首页> 外文期刊>FEMS Microbiology Letters >Different and new Nod factors produced by Rhizobium tropici CIAT899 following Na+ stress
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Different and new Nod factors produced by Rhizobium tropici CIAT899 following Na+ stress

机译:Na +胁迫后热带根瘤菌CIAT899产生的不同和新的Nod因子

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The root nodule bacterium Rhizobium tropici strain CIAT899 is highly stress resistant. It grows under acid conditions, in large amounts of salt, and at high osmotic pressure. An earlier study reported a substantial qualitative and quantitative effect of acid stress on the biosynthesis of Nod factors. The aim of the present work was to investigate the effect of high salt (NaCl) concentrations, another common stress factor, on Nod factor production. For this purpose, thin-layer chromatography, HPLC and MS analyses were carried out. The expression of nodulation genes was also studied using a nodP:lacZ fusion. High concentrations of sodium enhanced nod gene expression and Nod factor biosynthesis. The effect is sodium specific because high potassium or chloride concentrations did not have this effect. Under salt stress conditions, 46 different Nod factors were identified in a CIAT899 culture, compared with 29 different Nod factors under control conditions. Only 15 Nod factor structures were common to both conditions. Under salt stress conditions, 14 different new Nod factor structures were identified that were not observed as being produced under neutral or acid conditions. The implications of our results are that stress has a great influence on Nod factor biosynthesis and that new, very interesting regulatory mechanisms, worth investigating, are involved in controlling Nod factor biosynthesis.
机译:根瘤细菌热带根瘤菌菌株CIAT899具有很高的抗逆性。它在酸性条件,大量盐和高渗透压下生长。较早的一项研究报道了酸胁迫对Nod因子生物合成的定性和定量影响。本工作的目的是研究高盐(NaCl)浓度(另一个常见的胁迫因子)对Nod因子产生的影响。为此目的,进行了薄层色谱,HPLC和MS分析。还使用nodP:lacZ融合蛋白研究了结节基因的表达。高浓度的钠增强了nod基因表达和Nod因子的生物合成。该作用是钠特异性的,因为高钾或氯化物浓度不具有这种作用。在盐胁迫条件下,与对照条件下的29种不同Nod因子相比,在CIAT899培养物中鉴定出46种不同的Nod因子。两种情况下只有15个Nod因子结构是共有的。在盐胁迫条件下,鉴定出14种不同的新Nod因子结构,这些结构在中性或酸性条件下均未观察到。我们的结果表明,压力对Nod因子的生物合成有很大的影响,并且值得研究的新的,非常有趣的调节机制参与了Nod因子生物合成的控制。

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