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氰基路径:毒化蓝藻水华基因组规模功能库

CyanoPATH: a knowledgebase of genome-scale functional repertoire for toxic cyanobacterial blooms.

机构信息

Jilin University, China.

Tongji University.

出版信息

Brief Bioinform. 2021 Jul 20;22(4). doi: 10.1093/bib/bbaa375.

DOI:10.1093/bib/bbaa375
PMID:33320930
Abstract

CyanoPATH is a database that curates and analyzes the common genomic functional repertoire for cyanobacteria harmful algal blooms (CyanoHABs) in eutrophic waters. Based on the literature of empirical studies and genome/protein databases, it summarizes four types of information: common biological functions (pathways) driving CyanoHABs, customized pathway maps, classification of blooming type based on databases and the genomes of cyanobacteria. A total of 19 pathways are reconstructed, which are involved in the utilization of macronutrients (e.g. carbon, nitrogen, phosphorus and sulfur), micronutrients (e.g. zinc, magnesium, iron, etc.) and other resources (e.g. light and vitamins) and in stress resistance (e.g. lead and copper). These pathways, comprised of both transport and biochemical reactions, are reconstructed with proteins from NCBI and reactions from KEGG and visualized with self-created transport/reaction maps. The pathways are hierarchical and consist of subpathways, protein/enzyme complexes and constituent proteins. New cyanobacterial genomes can be annotated and visualized for these pathways and compared with existing species. This set of genomic functional repertoire is useful in analyzing aquatic metagenomes and metatranscriptomes in CyanoHAB research. Most importantly, it establishes a link between genome and ecology. All these reference proteins, pathways and maps and genomes are free to download at http://www.csbg-jlu.info/CyanoPATH.

摘要

CyanoPATH 是一个数据库,用于整理和分析富营养化水中有害蓝藻水华(CyanoHAB)的常见基因组功能。它基于经验研究文献和基因组/蛋白质数据库,总结了四类信息:驱动 CyanoHAB 的常见生物功能(途径)、定制途径图、基于数据库和蓝藻基因组的开花类型分类。共重建了 19 条途径,涉及利用大量营养素(如碳、氮、磷和硫)、微量营养素(如锌、镁、铁等)和其他资源(如光和维生素)以及抗逆性(如铅和铜)。这些途径由 NCBI 的蛋白质和 KEGG 的反应组成,包括运输和生化反应,并用自行创建的运输/反应图进行了可视化。途径是分层的,由子途径、蛋白质/酶复合物和组成蛋白质组成。可以对新的蓝藻基因组进行注释和可视化,以对这些途径进行比较,并与现有物种进行比较。这组基因组功能 repertoire 可用于分析 CyanoHAB 研究中的水生宏基因组和宏转录组。最重要的是,它在基因组和生态学之间建立了联系。所有这些参考蛋白、途径、地图和基因组都可以在 http://www.csbg-jlu.info/CyanoPATH 上免费下载。

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引用本文的文献

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The Special and General Mechanism of Cyanobacterial Harmful Algal Blooms.蓝藻有害藻华的特殊及一般机制
Microorganisms. 2023 Apr 10;11(4):987. doi: 10.3390/microorganisms11040987.
2
Structural insight into the substrate-binding mode and catalytic mechanism for MlrC enzyme of sp. ACM-3962 in linearized microcystin biodegradation.对sp. ACM-3962的MlrC酶在微囊藻毒素线性化生物降解中的底物结合模式和催化机制的结构洞察。
Front Microbiol. 2023 Feb 17;14:1057264. doi: 10.3389/fmicb.2023.1057264. eCollection 2023.