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Time-Course Analysis of Gene Expression During the Saccharomyces cerevisiae Hypoxic Response

机译:酿酒酵母低氧反应过程中基因表达的时间过程分析

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摘要

Many cells experience hypoxia, or low oxygen, and respond by dramatically altering gene expression. In the yeast Saccharomyces cerevisiae, genes that respond are required for many oxygen-dependent cellular processes, such as respiration, biosynthesis, and redox regulation. To more fully characterize the global response to hypoxia, we exposed yeast to hypoxic conditions, extracted RNA at different times, and performed RNA sequencing (RNA-seq) analysis. Time-course statistical analysis revealed hundreds of genes that changed expression by up to 550-fold. The genes responded with varying kinetics suggesting that multiple regulatory pathways are involved. We identified most known oxygen-regulated genes and also uncovered new regulated genes. Reverse transcription-quantitative PCR (RT-qPCR) analysis confirmed that the lysine methyltransferase and the recombinase , both conserved in humans, are indeed oxygen-responsive. Looking more broadly, oxygen-regulated genes participate in expected processes like respiration and lipid metabolism, but also in unexpected processes like amino acid and vitamin metabolism. Using principle component analysis, we discovered that the hypoxic response largely occurs during the first 2 hr and then a new steady-state expression state is achieved. Moreover, we show that the oxygen-dependent genes are not part of the previously described environmental stress response (ESR) consisting of genes that respond to diverse types of stress. While hypoxia appears to cause a transient stress, the hypoxic response is mostly characterized by a transition to a new state of gene expression. In summary, our results reveal that hypoxia causes widespread and complex changes in gene expression to prepare the cell to function with little or no oxygen.
机译:许多细胞经历缺氧或低氧状态,并通过显着改变基因表达来作出反应。在酵母酿酒酵母中,许多氧气依赖性细胞过程(例如呼吸作用,生物合成和氧化还原调节)都需要响应基因。为了更全面地表征对缺氧的总体反应,我们将酵母置于低氧条件下,在不同时间提取RNA,然后进行RNA测序(RNA-seq)分析。时程统计分析揭示了数百个基因,它们最多可将表达改变550倍。这些基因以不同的动力学响应,提示涉及多个调节途径。我们确定了最著名的氧调节基因,还发现了新的调节基因。逆转录定量PCR(RT-qPCR)分析证实,人体内保守的赖氨酸甲基转移酶和重组酶确实对氧有反应。从更广泛的角度看,氧调节基因参与呼吸和脂质代谢等预期过程,但也参与氨基酸和维生素代谢等意想不到的过程。使用主成分分析,我们发现低氧反应主要发生在前2小时,然后达到一个新的稳态表达状态。此外,我们表明氧依赖性基因不是先前描述的环境应激反应(ESR)的一部分,该环境应激反应由对多种类型的应激反应的基因组成。低氧似乎引起短暂的压力,而低氧反应的主要特征是过渡到基因表达的新状态。总而言之,我们的研究结果表明,缺氧会导致基因表达发生广泛而复杂的变化,从而使细胞在缺氧或缺氧的情况下发挥功能。

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