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Identification and molecular genetic analysis of multiple loci contributing to high-level tellurite resistance in Rhodobacter sphaeroides 2.4.1.

机译:2.4.1球形球形红细菌对高亚碲酸盐抗性的位点鉴定与分子遗传分析

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摘要

The ability of the facultative photoheterotroph Rhodobacter sphaeroides to tolerate and reduce high levels of tellurite in addition to at least 10 other rare earth metal oxides and oxyanions has considerable potential for detoxification and bioremediation of contaminated environments. We report the identification and characterization of two loci involved in high-level tellurite resistance. The first locus contains four genes, two of which, trgAB, confer increased tellurite resistance when introduced into the related bacterium Paracoccus denitrificans. The trgAB-derived products display no significant homology to known proteins, but both are likely to be membrane-associated proteins. Immediately downstream of trgB, the cysK (cysteine synthase) and orf323 genes were identified. Disruption of the cysK gene resulted in decreased tellurite resistance in R. sphaeroides, confirming earlier observations on the importance of cysteine metabolism for high-level tellurite resistance. The second locus identified is represented by the telA gene, which is separated from trgAB by 115 kb. The telA gene product is 65% similar to the product of the klaB (telA) gene from the tellurite-resistance-encoding kilA operon from plasmid RK2. The genes immediately linked to the R. sphaeroides telA gene have no similarity to other components of the kilA operon. R. sphaeroides telA could not functionally substitute for the plasmid RK2 telA gene, indicating substantial functional divergence between the two gene products. However, inactivation of R. sphaeroides telA resulted in a significant decrease in tellurite resistance compared to the wild-type strain. Both cysK and telA null mutations readily gave rise to suppressors, suggesting that the phenomenon of high-level tellurite resistance in R. sphaeroides is complex and other, as yet uncharacterized, loci may be involved.
机译:除至少十种其他稀土金属氧化物和氧阴离子外,兼性光异养球形红球菌耐受并减少高含量的亚碲酸盐的能力具有对受污染环境进行解毒和生物修复的巨大潜力。我们报告鉴定和鉴定了两个参与高水平亚碲酸盐抗性的基因座。第一个基因座包含四个基因,其中两个trgAB在引入相关细菌反硝化副球菌时赋予亚碲酸盐抗性增加。源自trgAB的产物与已知蛋白没有显示出显着同源性,但两者都可能是膜相关蛋白。在trgB的紧下游,确定了cysK(半胱氨酸合酶)和orf323基因。 cysK基因的破坏导致球形红球菌对亚碲酸盐的抵抗力下降,这证实了关于半胱氨酸代谢对于高水平亚碲酸盐抗性的重要性的早期观察。鉴定出的第二个基因座由telA基因代表,该基因与trgAB隔开115 kb。 telA基因产物与来自质粒RK2的耐亚碲酸盐编码kilA操纵子的klaB(telA)基因产物相似,为65%。立即与球形芽孢杆菌telA基因连接的基因与kilA操纵子的其他组件没有相似性。球形芽孢杆菌telA不能在功能上替代质粒RK2 telA基因,表明两种基因产物之间存在实质性功能差异。但是,与野生型菌株相比,球形红球菌telA的失活导致亚碲酸盐抗性显着降低。 cysK和telA无效突变都容易产生抑制子,这表明球形红球菌对亚碲酸盐的高水平抗药性现象很复杂,可能还涉及其他(尚未鉴定)的基因座。

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