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Theoretical Investigations on Azotobacter vinelandii Ferredoxin I: Effects of Electron Transfer on Protein Dynamics

机译:葡萄固氮菌铁氧还蛋白I的理论研究:电子转移对蛋白质动力学的影响

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摘要

Structural, energetic, and dynamical studies of Azotobacter vinelandii ferredoxin I are presented for native and mutant forms. The protein contains two iron-sulfur clusters, one of which ([3Fe-4S]) is believed to play a central role in the electron-coupled proton transfer. Different charge sets for the [3Fe-4S] cluster in its reduced and oxidized state are calculated with broken symmetry ab initio density functional theory methods and used in molecular dynamics (MD) simulations. The validity of the ab initio calculations is assessed by comparing partially optimized structures of the [3Fe-4S] clusters with x-ray structures. Possible proton transfer pathways between the protein and the iron-sulfur cluster are examined by both MD simulations and ab initio calculations. The MD simulations identify three main-chain hydrogen atoms—HN(13), HN(14), and HN(16)—that are within H-bonding distance of the [3Fe-4S] cluster throughout the MD simulations. They could thus play a role in the proton transfer from the protein to the iron-sulfur cluster. By contrast, the HD2(15) atom of the Asp-15 is seldom close enough to the [3Fe-4S] cluster to transfer a proton. Poisson-Boltzmann calculations indicate that there is a low, but nonzero probability, that Asp-15 is protonated at pH 7; this is a requirement for it to serve as a proton donor. Ab initio calculations with a fragment model for the protein find similar behavior for the transfer of a proton from the OH of the protonated side chain and the main-chain NH of Asp-15. The existence of a stable salt bridge between Asp-15 and Lys-84 in the D15E mutant, versus its absence in the wild-type, has been suggested as the cause of the difference in the rate of proton transfer. Extensive MD simulations were done to test this idea; the results do not support the proposal. The present findings, together with the available data, serve as the basis for an alternative proposal for the mechanism of the coupled electron-proton transfer reaction in ferredoxin I.
机译:葡萄固氮铁氧还蛋白I的结构,能量和动力学研究均针对天然和突变形式。该蛋白质包含两个铁硫簇,其中一个([3Fe-4S])被认为在电子耦合质子转移中起着核心作用。 [3Fe-4S]团簇在还原和氧化状态下的不同电荷集,是通过破坏对称性从头算密度函数理论方法计算的,并用于分子动力学(MD)模拟。从头计算的有效性通过比较[3Fe-4S]团簇的部分优化结构与X射线结构进行评估。 MD模拟和从头算计算都检查了蛋白质与铁硫簇之间可能的质子转移途径。 MD模拟确定了三个主链氢原子HN(13),HN(14)和HN(16),它们在整个MD模拟中都位于[3Fe-4S]簇的H键合距离之内。因此,它们可能在质子从蛋白质转移到铁硫簇中起作用。相反,Asp-15的HD2(15)原子很少接近[3Fe-4S]团簇以转移质子。泊松-玻耳兹曼(Poisson-Boltzmann)计算表明,Asp-15在pH值为7时质子化的可能性很小,但非零。这是它充当质子供体的要求。从头开始计算蛋白质的片段模型发现质子从质子化侧链的OH和Asp-15的主链NH转移时的行为相似。 D15E突变体中Asp-15和Lys-84之间存在稳定的盐桥,而野生型中不存在,这被认为是质子转移速率不同的原因。进行了广泛的MD模拟以验证这一想法。结果不支持该建议。本研究结果与可用数据一起,为铁氧还蛋白I偶联电子-质子转移反应机理的替代方案提供了基础。

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