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首页> 外文期刊>Genome Biology >Regulation of transcriptome, translation, and proteome in response to environmental stress in fission yeast.
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Regulation of transcriptome, translation, and proteome in response to environmental stress in fission yeast.

机译:响应裂变酵母中的环境胁迫,转录组,翻译和蛋白质组的调控。

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摘要

BACKGROUND: Gene expression is controlled globally and at multiple levels in response to environmental stress, but the relationships among these dynamic regulatory changes are not clear. Here we analyzed global regulation during different stress conditions in fission yeast, Schizosaccharomyces pombe, combining dynamic genome-wide data on mRNA, translation, and protein profiles. RESULTS: We observed a strong overall concordance between changes in mRNAs and co-directional changes in translation, for both induced and repressed genes, in response to three conditions: oxidative stress, heat shock, and DNA damage. However, approximately 200 genes each under oxidative and heat stress conditions showed discordant regulation with respect to mRNA and translation profiles, with genes and patterns of regulation being stress-specific. For oxidative stress, we also measured dynamic profiles for 2,147 proteins, comprising 43% of the proteome. The mRNAs induced during oxidative stress strongly correlated with increased protein expression, while repressed mRNAs did not relate to the corresponding protein profiles. Overall changes in relative protein expression correlated better with changes in mRNA expression than with changes in translational efficiency. CONCLUSIONS: These data highlight a global coordination and fine-tuning of gene regulation during stress that mostly acts in the same direction at the levels of transcription and translation. In the oxidative stress condition analyzed, transcription dominates translation to control protein abundance. The concordant regulation of transcription and translation leads to the expected adjustment in protein expression only for up-regulated mRNAs. These patterns of control might reflect the need to balance protein production for stress survival given a limited translational capacity.Registry Number/Name of Substance 0 (Proteome). 0 (RNA, Fungal). 0 (RNA, Messenger).
机译:背景:基因表达受环境压力的影响在全球范围内受到多重控制,但这些动态调节变化之间的关系尚不清楚。在这里,我们结合裂变酵母,裂殖酵母和裂殖酵母的动态全基因组数据,分析了mRNA,翻译和蛋白质谱的动态变化过程中不同胁迫条件下的全局调控。结果:我们观察到,在三种条件下,对于氧化和应激基因,mRNA的变化与翻译的同向变化之间的强烈一致性,这是对氧化应激,热休克和DNA损伤的反应。但是,在氧化和热应激条件下,每个大约200个基因在mRNA和翻译谱方面显示出不一致的调控,调控的基因和调控模式是应激特异性的。对于氧化应激,我们还测量了占蛋白质组43%的2147种蛋白质的动态概况。在氧化应激过程中诱导的mRNA与蛋白表达增加密切相关,而被抑制的mRNA与相应的蛋白谱无关。相对蛋白表达的总体变化与mRNA表达的变化比与翻译效率的变化更好地相关。结论:这些数据强调了在压力下基因调控的整体协调和微调,这些调控在转录和翻译水平上大多以相同的方向起作用。在分析的氧化应激条件下,转录在翻译中起主导作用,以控制蛋白质的丰度。转录和翻译的一致调节仅在上调的mRNA上导致蛋白质表达的预期调节。这些控制模式可能反映了在翻译能力有限的情况下平衡蛋白质产量以维持逆境生存的需要。注册号/物质0(蛋白质组)的名称。 0(RNA,真菌)。 0(RNA,信使)。

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