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Conservation of Expression and Sequence of Metabolic Genes Is Reflected by Activity Across Metabolic States

机译:跨代谢状态的活动反映了代谢基因表达和序列的保守性。

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Variation in gene expression levels on a genomic scale has been detected among different strains, among closely related species, and within populations of genetically identical cells. What are the driving forces that lead to expression divergence in some genes and conserved expression in others? Here we employ flux balance analysis to address this question for metabolic genes. We consider the genome-scale metabolic model of Saccharomyces cerevisiae, and its entire space of optimal and near-optimal flux distributions. We show that this space reveals underlying evolutionary constraints on expression regulation, as well as on the conservation of the underlying gene sequences. Genes that have a high range of optimal flux levels tend to display divergent expression levels among different yeast strains and species. This suggests that gene regulation has diverged in those parts of the metabolic network that are less constrained. In addition, we show that genes that are active in a large fraction of the space of optimal solutions tend to have conserved sequences. This supports the possibility that there is less selective pressure to maintain genes that are relevant for only a small number of metabolic states.
机译:已经在不同菌株之间,密切相关的物种之间以及在遗传上相同的细胞群中检测到基因表达水平的基因表达水平的变化。导致某些基因表达差异和其他基因保守表达的驱动力是什么?在这里,我们采用流量平衡分析来解决代谢基因的问题。我们考虑了酿酒酵母的基因组规模的代谢模型,及其最佳和接近最佳通量分布的整个空间。我们表明,该空间揭示了表达调控的潜在进化限制,以及潜在基因序列的保守性。具有最佳通量水平的高范围的基因倾向于在不同的酵母菌株和物种之间显示不同的表达水平。这表明基因调控在新陈代谢网络的那些受约束较少的部分有所不同。此外,我们表明在最佳解决方案的很大一部分空间中有活性的基因往往具有保守的序列。这支持以下可能性:维持与仅少数代谢状态相关的基因的选择性压力较小。

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