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首页> 外文期刊>Biochimica et biophysica acta: BBA: International journal of biochemistry, biophysics and molecular biololgy. Proteins and Proteomics >Molecular docking and spatial coarse graining simulations as tools to investigate substrate recognition, enhancer binding and conformational transitions in indoleamine-2,3-dioxygenase (IDO)
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Molecular docking and spatial coarse graining simulations as tools to investigate substrate recognition, enhancer binding and conformational transitions in indoleamine-2,3-dioxygenase (IDO)

机译:分子对接和空间粗粒度模拟作为研究吲哚胺-2,3-双加氧酶(IDO)中底物识别,增强子结合和构象转变的工具

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Indoleamine 2,3-dioxygenase (IDO) is an heme-containing enzyme involved in the regulation of important immunological responses and neurological processes. The enzyme catalyzes the oxidative cleavage of the pyrrole ring of the indole nucleus of tryptophan (Trp) to yield N-formylkynurenine, that is the initial and rate limiting step of the kynurenine pathway. Some indole derivatives have been reported to act as effectors of the enzyme by enhancing its catalytic activity. On the basis of the recent availability of the crystal structure of IDO, in this work we investigate substrate recognition and enhancer binding to IDO using molecular docking experiments. In addition, conformational transitions of IDO in response to substrate and enhancer binding are studied using coarse graining simulations with the program FIRST. The results enable us to identify (i) the binding site of enhancer modulators; (ii) the motion of an electrostatic gate that regulates the access of the substrate to the catalytic site of the enzyme; (iii) the movement of the anchoring region of a hairpin loop that may assist the shuttle of substrates/products to/from the catalytic site of IDO. These data, combined with available site-directed mutagenesis experiments, reveal that conformational transitions of IDO in response to substrate and enhancer binding are controlled by distinct combination of two conformational states (open and close) of the above structural motifs. On this basis, a molecular mechanism regarding substrate recognition and activity enhancement by indole derivatives is proposed. (c) 2007 Elsevier B.V All rights reserved.
机译:吲哚胺2,3-二加氧酶(IDO)是一种含血红素的酶,参与重要免疫反应和神经系统过程的调节。该酶催化色氨酸(Trp)吲哚核的吡咯环的氧化裂解,生成N-甲酰基犬尿氨酸,这是犬尿氨酸途径的起始步骤和限速步骤。据报道,一些吲哚衍生物通过增强其催化活性而充当酶的效应子。基于IDO晶体结构的最新可用性,在这项工作中,我们使用分子对接实验研究了底物识别和增强剂与IDO的结合。此外,使用程序FIRST使用粗粒度模拟研究了IDO响应底物和增强剂结合的构象转变。结果使我们能够鉴定(i)增强子调节剂的结合位点; (ii)调节底物接近酶催化位点的静电门的运动; (iii)发夹环的锚定区域的运动,其可能有助于底物/产物往返于IDO的催化位点的穿梭。这些数据与可用的定点诱变实验相结合,揭示了响应于底物和增强子结合的IDO的构象转变受上述结构基序的两种构象状态(打开和关闭)的不同组合控制。在此基础上,提出了有关吲哚衍生物对底物识别和活性增强的分子机理。 (c)2007 Elsevier B.V保留所有权利。

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