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Coordination of peroxide to the CuM center of peptidylglycine alpha-hydroxylating monooxygenase (PHM): structural and computational study

机译:过氧化物与肽基甘氨酸α-羟基化单加氧酶(PHM)CuM中心的配位:结构和计算研究

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摘要

Many bioactive peptides, such as hormones and neuropeptides, require amidation at the C terminus for their full biological activity. Peptidylglycine a-hydroxylating monooxygenase (PHM) performs the first step of the amidation reaction-the hydroxylation of peptidylglycine substrates at the Ca position of the terminal glycine. The hydroxylation reaction is copper- and O2-dependent and requires 2 equiv of exogenous reductant. The proposed mechanism suggests thatO2 is reduced by two electrons, each provided by one of two nonequivalent copper sites in PHM (CuH and CuM). The characteristics of the reduced oxygen species in the PHM reaction and the identity of the reactive intermediate remain uncertain. To further investigate the nature of the key intermediates in the PHM cycle, we determined the structure of the oxidized form of PHM complexed with hydrogen peroxide. In this 1.98-A° -resolution structure (hydro)peroxide binds solely to CuM in a slightly asymmetric side-on mode. The O-O interatomic distance of the copperbound ligand is 1.5 A ° , characteristic of peroxide/hydroperoxide species, and the Cu-O distances are 2.0 and 2.1 A ° . Density functional theory calculations using the first coordination sphere of the CuM active site as a model system show that the computed energies of the side-on L3CuM(II)-O2 2- species and its isomeric, end-on structure L3CuM(I)-O2 - are similar, suggesting that both these intermediates are significantly populated within the protein environment. This observation has important mechanistic implications. The geometry of the observed side-on coordinated peroxide ligand in L3CuM(II)O2 2- is in good agreement with the results of a hybrid quantum mechanical-molecular mechanical optimization of this species.
机译:许多生物活性肽,例如激素和神经肽,需要在C末端酰胺化才能发挥其全部生物活性。肽基甘氨酸α-羟基化单加氧酶(PHM)执行酰胺化反应的第一步,即在末端甘氨酸的Ca位置上肽基甘氨酸底物的羟基化。羟基化反应依赖于铜和O2,需要2当量的外源还原剂。拟议中的机制表明O2被两个电子还原,每个电子由PHM(CuH和CuM)中两个非等价的铜位之一提供。 PHM反应中还原的氧物种的特征和反应性中间体的身份仍然不确定。为了进一步研究PHM循环中关键中间体的性质,我们确定了与过氧化氢络合的PHM氧化形式的结构。在这种1.98-A°的拆分结构中,(氢)过氧化物仅以稍微不对称的侧面模式与CuM结合。铜结合配体的O-O原子间距离为1.5 A°,具有过氧化物/氢过氧化物物种的特征,而Cu-O距离为2.0和2.1 A°。使用CuM活性位点的第一配位球作为模型系统的密度泛函理论计算表明,侧面L3CuM(II)-O2 2-物种及其异构体,末端结构L3CuM(I)-的计算能量O 2-相似,表明这两种中间体都在蛋白质环境中大量存在。该观察具有重要的机械含义。在L3CuM(II)O2 2-中观察到的侧向配位过氧化物配体的几何形状与该物种的混合量子机械-分子机械优化的结果非常吻合。

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