首页> 外文期刊>Biochemistry >Role of methionine 56 in the control of the oxidation-reduction potentials of the Clostridium beijerinckii flavodoxin: Effects of substitutions by aliphatic amino acids and evidence for a role of sulfur-flavin interactions
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Role of methionine 56 in the control of the oxidation-reduction potentials of the Clostridium beijerinckii flavodoxin: Effects of substitutions by aliphatic amino acids and evidence for a role of sulfur-flavin interactions

机译:蛋氨酸56在控制拜氏梭菌黄素毒素的氧化还原电位中的作用:脂族氨基酸取代的影响以及硫黄素相互作用的证据

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Flavodoxins are small electron transferases that participate in low-potential electron transfer pathways. The flavodoxin protein is able to separate the two redox couples of the noncovalently bound flavin mononucleotide (FMN) cofactor through the differential thermodynamic stabilization or destabilization of each of its redox states. In the flavodoxin from Clostridium beijerinckii, the sulfur atom of methionine 56 is in direct contact with the re or inner face of the isoalloxazine ring of the FMN cofactor. In this study, evidence was sought for a possible role for sulfur-aromatic (flavin) interactions in the regulation of one-electron reduction potentials in flavoproteins. Met56 was systematically replaced with all the naturally occurring aliphatic amino acids by site-directed mutagenesis. Replacement of Met56 with alanine or glycine increased the midpoint potentials at pH 7 for the oxidized-semiquinone couple by up to 20 mV compared to that of the wild type, while replacement by the longer chain aliphatic residues decreased the midpoint potential by >30 mV. The midpoint potential for the semiquinone-hydroquinone couple was less negative than that for the wild type for all the mutants, increasing by as much as 90 mV for the M56I mutant. For the M56A mutant, the loss of similar to 0.5 kcal/mol in the binding energy for oxidized FMN and an increase of 1.6 kcal/mol for the;flavin hydroquinone, relative to that of the wild type, are responsible for the observed changes in the midpoint potentials. The stability of the semiquinone complex of this mutant was not affected. The one-election reduction potentials for the M56L, M56I, and M56V mutants are also influenced by the differential stabilization of the three redox states; however, the semiquinone complex was significantly less stable in these proteins. These differences are likely the consequence of the introduction of additional steric factors and an apparent structural preference for a smaller or more flexible side chain at this position in the semiquinone complex. While the other factors may contribute, it is argued that the results obtained for the entire group of mutants are consistent with the elimination of important sulfur-flavin interactions that contribute in part to the stabilization of the oxidized and destabilization of the hydroquinone states of the cofactor in this flavodoxin. The results of this study also demonstrate unequivocally the functional importance of this methionine residue and that it is unique among the aliphatic amino acids in its capacity to generate the physiologically relevant low reduction potential exhibited by the C. beijerinckii flavodoxin. [References: 46]
机译:黄素毒素是参与低电势电子转移途径的小型电子转移酶。黄素毒素蛋白能够通过其每个氧化还原态的差异热力学稳定或不稳定来分离非共价结合的黄素单核苷酸(FMN)辅因子的两个氧化还原对。在来自拜氏梭状芽胞杆菌的黄酮毒素中,蛋氨酸56的硫原子与FMN辅因子的异别恶嗪环的re或内表面直接接触。在这项研究中,寻求证据证明硫-芳香(黄素)相互作用在黄素蛋白中单电子还原电位的调节中可能发挥作用。通过定点诱变,Met56被所有天然存在的脂肪族氨基酸系统取代。与野生型相比,用丙氨酸或甘氨酸替代Met56可使氧化半醌对在pH 7时的中点电势增加高达20 mV,而由较长链脂族残基替代使中点电势降低> 30 mV。对于所有突变体,半醌-对苯二酚对的中点电位均比野生型负电位低,对于M56I突变体,其中点电位增加了多达90 mV。对于M56A突变体,与野生型相比,氧化FMN的结合能损失接近0.5 kcal / mol,而黄素对苯二酚的结合能增加1.6 kcal / mol。中点电位。该突变体的半醌配合物的稳定性不受影响。 M56L,M56I和M56V突变体的一次选择还原电位也受三种氧化还原状态差异稳定的影响。但是,半醌复合物在这些蛋白质中的稳定性明显较差。这些差异可能是由于引入了额外的空间因素以及在对苯二酚络合物中此位置上的一个较小或更灵活的侧链的结构偏好所导致的。尽管其他因素也可能起作用,但有人认为整个突变体组所获得的结果与消除重要的硫黄素相互作用是一致的,而硫黄素相互作用部分有助于稳定辅因子氢醌状态的氧化和失稳。在这种黄素毒素中。这项研究的结果也清楚地证明了该蛋氨酸残基的功能重要性,并且它在脂族氨基酸中具有独特的能力,可产生拜氏梭菌黄素毒素所显示的生理相关的低还原电位。 [参考:46]

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