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酵母对钾饥饿的短期响应。

The short-term response of yeast to potassium starvation.

机构信息

Institut de Biotecnologia i Biomedicina and Departament de Bioquímica i Biologia Molecular, Universitat Autónoma de Barcelona, Bellaterra 08193, Barcelona, Spain.

出版信息

Environ Microbiol. 2012 Nov;14(11):3026-42. doi: 10.1111/j.1462-2920.2012.02887.x. Epub 2012 Oct 5.

Abstract

Potassium is the major intracellular cation in most living cells, including yeasts. Although K(+) has been demonstrated to be necessary for diverse cellular functions, such as enzyme activation, additional, still uncharacterized cellular targets may exist. We show here that in Saccharomyces cerevisiae short-term potassium deprivation impacts in the mRNA level of over one thousand genes. Lack of potassium drastically alters sulfur metabolism (mainly Met and Cys metabolism), triggers an oxidative stress response and activates the retrograde pathway, possibly due to the ammonium accumulation that occurs through the Trk1 potassium transporter. We also observe a remarkable halt in the expression of genes required for ribosome biogenesis and translation, a decrease in expression of diverse components (cyclins, protein kinases) required for progression through the cell cycle and a blockage in septins assembly. Only specific subsets of these changes were observed in a strain deleted for the TRK1 and TRK2 genes growing in the presence of sufficient potassium (50 mM). Therefore, a shortage of potassium in the environment triggers an acute transcriptional response, which covers different aspects of the cell biology so far unexplored, and whose investigation will likely reveal novel functional roles for this cation.

摘要

钾是大多数活细胞(包括酵母)中的主要细胞内阳离子。虽然已经证明 K(+) 对于多种细胞功能(如酶激活)是必需的,但可能存在其他尚未被描述的细胞靶点。我们在这里表明,在酿酒酵母中,短期钾缺乏会影响超过一千个基因的 mRNA 水平。钾的缺乏会严重改变硫代谢(主要是 Met 和 Cys 代谢),引发氧化应激反应,并激活逆行途径,这可能是由于通过 Trk1 钾转运蛋白积累的铵引起的。我们还观察到核糖体生物发生和翻译所需基因的表达显著停止,细胞周期进展所需的各种成分(细胞周期蛋白、蛋白激酶)的表达减少,以及隔膜蛋白组装受阻。只有在含有足够钾(50mM)的条件下生长的缺失 TRK1 和 TRK2 基因的菌株中才观察到这些变化的特定子集。因此,环境中钾的缺乏会引发急性转录反应,涵盖了迄今为止尚未探索的细胞生物学的不同方面,对其研究可能会揭示这种阳离子的新功能作用。

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