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深入了解脂氧合酶的化学性质:(8R)-脂氧合酶催化机制的计算研究。

Gaining insight into the chemistry of lipoxygenases: a computational investigation into the catalytic mechanism of (8R)-lipoxygenase.

机构信息

Department of Chemistry and Biochemistry, University of Windsor, Windsor, ON, N9B 3P4, Canada.

出版信息

J Biol Inorg Chem. 2013 Mar;18(3):343-55. doi: 10.1007/s00775-013-0978-4. Epub 2013 Jan 30.

Abstract

Lipoxygenases (LOXs) are ubiquitous in nature and catalyze a range of life-essential reactions within organisms. In particular they are critical to the formation of eicosanoids, which are critical for normal cell function. However, a number of important questions about the reactivity and mechanism of these enzymes still remain. Specifically, although the initial step in the mechanism of LOXs has been well studied, little is known of subsequent steps. Thus, with use of a quantum mechanical/molecular mechanical approach, the complete catalytic mechanism of (8R)-LOX was investigated. The results have provided a better understanding of the general chemistry of LOXs as a whole. In particular, from comparisons with soybean LOX-1, it appears that the initial proton-coupled electron transfer may be very similar among all LOXs. Furthermore, LOXs appear to undergo multistate reactivity where potential spin inversion of an electron may occur either in the attack of O(2) or in the regeneration of the active site. Lastly, it is shown that with the explicit modeling of the environment, the regeneration of the active center likely occurs via the rotation of the intermediate followed by an outer-sphere [Formula: see text] transfer as opposed to the formation of a "purple intermediate" complex.

摘要

脂氧合酶(LOXs)在自然界中普遍存在,能够在生物体中催化一系列生命必需的反应。特别是,它们对于类二十烷酸的形成至关重要,类二十烷酸对于正常的细胞功能是必需的。然而,这些酶的反应性和机制仍然存在一些重要问题。具体来说,尽管 LOX 机制的初始步骤已经得到了很好的研究,但对后续步骤知之甚少。因此,使用量子力学/分子力学方法,研究了(8R)-LOX 的完整催化机制。研究结果提供了对 LOX 整体一般化学的更好理解。特别是,通过与大豆 LOX-1 的比较,似乎初始质子耦合电子转移在所有 LOX 中都非常相似。此外,LOX 似乎经历多态反应性,其中电子的潜在自旋反转可能发生在 O(2)的攻击中,也可能发生在活性位点的再生中。最后,结果表明,通过对环境的显式建模,活性中心的再生可能是通过中间体的旋转以及随后的外球[Formula: see text]转移发生的,而不是形成“紫色中间体”复合物。

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