Department of Molecular Physiology, Max Planck Institute of Molecular Plant Physiology, Potsdam, Germany.
PLoS One. 2013 Jun 14;8(6):e67340. doi: 10.1371/journal.pone.0067340. Print 2013.
This report describes the metabolic and lipidomic profiling of 97 low-molecular weight compounds from the primary metabolism and 124 lipid compounds of the diatom Thalassiosira pseudonana. The metabolic profiles were created for diatoms perturbed for 24 hours with four different treatments: (I) removal of nitrogen, (II) lower iron concentration, (III) addition of sea salt, (IV) addition of carbonate to their growth media. Our results show that as early as 24 hours after nitrogen depletion significant qualitative and quantitative change in lipid composition as well as in the primary metabolism of Thalassiosira pseudonana occurs. So we can observe the accumulation of several storage lipids, namely triacylglycerides, and TCA cycle intermediates, of which citric acid increases more than 10-fold. These changes are positively correlated with expression of TCA enzymes genes. Next to the TCA cycle intermediates and storage lipid changes, we have observed decrease in N-containing lipids and primary metabolites such as amino acids. As a measure of counteracting nitrogen starvation, we have observed elevated expression levels of nitrogen uptake and amino acid biosynthetic genes. This indicates that diatoms can fast and efficiently adapt to changing environment by altering the metabolic fluxes and metabolite abundances. Especially, the accumulation of proline and the decrease of dimethylsulfoniopropionate suggest that the proline is the main osmoprotectant for the diatom in nitrogen rich conditions.
本报告描述了来自原始代谢物的 97 种低分子量化合物和 124 种硅藻假交替单胞菌脂质化合物的代谢和脂质组学分析。代谢图谱是通过对硅藻进行 24 小时的四种不同处理(I)去除氮,(II)降低铁浓度,(III)添加海水盐,(IV)向生长介质中添加碳酸盐)来创建的。我们的结果表明,早在氮耗尽 24 小时后,就会发生硅藻假交替单胞菌脂质组成以及初级代谢的明显定性和定量变化。因此,我们可以观察到几种储存脂质的积累,即三酰基甘油和 TCA 循环中间体,其中柠檬酸增加了 10 多倍。这些变化与 TCA 酶基因的表达呈正相关。除了 TCA 循环中间体和储存脂质的变化外,我们还观察到含氮脂质和初级代谢物如氨基酸的减少。作为对抗氮饥饿的一种措施,我们观察到氮吸收和氨基酸生物合成基因的表达水平升高。这表明,通过改变代谢通量和代谢物丰度,硅藻可以快速有效地适应变化的环境。特别是脯氨酸的积累和二甲基亚砜丙酸盐的减少表明,在富氮条件下,脯氨酸是硅藻的主要渗透保护剂。