛋白质 - 核苷酸相互作用和兼容变化在氮酶催化中的作用

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There are a number of key questions hi nitrogenase biochemistry pertaining to the biosynthesis of the metal clusters, the mechanism of reduction at the active site, and the role of MgATP in catalysis (Peters and Szilagyi, 2006). We have, for several years, been focusing on the last question, using a variety of biochemical and physical methods to probe Fe-protein structure in defined conformations. These include Fe proteins with or without bound nucleotides and variants resulting from site-specific amino-acid substitution. During catalysis, the Fe protein binds two MgATP molecules and couples their hydrolysis to the transfer of electrons from the Fe protein to the MoFe protein within a complex (Peters and Szilagyi, 2006; Howard and Rees, 1994). Multiple steps of complex formation, MgATP hydrolysis, and electron transfer are required to accumulate enough reducing equivalents to reduce N2 to ammonia, MgATP-dependent conformational changes in the Fe protein represent a potential mechanism to effectively gate the flow of electrons toward substrate reduction. The structure of the Fe protein confirmed it as an approx. 60 kD homodimer with a single [4Fe-4S] cluster located at the subunit interface. The Fe protein is structurally similar to a large numberof proteins in which nucleotide binding and hydrolysis are coupled to conformational changes typically transduced within a macromolecular complex (Howard and Rees, 1994).
机译:有许多关键问题嗨硝酸酶生物化学与金属簇的生物化学,活性位点的减少机制,以及MgATP在催化(Peters和Szilagyi,2006)中的作用。多年来,我们一直专注于最后一个问题,使用各种生化和物理方法来探测在定义的构象中的Fe-蛋白结构。这些包括具有或不含结合核苷酸的Fe蛋白和由位点特异性氨基酸取代产生的核苷酸和变体。在催化期间,Fe蛋白在复合物(Peters和Szilagyi,2006中,将其水解与Fe蛋白转移到MoFe蛋白的水解,并将其水解与Fe蛋白转移到复合物中的Mofe蛋白(Peters和Szilagyi,2006; Howard和Rees,1994)。复杂形成的多个步骤,MgATP水解和电子转移需要积累足够的还原等同物以将N2降低至氨,Fe蛋白的MgATP依赖性构象变化代表了有效地栅极朝向基板减少的潜在机制。 Fe蛋白的结构确认为约。 60 KD同型二极管,位于亚基接口处的单个[4FE-4S]集群。 Fe蛋白在结构上类似于大量蛋白质,其中核苷酸结合和水解偶联以致象变化通常在大分子复合物(Howard和Rees,1994)内转导。

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