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羟甲基胆色素原合酶动力学的网络分析

Network analysis of hydroxymethylbilane synthase dynamics.

作者信息

Chakrabarty Broto, Das Dibyajyoti, Bung Navneet, Roy Arijit, Bulusu Gopalakrishnan

机构信息

TCS Innovation Labs - Hyderabad (Life Sciences Division), Tata Consultancy Services Limited, Hyderabad, India.

TCS Innovation Labs - Hyderabad (Life Sciences Division), Tata Consultancy Services Limited, Hyderabad, India.

出版信息

J Mol Graph Model. 2020 Sep;99:107641. doi: 10.1016/j.jmgm.2020.107641. Epub 2020 Jun 18.

Abstract

Hydroxymethylbilane synthase (HMBS) is one of the key enzymes of the heme biosynthetic pathway that catalyzes porphobilinogen to form the linear tetrapyrrole 1-hydroxymethylbilane through four intermediate steps. Mutations in the human HMBS (hHMBS) can lead to acute intermittent porphyria (AIP), a lethal metabolic disorder. The molecular basis of importance of the amino acid residues at the catalytic site of hHMBS has been well studied. However, the role of non-active site residues toward the activity of the enzyme and hence the association of their mutations with AIP is not known. Network-based analyses of protein structures provide a systems approach to understand the correlations of the residues through a series of inter-residue interactions. We analyzed the dynamic network representation of HMBS protein derived from five molecular dynamics trajectories corresponding to the five steps of pyrrole polymerization. We analyzed the network clusters for each stage and identified the amino acid residues and interactions responsible for the structural stability and catalytic function of the protein. The analysis of high betweenness nodes and interaction paths from the active site help in understanding the molecular basis of the effect of non-active site AIP-causing mutations on the catalytic activity.

摘要

羟甲基胆色素原合酶(HMBS)是血红素生物合成途径中的关键酶之一,它通过四个中间步骤催化胆色素原形成线性四吡咯1-羟甲基胆色素原。人类HMBS(hHMBS)中的突变可导致急性间歇性卟啉症(AIP),这是一种致命的代谢紊乱疾病。hHMBS催化位点处氨基酸残基重要性的分子基础已得到充分研究。然而,非活性位点残基对该酶活性的作用以及因此它们的突变与AIP的关联尚不清楚。基于网络的蛋白质结构分析提供了一种系统方法,通过一系列残基间相互作用来理解残基之间的相关性。我们分析了源自对应于吡咯聚合五个步骤的五条分子动力学轨迹的HMBS蛋白的动态网络表示。我们分析了每个阶段的网络簇,并确定了负责蛋白质结构稳定性和催化功能的氨基酸残基及相互作用。对高介数节点和来自活性位点的相互作用路径的分析有助于理解非活性位点AIP致病突变对催化活性影响的分子基础。

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