具有耐铅表型的高原芽孢杆菌RDK4的基因组特征

IF 1.8 3区 生物学 Q4 MICROBIOLOGY
Rika Indri Astuti, Ira Meylan Rakhman
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引用次数: 0

摘要

芽孢杆菌群在包括重金属污染环境在内的恶劣条件下具有很高的恢复能力。我们从一个采矿区附近的土壤中分离到高海拔芽孢杆菌RDK4,该芽孢杆菌具有耐铅表型。在本研究中,研究人员分析了RDK4的基因组学,以确定可能参与耐铅活性的基因或途径,并用于分析该分离物与其他芽孢杆菌物种的进化关系。利用Oxford Nanopore Technology平台获得了RDK4的全基因组序列。RDK4基因组大小为3,704,351 bp(3700个编码序列),呈环状,平均GC%为41.44%。RDK4注释基因的功能类别分为四个主要类别:遗传信息处理(13.6%)、信号和细胞过程(11.0%)、环境信息处理(9.6%)和碳水化合物代谢(9.6%)。一些可能参与耐铅表型的途径(完整的模块)被确定,包括生物表面活性剂(凤霉素,荔枝素),抗氧化剂(萜烯,聚酮)和铁载体(分裂素)的生物合成。此外,金属外排系统(cadA, FieF)和外多糖介导的金属隔离(eps操纵子)以及抗氧化反应基因(katA, ahpC, TrxA, SodA/C)的遗传特性也存在于RDK4基因组中。因此,耐铅表型可能是这些作用模式组合的结果。比较基因组分析显示,RDK4与其他芽孢杆菌共有多达1523个蛋白簇。有趣的是,RDK4被发现与枯草芽孢杆菌和巨型芽孢杆菌有着密切的进化关系,分别共享215和85个特定的蛋白质簇。这些发现强调了RDK4的遗传特性和铅耐受性机制,支持其作为生物修复剂的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genomic features of Bacillus altitudinis RDK4 attributed with Pb-tolerant phenotype

Group of Bacillus have high resilience capacity in harsh conditions, including in a heavy metal contamination environment. We isolated Bacillus altitudinis RDK4 from soil around an ex-mining area which showed lead-tolerant phenotype. In this study, the genomics of RDK4 was analyzed to identify genes or pathways potentially involved in lead-tolerant activity and was employed for evolutionary relationships analysis of this isolate towards other Bacillus species. Whole genome sequence of RDK4 was obtained by using Oxford Nanopore Technology platform. The genome size of RDK4 was 3,704,351 bp (3700 coding sequences), in circular form, with average GC% of 41.44%. Functional categories of RDK4 annotated genes resulted in four dominant categories included genetic information processing (13.6%), signalling and cellular process (11.0%), environmental information processing (9.6%) and carbohydrate metabolism (9.6%). Some pathways (complete modules) that are potentially involved in the lead-tolerant phenotype were identified, including the biosynthesis of biosurfactants (fengycin, lychensin), antioxidants (terpenes, polyketides), and siderophores (schizokinen). In addition, genetic properties of metal-efflux system (cadA, FieF) and exopolysaccharide-mediated metal sequestration (eps operon) and antioxidative response genes (katA, ahpC, TrxA, SodA/C) were also present in the RDK4 genome. Thus, the lead-tolerant phenotype is potentially the result of a combination of these modes of action. Comparative genome analysis revealed that as many as 1523 protein clusters were shared between RDK4 and other Bacillus species. Interestingly, RDK4 was found to be in a close evolutionary relationship with B. subtilis and B. megaterium, sharing 215 and 85 specific protein clusters, respectively. These findings highlight the genetic properties and lead-tolerance mechanisms of RDK4, which support its application as a bioremediation agent.

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来源期刊
CiteScore
5.60
自引率
11.50%
发文量
104
审稿时长
3 months
期刊介绍: Antonie van Leeuwenhoek publishes papers on fundamental and applied aspects of microbiology. Topics of particular interest include: taxonomy, structure & development; biochemistry & molecular biology; physiology & metabolic studies; genetics; ecological studies; especially molecular ecology; marine microbiology; medical microbiology; molecular biological aspects of microbial pathogenesis and bioinformatics.
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