蜡样芽孢杆菌BC4修复污染土壤铬的功能基因组分析

IF 4.8 Q1 MICROBIOLOGY
Zhiyi Liu , Yubing Cai , Xu Chen , Yan Cang , Jialiang Yu , Muhammad Shaaban , Yajun Cai , Qi-an Peng
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引用次数: 0

摘要

土壤为微生物提供了一个栖息地,可以减轻金属污染。本研究获得了蜡样芽孢杆菌BC4菌株,该菌株在金属污染修复中具有重要的潜力。在特定条件下(pH 8, 37°C, 120 rpm搅拌),该细菌在LB培养基中实现了98.6%的铬(VI)浓度从300 mg/L降低到可忽略的水平。利用Oxford Nanopore Technology对蜡样芽孢杆菌BC4全基因组进行测序,得到一条环状染色体和一个质粒,共5537,675个碱基对,G + C含量为35.44%。鉴定出14个对Cr代谢至关重要的基因。qRT-PCR结果显示,在低Cr(VI)胁迫下,chrA和nitR1两个基因表达上调,表明它们在Cr抗性中起作用。基因组揭示了对各种金属(包括铬、砷、铜、锰和镉)的恢复能力以及对生存和适应至关重要的次级代谢物的合成至关重要的基因簇。此外,鉴定了与生物聚合物合成相关的基因,强调了生物体的多样化遗传能力。该基因组研究将蜡样芽孢杆菌的全基因组提交给GenBank (CP101135),增强了人们对蜡样芽孢杆菌BC4在铬修复和环境修复中的认识和潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Functional genomic analysis of Bacillus cereus BC4 strain for chromium remediation in contaminated soil

Functional genomic analysis of Bacillus cereus BC4 strain for chromium remediation in contaminated soil
Soil provides a habitat for microorganisms that can mitigate metal contamination. This study presents Bacillus cereus BC4 strain, which shows significant potential for metal pollution remediation. This bacterium achieved a 98.6 % reduction in Chromium (VI) concentrations from 300 mg/L to negligible levels under specific conditions (pH 8, 37 °C, and 120 rpm agitation) in LB medium. The complete genome of Bacillus cereus BC4 was sequenced using Oxford Nanopore Technology, revealing a circular chromosome and a plasmid with a total of 5537,675 base pairs and a G + C content of 35.44 %. Fourteen genes critical for Cr metabolism were identified. qRT-PCR demonstrated that under low Cr(VI) stress, two genes, chrA and nitR1, were up-regulated, indicating their role in Cr resistance. The genome revealed gene clusters essential for resilience against various metals, including chromium, arsenic, copper, manganese, and cadmium, as well as for synthesizing secondary metabolites crucial for survival and adaptation. Additionally, genes associated with biopolymer synthesis were identified, emphasizing the organism's diverse genetic capabilities. This genomic study led to the submission of the complete genome to GenBank (CP101135), enhancing the understanding and potential of Bacillus cereus BC4 in chromium remediation and environmental restoration.
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来源期刊
Current Research in Microbial Sciences
Current Research in Microbial Sciences Immunology and Microbiology-Immunology and Microbiology (miscellaneous)
CiteScore
7.90
自引率
0.00%
发文量
81
审稿时长
66 days
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