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通过生物信息学和建模研究对硅藻中的脂氧合酶进行结构和功能表征。

Structural and Functional Characterization of Lipoxygenases from Diatoms by Bioinformatics and Modelling Studies.

机构信息

Institute of Food Sciences, National Research Council, via Roma 64, 83100 Avellino, Italy.

Department of Integrative Marine Ecology, Stazione Zoologica Anton Dohrn, Villa Comunale, 80121 Naples, Italy.

出版信息

Biomolecules. 2024 Feb 25;14(3):276. doi: 10.3390/biom14030276.

Abstract

Lipoxygenases make several biological functions in cells, based on the products of the catalyzed reactions. In diatoms, microalgae ubiquitous in aquatic ecosystems, lipoxygenases have been noted for the oxygenation of fatty acids with the production of oxylipins, which are involved in many physiological and pathological processes in marine organisms. The interest in diatoms' lipoxygenases and oxylipins has increased due to their possible biotechnological applications, ranging from ecology to medicine. We investigated using bioinformatics and molecular docking tools the lipoxygenases of diatoms and the possible interaction with substrates. A large-scale analysis of sequence resources allowed us to retrieve 45 sequences of lipoxygenases from diatoms. We compared and analyzed the sequences by multiple alignments and phylogenetic trees, suggesting the possible clustering in phylogenetic groups. Then, we modelled the 3D structure of representative enzymes from the different groups and investigated in detail the structural and functional properties by docking simulations with possible substrates. The results allowed us to propose a classification of the lipoxygenases from diatoms based on their sequence features, which may be reflected in specific structural differences and possible substrate specificity.

摘要

脂氧合酶在细胞中具有多种生物学功能,这些功能基于催化反应的产物。在硅藻中,这种微藻普遍存在于水生生态系统中,脂氧合酶已被注意到能够对脂肪酸进行氧化,产生氧化脂类,这些物质参与海洋生物的许多生理和病理过程。由于其在生态学和医学等领域的潜在生物技术应用,人们对硅藻脂氧合酶和氧化脂类的兴趣日益增加。我们使用生物信息学和分子对接工具研究了硅藻的脂氧合酶及其与底物的可能相互作用。通过大规模的序列资源分析,我们从硅藻中检索到了 45 种脂氧合酶序列。我们通过多重比对和系统发育树对这些序列进行了比较和分析,表明它们可能在系统发育群中聚类。然后,我们对不同组别的代表性酶进行了三维结构建模,并通过对接模拟详细研究了其结构和功能特性,以确定可能的底物。研究结果使我们能够根据序列特征对硅藻的脂氧合酶进行分类,这可能反映在特定的结构差异和可能的底物特异性上。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/713f/10968607/3db01cd9a5cb/biomolecules-14-00276-g001.jpg

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