首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >Structural basis for VO2+-inhibition of nitrogenase activity: (B) pH-sensitive inner-sphere rearrangements in the H-1-environment of the metal coordination site of the nitrogenase Fe-protein identified by ENDOR spectroscopy
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Structural basis for VO2+-inhibition of nitrogenase activity: (B) pH-sensitive inner-sphere rearrangements in the H-1-environment of the metal coordination site of the nitrogenase Fe-protein identified by ENDOR spectroscopy

机译:VO2 +抑制固氮酶活性的结构基础:(B)用ENDOR光谱法鉴定固氮酶铁蛋白金属配位位点H-1环境中pH敏感的内球重排

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The nitrogenase Fe-protein is the specific ATP-activated electron donor to the active site-containing nitrogenase MoFe-protein. It has been previously demonstrated that different VO2+-nucleotide coordination environments exist for the Fe-protein that depend on pH and are distinguishable by EPR spectroscopy. After having studied the nitrogenase P-31 and Na-23 superhyperfine structure for this system by electron nuclear double resonance (ENDOR) spectroscopy (Petersen et al. 2008 in J Biol Inorg Chem. doi: 10.1007/s00775-008-0360-0), we here report on the H-1-interactions with the nucleotide-bound metal center after substitution of the natural diamagnetic metal Mg2+ with paramagnetic oxo-vanadium(IV). ENDOR spectra show a number of resonances arising from interactions of the VO2+ ion with protons. In the presence of reduced Fe-protein and VO(2+)ADP, at least three sets of nonexchangeable protons are detected. At low pH the superhyperfine couplings of most of these are consistent with proton interactions originating from the nucleotide. There is no indication of H-1-resonances that exchange in D2O at neutral pH and could be assigned to inner-sphere hydroxyl coordination. Exchangeable hydroxyl protons in the inner coordination sphere with reduced Fe-protein are only found in the low pH form; based on their hyperfine tensor components these have been assigned to an axially coordinated hydroxyl water molecule. The pH-dependent alterations of the proton couplings that exchange in D2O suggest that they are partially caused by a rearrangement in the local hydroxyl coordination environment of the metal center. These rearrangements especially affect the apical metal position, where an axially coordinated water present at low pH is absent at neutral pH. Oxidation of the Fe-protein induced substantial changes in the electron-nucleus interactions. This indicates that the oxidation state of the iron-sulfur cluster has an important effect on the metal coordination environment at the nucleotide binding site of the Fe-protein. The distinct VO2+-nucleotide coordination structures with ADP and ATP and the redox state of the [4Fe-4S] cluster imply that VO2+ has a critical influence on the switch regions of the regulatory protein, and, taken together, this provides a plausible explanation for the inhibitory action of VO2+.
机译:固氮酶Fe蛋白是含有活性位点的固氮酶MoFe蛋白的特定ATP活化电子供体。先前已经证明,针对Fe蛋白存在不同的VO2 +-核苷酸配位环境,该环境取决于pH值,并且可以通过EPR光谱区分。在通过电子核双共振(ENDOR)光谱研究了该系统的固氮酶P-31和Na-23超超细结构后(Petersen等人2008年在J Biol Inorg Chem。doi:10.1007 / s00775-008-0360-0) ,我们在这里报道了天然抗磁性金属Mg2 +被顺磁性氧-钒(IV)取代后,H-1与核苷酸结合的金属中心的相互作用。 ENDOR光谱显示了由于VO2 +离子与质子相互作用而引起的许多共振。在还原铁蛋白和VO(2+)ADP的存在下,至少检测到三组不可交换的质子。在低pH值下,其中大多数的超超精细偶联与源自核苷酸的质子相互作用一致。没有迹象表明H-1共振会在中性pH下在D2O中交换,并且可能被分配给内球羟基配位。 Fe蛋白质含量降低的内部配位球中的可交换羟基质子仅在低pH形式下发现;基于它们的超精细张量分量,这些已被分配给轴向配位的羟基水分子。在D2O中交换的质子偶合的pH依赖变化表明,它们部分地由金属中心的局部羟基配位环境中的重排引起。这些重排尤其会影响金属的顶端位置,在中性pH值下,在低pH值下不存在轴向配位的水。铁蛋白的氧化引起电子-核相互作用的实质性变化。这表明铁-硫簇的氧化态对Fe-蛋白质核苷酸结合位点处的金属配位环境有重要影响。具有ADP和ATP的独特VO2 +-核苷酸配体结构以及[4Fe-4S]簇的氧化还原状态表明VO2 +对调节蛋白的开关区域具有关键影响,这共同为以下方面提供了合理的解释VO2 +的抑制作用。

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