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Analysis and synthesis of high-amplitude Cis-elements in the mammalian circadian clock

机译:哺乳动物生物钟中高振幅顺式元素的分析与合成

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摘要

Mammalian circadian clocks consist of regulatory loops mediated by Clock/Bmal1-binding elements, DBP/E4BP4 binding elements, and RevErbA/ROR binding elements. As a step toward system-level understanding of the dynamic transcriptional regulation of the oscillator, we constructed and used a mammalian promoter/enhancer database (http://promoter.cdb.riken.jp/) with computational models of the Clock/Bmal1-binding elements, DBP/E4BP4 binding elements, and RevErbA/ROR binding elements to predict new targets of the clock and subsequently validated these targets at the level of the cell and organism. We further demonstrated the predictive nature of these models by generating and testing synthetic regulatory elements that do not occur in nature and showed that these elements produced high-amplitude circadian gene regulation. Biochemical experiments to characterize these synthetic elements revealed the importance of the affinity balance between transactivators and transrepressors in generating high-amplitude circadian transcriptional output. These results highlight the power of comparative genomics approaches for system-level identification and knowledge-based design of dynamic regulatory circuits.
机译:哺乳动物昼夜节律时钟由Clock / Bmal1结合元件,DBP / E4BP4结合元件和RevErbA / ROR结合元件介导的调节环组成。为了朝着系统水平了解振荡器的动态转录调控的方向迈进,我们构建并使用了带有Clock / Bmal1-计算模型的哺乳动物启动子/增强子数据库(http://promoter.cdb.riken.jp/)。结合元件,DBP / E4BP4结合元件和RevErbA / ROR结合元件来预测时钟的新靶标,并随后在细胞和生物体水平上验证这些靶标。通过生成和测试自然界中不存在的合成调控元件,我们进一步证明了这些模型的预测性质,并表明这些元件产生了高振幅的昼夜节律基因调控。表征这些合成元素的生化实验揭示了反式激活子和反式抑制子之间亲和力平衡在产生高振幅昼夜节律转录输出中的重要性。这些结果凸显了比较基因组学方法在动态调节电路的系统级识别和基于知识的设计中的强大功能。

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