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首页> 外文期刊>Applied Microbiology and Biotechnology >Effects of biocides on gene expression in the sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough
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Effects of biocides on gene expression in the sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough

机译:杀菌剂对硫酸盐还原菌Desulfovibrio vulgaris Hildenborough基因表达的影响

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摘要

Although sulfate-reducing bacteria (SRB), such as Desulfovibrio vulgaris Hildenborough (DvH) are often eradicated in oil and gas operations with biocides, such as glutaraldehyde (Glut), tetrakis (hydroxymethyl) phosphoni- um sulfate (THPS), and benzalkonium chloride (BAC), their response to these agents is not well known. Whole genome microarrays of D. vulgaris treated with biocides well below the minimum inhibitory concentration showed that 256, 96, and 198 genes were responsive to Glut, THPS, and BAC, respectively, and that these three commonly used biocides affect the physiology of the cell quite differently. Glut induces expression of genes required to degrade or refold proteins inactivated by either chemical modification or heat shock, whereas BAC appears to target ribosomal structure. THPS appears to primarily affect energy metabolism of SRB. Mutants constructed for genes strongly up-regulated by Glut, were killed by Glut to a similar degree as the wild type. Hence, it is difficult to achieve increased sensitivity to this biocide by single gene mutations, because Glut affects so many targets. Our results increase understanding of the biocide's mode of action, allowing a more intelligent combination of mechanistically different agents. This can reduce stress on budgets for chemicals and on the environment.
机译:尽管在石油和天然气运营中,通常使用诸如戊二醛(Glut),四(羟甲基)硫酸磷(THPS)和苯扎氯铵等杀生物剂来消灭硫酸盐还原菌(SRB),例如寻常脱硫弧菌Hildenborough(DvH)。 (BAC),他们对这些药物的反应尚不清楚。用远低于最低抑菌浓度的杀生物剂处理的普通小球藻全基因组芯片显示,分别有256、96和198个基因对Glut,THPS和BAC有反应,这三种常用的杀生物剂会影响细胞的生理完全不同。谷胱甘肽诱导降解或重新折叠因化学修饰或热激而失活的蛋白质所需的基因表达,而BAC似乎靶向核糖体结构。 THPS似乎主要影响SRB的能量代谢。为由Glut强烈上调的基因构建的突变体被Glut杀死的程度与野生型相似。因此,由于Glut影响如此多的靶标,因此难以通过单基因突变来提高对该杀生物剂的敏感性。我们的结果加深​​了对杀生物剂作用方式的了解,从而可以更智能地组合不同机理的药剂。这可以减轻对化学品和环境预算的压力。

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