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与底物结合的脂氧合酶的晶体结构:8R-脂氧合酶的花生四烯酸结合位点

Crystal structure of a lipoxygenase in complex with substrate: the arachidonic acid-binding site of 8R-lipoxygenase.

作者信息

Neau David B, Bender Gunes, Boeglin William E, Bartlett Sue G, Brash Alan R, Newcomer Marcia E

机构信息

Department of Chemistry and Chemical Biology, Cornell University, Northeastern Collaborative Access Team, Argonne National Laboratory, Argonne, Illinois 60439, and.

Department of Biological Sciences, Louisiana State University, Baton Rouge, Louisiana 70803.

出版信息

J Biol Chem. 2014 Nov 14;289(46):31905-31913. doi: 10.1074/jbc.M114.599662. Epub 2014 Sep 17.

Abstract

Lipoxygenases (LOX) play critical roles in mammalian biology in the generation of potent lipid mediators of the inflammatory response; consequently, they are targets for the development of isoform-specific inhibitors. The regio- and stereo-specificity of the oxygenation of polyunsaturated fatty acids by the enzymes is understood in terms of the chemistry, but structural observation of the enzyme-substrate interactions is lacking. Although several LOX crystal structures are available, heretofore the rapid oxygenation of bound substrate has precluded capture of the enzyme-substrate complex, leaving a gap between chemical and structural insights. In this report, we describe the 2.0 Å resolution structure of 8R-LOX in complex with arachidonic acid obtained under anaerobic conditions. Subtle rearrangements, primarily in the side chains of three amino acids, allow binding of arachidonic acid in a catalytically competent conformation. Accompanying experimental work supports a model in which both substrate tethering and cavity depth contribute to positioning the appropriate carbon at the catalytic machinery.

摘要

脂氧合酶(LOX)在哺乳动物生物学中发挥着关键作用,参与生成炎症反应中强效的脂质介质;因此,它们是亚型特异性抑制剂开发的靶点。从化学角度可以理解这些酶对多不饱和脂肪酸进行氧合作用的区域特异性和立体特异性,但缺乏对酶-底物相互作用的结构观察。尽管已有几种脂氧合酶的晶体结构,但迄今为止,结合底物的快速氧合作用使得酶-底物复合物难以捕获,导致化学见解和结构见解之间存在差距。在本报告中,我们描述了在厌氧条件下获得的与花生四烯酸结合的8R-脂氧合酶的2.0 Å分辨率结构。主要是三个氨基酸侧链的细微重排,使得花生四烯酸能够以具有催化活性的构象结合。伴随的实验工作支持了一个模型,即底物束缚和腔深度都有助于将合适的碳原子定位在催化机制上。

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