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Theoretical estimates of exposure timescales of protein binding sites on DNA regulated by nucleosome kinetics

机译:核小体动力学调节的DNA上蛋白质结合位点暴露时间尺度的理论估计

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It is being increasingly realized that nucleosome organization on DNA crucially regulates DNA-protein interactions and the resulting gene expression. While the spatial character of the nucleosome positioning on DNA has been experimentally and theoretically studied extensively, the temporal character is poorly understood. Accounting for ATPase activity and DNA-sequence effects on nucleosome kinetics, we develop a theoretical method to estimate the time of continuous exposure of binding sites of non-histone proteins (e.g. transcription factors and TATA binding proteins) along any genome. Applying the method to Saccharomyces cerevisiae, we show that the exposure timescales are determined by cooperative dynamics of multiple nucleosomes, and their behavior is often different from expectations based on static nucleosome occupancy. Examining exposure times in the promoters of GAL1 and PHO5, we show that our theoretical predictions are consistent with known experiments. We apply our method genome-wide and discover huge gene-to-gene variability of mean exposure times of TATA boxes and patches adjacent to TSS (+1 nucleosome region); the resulting timescale distributions have non-exponential tails.
机译:人们越来越认识到,DNA上的核小体组织至关重要地调节了DNA与蛋白质的相互作用以及由此产生的基因表达。尽管已经在实验和理论上对核小体在DNA上的空间特征进行了广泛的研究,但对时间特征却知之甚少。考虑到ATPase活性和DNA序列对核小体动力学的影响,我们开发了一种理论方法来估计沿任何基因组连续暴露非组蛋白的结合位点(例如转录因子和TATA结合蛋白)的时间。将该方法应用于酿酒酵母,我们表明暴露时间尺度是由多个核小体的协同动力学决定的,并且它们的行为通常与基于静态核小体占有率的预期不同。检查GAL1和PHO5启动子中的暴露时间,我们表明我们的理论预测与已知实验一致。我们在全基因组范围内应用我们的方法,发现与TSS(+1核小体区域)相邻的TATA盒和贴片的平均暴露时间存在巨大的基因差异。所得的时间尺度分布具有非指数的尾巴。

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