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Characterization of a Haloferax volcanii member of the enolase superfamily: deletion mutant construction, expression analysis, and transcriptome comparison

机译:烯醇酶超家族的Haloferax volcanii成员的表征:缺失突变体的构建,表达分析和转录组比较

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The enolase superfamily (COG4948) contains proteins with very different biological functions including regulators like the Escherichia coli RspA and metabolic enzymes like enolase. To unravel the biological function of an archaeal family member, an in frame deletion mutant of a gene encoding a COG4948 protein of Haloferax volcanii was generated. The mutant had a lag phase of 3 days after transition from a richer to a poorer medium, in contrast to the wild-type, and the gene was therefore named “important for transition” (iftA). After inoculation of fresh casamino acids or complex medium with stationary phase wild-type cells, the transcript level of iftA was transiently induced at the onset of growth. In contrast, in minimal (or “poor”) glucose medium, both transcript and protein were present throughout growth, even in late stationary phase. A comparison of the transcriptomes of deletion mutant and wild-type revealed that transcript levels of a very restricted set of genes were differentially regulated, including genes encoding proteins involved in phosphate metabolism, regulators and stress response proteins. Taken together, the results indicate that IftA might have a dual function, i.e., transiently after transition to fresh medium and permanently during growth in glucose medium.
机译:烯醇化酶超家族(COG4948)包含具有截然不同的生物学功能的蛋白质,包括诸如大肠杆菌RspA的调节剂和诸如烯醇化酶的代谢酶。为了揭示古细菌家族成员的生物学功能,产生了编码Haloferax volcanii的COG4948蛋白的基因的框内缺失突变体。与野生型相比,该突变体从较丰富的培养基转化为较差的培养基具有3天的滞后阶段,因此该基因被命名为“重要的转化”(iftA)。用固定相野生型细胞接种新鲜的酪蛋白氨基酸或复杂培养基后,在生长开始时会瞬时诱导iftA的转录水平。相反,在最小限度(或“较差”)的葡萄糖培养基中,转录物和蛋白质在整个生长过程中均存在,即使在静止后期也是如此。缺失突变体和野生型的转录组的比较显示,非常有限的一组基因的转录水平受到差异调节,包括编码参与磷酸盐代谢的蛋白质,调节剂和应激反应蛋白质的基因。两者合计,结果表明IftA可能具有双重功能,即在过渡到新鲜培养基后短暂地并且在葡萄糖培养基中的生长期间永久地。

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