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The COP9 signalosome is involved in the regulation of lipid metabolism and of transition metals uptake in Saccharomyces cerevisiae

机译:COP9信号小体参与酿酒酵母的脂质代谢和过渡金属摄取的调控。

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摘要

The COP9 signalosome (CSN) is a highly conserved eukaryotic protein complex which regulates the cullin RING family of ubiquitin ligases and carries out a deneddylase activity that resides in subunit 5 (CSN5). Whereas CSN activity is essential for the development of higher eukaryotes, several unicellular fungi including the budding yeast Saccharomyces cerevisiae can survive without a functional CSN. Nevertheless, the budding yeast CSN is biochemically active and deletion mutants of each of its subunits exhibit deficiency in cullins deneddylation, although the biological context of this activity is still unknown in this organism. To further characterize CSN function in budding yeast, we present here a transcriptomic and proteomic analysis of a S.cerevisiae strain deleted in the CSN5/RRI1 gene (hereafter referred to as CSN5), coding for the only canonical subunit of the complex. We show that Csn5 is involved in modulation of the genes controlling amino acid and lipid metabolism and especially ergosterol biosynthesis. These alterations in gene expression correlate with the lower ergosterol levels and increased intracellular zinc content which we observed in csn5 null mutant cells. We show that some of these regulatory effects of Csn5, in particular the control of isoprenoid biosynthesis, are conserved through evolution, since similar transcriptomic and/or proteomic effects of csn5 mutation were previously observed in other eukaryotic organisms such as Aspergillusnidulans, Arabidopsisthaliana and Drosophilamelanogaster. Our results suggest that the diverged budding yeast CSN is more conserved than was previously thought.
机译:COP9信号小体(CSN)是高度保守的真核蛋白复合物,可调节泛素连接酶的cullin RING家族,并具有位于亚基5(CSN5)中的树突化酶活性。尽管CSN活性对于高级真核生物的发育必不可少,但数种单细胞真菌(包括出芽的酿酒酵母)可以在没有功能性CSN的情况下存活。尽管如此,发芽的酵母CSN具有生化活性,并且每个亚基的缺失突变体在cullins腺苷酸化中均表现出不足,尽管这种生物的生物学背景仍然未知。为了进一步表征CSN在发芽酵母中的功能,我们在这里介绍了在CSN5 / RRI1基因(以下称为CSN5)中缺失的酿酒酵母菌株的转录组和蛋白质组学分析,该序列编码该复合体的唯一典范亚基。我们显示Csn5参与调控氨基酸和脂质代谢特别是麦角甾醇生物合成的基因的调控。这些基因表达的变化与我们在csn5空突变细胞中观察到的较低的麦角固醇水平和增加的细胞内锌含量相关。我们显示了Csn5的某些调节作用,特别是对类异戊二烯生物合成的控制,通过进化得以保留,因为csn5突变的类似转录组和/或蛋白质组学作用以前曾在其他真核生物如曲霉,拟南芥和果蝇中观察到。我们的结果表明,发芽的酵母CSN比以前认为的更为保守。

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