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首页> 外文期刊>Biochimica et Biophysica Acta. Protein Structure and Molecular Enzymology >Analysis of steady state Fe and MoFe protein interactions during nitrogenase catalysis
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Analysis of steady state Fe and MoFe protein interactions during nitrogenase catalysis

机译:固氮酶催化过程中稳态Fe和MoFe蛋白相互作用的分析

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Steady state kinetic measurements are reported for nitrogenase from Azotobacter vinelandii (Av) and Clostridium pasteurianum (Cp) under a variety of conditions, using dithionite as reductant. The specific activities of Av1 and Cp1 are determined as functions of Av2:Av1 and Cp2:Cp1, respectively, at component protein ratios from 0.4 to 50, and conform to a simple hyperbolic rate law for the interaction of Av2 with Av1 and Cp2 with Cp1. The specific activities of Av2 and Cp2 are also measured as a function of increasing Av1 and Cp1 concentrations, producing 'MoFe inhibition' at large MoFe:Fe ratios. When the rate of product formation under MoFe inhibited conditions is re-plotted as increasing Av2:Av1 or Cp2:Cp1 ratios, sigmoidal kinetic behavior is observed, suggesting that the rate constants in the Thorneley and Lowe (T & L) model are more dependent upon the oxidation level of MoFe protein than previously suspected [R. N. F. Thorneley, D. J. Lowe, Biochem. J. 224 (1984) 887-894], at least when applied to Av and Cp. Calculation of Hill coefficients gave values of 1.7-1.9, suggesting a highly cooperative Fe-MoFe protein interaction in both Av and Cp nitrogenase catalysis. The T & L model lacks analytical solutions [R.N.F. Thorneley, D. J. Lowe, Biochem. J. 215 (1983) 393-404], so the ease of its application to experimental data is limited. To facilitate the study of steady state kinetic data for H_2 evolution, analytical equations are derived from a different mechanism for nitrogenase activity, similar to that of Bergersen and Turner [Biochem. J. 131 (1973) 61-75]. This alternative cooperative model assumes that two Fe proteins interact with one MoFe protein active site. The derived rate laws for this mechanism were fitted to the observed sigmoidal behavior for low Fe:MoFe ratios (< 0.4), as well as to the commonly observed hyperbolic behavior for high values of Fe:MoFe for both Av and Cp.
机译:据报道,在多种条件下,使用连二亚硫酸盐作为还原剂,来自葡萄固氮菌(Av)和巴氏梭菌(Cp)的固氮酶的稳态动力学测量。确定Av1和Cp1的比活分别为Av2:Av1和Cp2:Cp1的功能,其组成蛋白比率为0.4至50,并且符合Av2与Av1和Cp2与Cp1相互作用的简单双曲线速率定律。还测量了Av2和Cp2的比活度,作为增加Av1和Cp1浓度的函数,在较大的MoFe:Fe比下产生“ MoFe抑制”。当在MoFe抑制条件下以Av2:Av1或Cp2:Cp1的比率增加重新绘制产物形成速率时,观察到了S形动力学行为,这表明Thorneley和Lowe(T&L)模型中的速率常数具有更大的依赖性。 MoFe蛋白的氧化水平比以前怀疑的要高[R. N.F. Thorneley,D.J。Lowe,生物化学。 J. 224(1984)887-894],至少当应用于Av和Cp。希尔系数的计算得出的值为1.7-1.9,表明在Av和Cp固氮酶催化中,Fe-MoFe蛋白相互作用非常强。运输与物流模型缺乏分析解决方案[R.N.F. Thorneley,D. J. Lowe,生物化学。 J. 215(1983)393-404],因此将其应用于实验数据的难易程度受到限制。为了促进对H_2演化的稳态动力学数据的研究,分析方程式衍生自不同的固氮酶活性机制,类似于Bergersen和Turner的[Biochem。 J.131(1973)61-75]。这种替代的合作模型假设两个Fe蛋白与一个MoFe蛋白活性位点相互作用。对于低Fe:MoFe比(<0.4),该机制的推导速率定律适用于观察到的S形行为,对于Av和Cp均适用于高Fe:MoFe值时通常观察到的双曲线行为。

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