首页> 外文期刊>Journal of the American Chemical Society >IDENTIFICATION OF PUTATIVE PEROXIDE INTERMEDIATES OF PEROXIDASES BY ELECTRONIC STRUCTURE AND SPECTRA CALCULATIONS
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IDENTIFICATION OF PUTATIVE PEROXIDE INTERMEDIATES OF PEROXIDASES BY ELECTRONIC STRUCTURE AND SPECTRA CALCULATIONS

机译:通过电子结构和光谱计算鉴定过氧化物酶的正性过氧化物中间体

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The INDO/ROHF/CI quantum chemical method has been used to calculate the electronic structure and spectra of two candidate peroxide intermediates of model peroxidases. In the enzymatic cycle of this family of oxidative metabolizing heme proteins, hydrogen peroxide is required to transform the ferric resting state to the catalytically active, ferryl Fe=O, compound I species. While a peroxide complex has been proposed as a key intermediate in this reaction, this intermediate species is too transient to have thus fat been definitively characterized. Electronic spectra observed prior to compound I formation during the reaction of H2O2 with both wild type and the R38L mutant of horseradish peroxidase C (HRP-C) have been attributed to this intermediate. There are, however, significant qualitative differences in these spectra in the 300-450-nm region, with a ''hyper-Soret'' observed in one and a normal Soret, not very different from the resting stale, found in the other. In the absence of any additional information, it is not possible from these reported spectra alone to identify the species that give rise to them or to understand these differences, In order to identify the origin of these spectra and their differences, we have calculated the electronic structure and spectra of two possible forms of the peroxide intermediate of model peroxidases, one with a neutral peroxide and the other with an anionic form (OOH-) as the heme Fe ligand. Formation of the anion is possible by proton transfer to a nearby histidine residue, already implicated in compound I formation. A comparison of the calculated spectra for these two transient species indicates them to be quite distinct. Comparisons of the two spectra with those experimentally observed suggest that the ''hyper-porphyrin'' spectrum observed in the wild type (WT) HRP-C experiments originates from the OOH- form of this transient intermediate in a Tow-spin ground state, while tile normal Soret observed in the R38L HRP-C mutant experiment originates from the neutral peroxide form in a high-spin ground state. Thus by relating species to spectra, and by examining the consistency of calculated and observed spectra, a plausible identification has been made of the transient intermediate species in the pathway from the resting state to compound I of peroxidases.
机译:INDO / ROHF / CI量子化学方法已用于计算模型过氧化物酶的两种候选过氧化物中间体的电子结构和光谱。在该氧化代谢血红素蛋白家族的酶促循环中,需要过氧化氢将三价铁的静止状态转变为催化活性的三价铁Fe = O化合物I。尽管已经提出过氧化物配合物作为该反应的关键中间体,但是该中间体种类太短暂而无法确定脂肪的特征。在H2O2与辣根过氧化物酶C的野生型和R38L突变体(HRP-C)反应期间,在化合物I形成之前观察到的电子光谱已归因于该中间体。但是,这些光谱在300-450 nm区域存在明显的定性差异,其中一个观察到“超索雷特”,而正常的苏雷特则与静息陈旧性没有太大区别,而在另一处则观察到。在没有任何其他信息的情况下,不可能仅从这些报告的光谱中识别出引起它们的物种或了解这些差异。为了确定这些光谱的起源及其差异,我们已经计算了电子模型过氧化物酶的两种可能形式的过氧化物中间体的结构和光谱,一种具有中性过氧化物,另一种具有阴离子形式(OOH-)作为血红素铁配体。通过质子转移到附近的组氨酸残基(已参与化合物I的形成),可以形成阴离子。对这两种瞬态物种的计算光谱进行比较表明,它们非常不同。两种光谱与实验观察到的光谱的比较表明,在野生型(WT)HRP-C实验中观察到的“超卟啉”光谱源自在Tow-Spin基态下这种过渡中间体的OOH-形式,而在R38L HRP-C突变实验中观察到的正常Soret来源于高旋转基态的中性过氧化物形式。因此,通过将物种与光谱相关联,并通过检查计算得出的光谱和观察到的光谱的一致性,对从静止状态到过氧化物酶的化合物I的路径中的过渡中间物种进行了合理的鉴定。

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