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Using deep sequencing to characterize the biophysical mechanism of a transcriptional regulatory sequence

机译:使用深度测序表征转录调控序列的生物物理机制

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Cells use protein-DNA and protein-protein interactions to regulate transcription. A biophysical understanding of this process has, however, been limited by the lack of methods for quantitatively characterizing the interactions that occur at specific promoters and enhancers in living cells. Here we show how such biophysical information can be revealed by a simple experiment in which a library of partially mutated regulatory sequences are partitioned according to their in vivo transcriptional activities and then sequenced en masse. Computational analysis of the sequence data produced by this experiment can provide precise quantitative information about how the regulatory proteins at a specific arrangement of binding sites work together to regulate transcription. This ability to reliably extract precise information about regulatory biophysics in the face of experimental noise is made possible by a recently identified relationship between likelihood and mutual information. Applying our experimental and computational techniques to the Escherichia coli lac promoter, we demonstrate the ability to identify regulatory protein binding sites de novo, determine the sequence-dependent binding energy of the proteins that bind these sites, and, importantly, measure the in vivo interaction energy between RNA polymerase and a DNA-bound transcription factor. Our approach provides a generally applicable method for characterizing the biophysical basis of transcriptional regulation by a specified regulatory sequence. The principles of our method can also be applied to a wide range of other problems in molecular biology.
机译:细胞利用蛋白质-DNA和蛋白质-蛋白质相互作用来调节转录。然而,由于缺乏定量表征活细胞中特定启动子和增强子发生的相互作用的方法,因此对该过程的生物物理理解受到了限制。在这里,我们展示了如何通过一个简单的实验揭示这种生物物理信息,在该实验中,部分突变的调控序列根据其体内转录活性进行了分区,然后进行了整体测序。通过此实验产生的序列数据的计算分析可以提供有关特定位置的结合位点处的调节蛋白如何协同工作以调节转录的精确定量信息。在最近发现的可能性和互信息之间的关系下,面对实验噪声,可靠地提取有关调节生物物理学的精确信息的能力成为可能。将我们的实验和计算技术应用于大肠杆菌lac启动子,我们证明了从头识别调节蛋白结合位点,确定与这些位点结合的蛋白的序列依赖性结合能以及重要的是测量体内相互作用的能力RNA聚合酶和DNA结合的转录因子之间的能量。我们的方法提供了一种普遍适用的方法,用于通过指定的调控序列表征转录调控的生物物理基础。我们方法的原理还可以应用于分子生物学中的其他广泛问题。

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