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序列分析和结构预测来自海桑烯酰基辅酶 A 水合酶:各种氨基酸残基对底物-酶相互作用的影响。

Sequence analysis and structure prediction of enoyl-CoA hydratase from Avicennia marina: implication of various amino acid residues on substrate-enzyme interactions.

机构信息

H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences, University of Karachi, Karachi 75270, Pakistan.

出版信息

Phytochemistry. 2013 Oct;94:36-44. doi: 10.1016/j.phytochem.2013.05.018. Epub 2013 Jun 26.

DOI:10.1016/j.phytochem.2013.05.018
PMID:23809632
Abstract

Enoyl-CoA hydratase catalyzes the hydration of 2-trans-enoyl-CoA into 3-hydroxyacyl-CoA. The present study focuses on the correlation between the functional and structural aspects of enoyl-CoA hydratase from Avicennia marina. We have used bioinformatics tools to construct and analyze 3D homology models of A. marina enoyl-CoA hydratase (AMECH) bound to different substrates and inhibitors and studied the residues involved in the ligand-enzyme interaction. Structural information obtained from the models was compared with those of the reported crystal structures. We observed that the overall folds were similar; however, AMECH showed few distinct structural changes which include structural variation in the mobile loop, formation and loss of certain interactions between the active site residues and substrates. Some changes were also observed within specific regions of the enzyme. Glu106 is almost completely conserved in sequences of the isomerases/hydratases including AMECH while Glu86 which is the other catalytic residue in most of the isomerases/hydratases is replaced by Gly and shows no interaction with the substrate. Asp114 is located within 4Å distance of the catalytic water which makes it a probable candidate for the second catalytic residue in AMECH. Another prominent feature of AMECH is the presence of structurally distinct mobile loop having a completely different coordination with the hydrophobic binding pocket of acyl portion of the substrate.

摘要

烯酰辅酶 A 水合酶催化 2-反式烯酰辅酶 A 水合生成 3-羟基酰基辅酶 A。本研究重点关注了来自海蓬子烯酰辅酶 A 水合酶的功能和结构方面的相关性。我们使用生物信息学工具构建并分析了与不同底物和抑制剂结合的海蓬子烯酰辅酶 A 水合酶(AMECH)的 3D 同源模型,并研究了参与配体-酶相互作用的残基。从模型中获得的结构信息与已报道的晶体结构进行了比较。我们观察到,整体折叠相似;然而,AMECH 显示出一些明显的结构变化,包括可动环的结构变化、活性位点残基与底物之间某些相互作用的形成和丧失。在酶的特定区域也观察到一些变化。在包括 AMECH 在内的异构酶/水合酶的序列中,Glu106 几乎完全保守,而在大多数异构酶/水合酶中另一个催化残基 Glu86 被 Gly 取代,并且与底物没有相互作用。Asp114 位于催化水的 4Å 距离内,使其成为 AMECH 中第二个催化残基的可能候选者。AMECH 的另一个突出特点是存在结构上不同的可动环,其与底物酰基部分的疏水性结合口袋具有完全不同的配位。

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