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球形红杆菌适应高浓度钴离子需要能量代谢的改变。

Rhodobacter sphaeroides adaptation to high concentrations of cobalt ions requires energetic metabolism changes.

机构信息

Department of Biosciences, Biotechnologies and Biopharmaceutics, University of Bari, Bari, Italy.

出版信息

FEMS Microbiol Ecol. 2014 May;88(2):345-57. doi: 10.1111/1574-6941.12303. Epub 2014 Mar 20.

Abstract

Rhodobacter sphaeroides has for a long time been investigated for its adaptive capacities to different environmental and nutritional conditions, including presence of heavy metals, which make it a valuable model organism for understanding bacterial adaptation to metal stress conditions and future environmental applications, such as bioremediation of polluted sites. To further characterize the capability of R. sphaeroides to cope with high cobalt ion concentrations, we combined the selection of adaptive defective mutants, carried out by negative selection of transposon insertional libraries on 5 mM Co(2+) -enriched solid medium, with the analysis of growing capacities and transcriptome profiling of a selected mutant (R95). A comparative analysis of results from the mutant and wild-type strains clearly indicated that the adaptive ability of R. sphaeroides strongly relies on its ability to exploit any available energy-supplying metabolisms, being able to behave as photo- or chemotrophic microorganism. The selected R95 mutant, indeed, exhibits a severe down-expression of an ABC sugar transporter, which results nonpermissive for its growth in cobalt-enriched media under aerobic conditions. Interestingly, the defective expression of the transporter does not have dramatic effects on the growth ability of the mutant when cultivated under photosynthetic conditions.

摘要

很长一段时间以来,球形红杆菌(Rhodobacter sphaeroides)一直因其对不同环境和营养条件的适应能力而受到研究,包括重金属的存在,这使其成为理解细菌适应金属胁迫条件和未来环境应用(如受污染地点的生物修复)的有价值的模式生物。为了进一步表征球形红杆菌应对高钴离子浓度的能力,我们将适应性缺陷突变体的选择与转座子插入文库在 5mM Co(2+)富集固体培养基上的负选择相结合,对选定的突变体(R95)进行生长能力分析和转录组分析。突变体和野生型菌株的结果的比较分析清楚地表明,球形红杆菌的适应能力强烈依赖于其利用任何可用能量供应代谢的能力,能够表现为光养或化能微生物。所选的 R95 突变体确实表现出 ABC 糖转运蛋白的严重下调,这使其在有氧条件下钴富集培养基中的生长变得不允许。有趣的是,当在光合条件下培养时,转运蛋白的缺陷表达对突变体的生长能力没有显著影响。

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