首页> 外文期刊>Biochemistry >NUCLEOTIDE HYDROLYSIS AND PROTEIN CONFORMATIONAL CHANGES IN AZOTOBACTER VINELANDII NITROGENASE IRON PROTEIN - DEFINING THE FUNCTION OF ASPARTATE 129
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NUCLEOTIDE HYDROLYSIS AND PROTEIN CONFORMATIONAL CHANGES IN AZOTOBACTER VINELANDII NITROGENASE IRON PROTEIN - DEFINING THE FUNCTION OF ASPARTATE 129

机译:固氮菌固氮菌固氮菌铁蛋白中的核苷酸水解和蛋白质构象变化-定义阿魏酸盐129的作用。

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The biological reduction of dinitrogen catalyzed by nitrogenase requires the hydrolysis of a minimum of 16 MgATP for each N-2 reduced. The present work examines the role of a strictly conserved aspartic acid residue of nitrogenase iron protein (Fe protein) in coupling MgATP hydrolysis to electron transfer and substrate reduction. The aspartic acid residue at position 129 in the Azotobacter vinelandii Fe protein has been suggested to participate in nucleotide interactions from its location in the X-ray structure near several amino acids previously identified to participate in nucleotide binding and protein conformational changes. The function of this amino acid was probed by changing aspartic acid to glutamic acid (D129E) and asparagine (D129N) by site-directed mutagenesis. The D129N Fe protein proved to be unstable and could not be purified. Characterization of the purified D129E Fe protein revealed a central role for Asp 129 in the nucleotide-induced protein conformational changes in the Fe protein and possibly in the mechanism of MgATP hydrolysis. Data from EPR, circular dichroism spectroscopy, and Fe2+ chelation rates and the chemical shifts of isotropically shifted protons in the H-1 NMR spectra implicate Asp 129 in the nucleotide-induced conformational changes in the Fe protein, which are reflected in changes in the environment of the [4Fe-4S] cluster. The D129E Fe protein was found to bind both MgATP and MgADP with high affinity. The K-d determined for MgADP binding (K-d = 131 mu M) was comparable to that found for wild-type Fe protein (128 mu M) The affinity for MgATP binding was 1.6 times tighter than that for wild-type Fe protein (370 compared to 580 mu M). The midpoint reduction potential of the [4Fe-4S] cluster was similar to that determined for the wild-type Fe protein (-290 mV for wild-type Fe protein and -300 mV for D129E Fe protein). Upon the addition of MgATP or MgADP, the midpoint potentials for wildtype and D129E Fe proteins shifted to -430 and -440 mV, respectively. The D129E Fe protein was also found to bind to the molybdenum-iron protein (MoFe protein) with normal affinity, although it could not support electron transfer to the MoFe protein or MoFe protein-stimulated MgATP hydrolysis.
机译:固氮酶催化的二氮的生物还原需要每个还原的N-2至少水解16 MgATP。本工作研究了固氮酶铁蛋白(Fe蛋白)中严格保守的天冬氨酸残基在MgATP水解与电子转移和底物还原偶联中的作用。已建议葡萄固氮铁蛋白Fe 129位的天冬氨酸残基从其在X射线结构中的位置(先前已确定参与核苷酸结合和蛋白构象变化的几个氨基酸)附近参与核苷酸相互作用。通过定点诱变,将天冬氨酸变为谷氨酸(D129E)和天冬酰胺(D129N)来探测该氨基酸的功能。 D129N Fe蛋白被证明是不稳定的,无法纯化。纯化的D129E Fe蛋白的表征揭示了Asp 129在Fe蛋白的核苷酸诱导的蛋白构象变化以及可能在MgATP水解机理中的核心作用。 EPR,圆二色光谱和Fe2 +螯合速率以及H-1 NMR光谱中各向同性质子的化学位移的数据表明,Asp 129涉及核苷酸诱导的Fe蛋白构象变化,反映在环境变化中[4Fe-4S]簇中的一个。发现D129E Fe蛋白以高亲和力结合MgATP和MgADP。测定的MgADP结合的Kd(Kd = 131μM)与野生型Fe蛋白(128μM)相当。MgATP结合的亲和力比野生型Fe蛋白的亲和力高1.6倍(370与580亩)。 [4Fe-4S]簇的中点还原电位类似于野生型Fe蛋白的测定值(野生型Fe蛋白为-290 mV,D129E Fe蛋白为-300 mV)。加入MgATP或MgADP后,野生型和D129E Fe蛋白的中点电位分别移至-430和-440 mV。还发现D129E Fe蛋白以正常亲和力与钼铁蛋白(MoFe蛋白)结合,尽管它不能支持电子转移至MoFe蛋白或MoFe蛋白刺激的MgATP水解。

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