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Communication between levels of transcriptional control improves robustness and adaptivity

机译:转录控制水平之间的交流提高了鲁棒性和适应性

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摘要

Regulation of eukaryotic gene expression depends on groups of related proteins acting at the levels of chromatin organization, transcriptional initiation, RNA processing, and nuclear transport. However, a unified understanding of how these different levels of transcriptional control interact has been lacking. Here, we combine genome-wide protein–DNA binding data from multiple sources to infer the connections between functional groups of regulators in Saccharomyces cerevisiae. Our resulting transcriptional network uncovers novel biological relationships; supporting experiments confirm new associations between actively transcribed genes and Sir2 and Esc1, two proteins normally linked to silencing chromatin. Analysis of the regulatory network also reveals an elegant architecture for transcriptional control. Using communication theory, we show that most protein regulators prefer to form modules within their functional class, whereas essential proteins maintain the sparse connections between different classes. Moreover, we provide evidence that communication between different regulatory groups improves the robustness and adaptivity of the cell.
机译:真核基因表达的调节取决于在染色质组织,转录起始,RNA加工和核转运水平上起作用的相关蛋白的组。但是,缺乏对这些不同水平的转录控制如何相互作用的统一理解。在这里,我们结合了来自多个来源的全基因组蛋白质-DNA结合数据,以推断酿酒酵母中的调节剂功能组之间的联系。我们产生的转录网络揭示了新颖的生物学关系;支持性实验证实了主动转录的基因与Sir2和Esc1之间的新关联,Sir2和Esc1这两种蛋白通常与沉默染色质相关。监管网络的分析还揭示了转录控制的优雅架构。使用交流理论,我们表明大多数蛋白质调节剂都倾向于在其功能类别内形成模块,而必需蛋白质则维持不同类别之间的稀疏连接。而且,我们提供了证据,表明不同调节基团之间的交流提高了细胞的健壮性和适应性。

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