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Biophysical Fitness Landscapes for Transcription Factor Binding Sites

机译:转录因子结合位点的生物物理适应性景观。

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Phenotypic states and evolutionary trajectories available to cell populations are ultimately dictated by complex interactions among DNA, RNA, proteins, and other molecular species. Here we study how evolution of gene regulation in a single-cell eukaryote S. cerevisiae is affected by interactions between transcription factors (TFs) and their cognate DNA sites. Our study is informed by a comprehensive collection of genomic binding sites and high-throughput in vitro measurements of TF-DNA binding interactions. Using an evolutionary model for monomorphic populations evolving on a fitness landscape, we infer fitness as a function of TF-DNA binding to show that the shape of the inferred fitness functions is in broad agreement with a simple functional form inspired by a thermodynamic model of two-state TF-DNA binding. However, the effective parameters of the model are not always consistent with physical values, indicating selection pressures beyond the biophysical constraints imposed by TF-DNA interactions. We find little statistical support for the fitness landscape in which each position in the binding site evolves independently, indicating that epistasis is common in the evolution of gene regulation. Finally, by correlating TF-DNA binding energies with biological properties of the sites or the genes they regulate, we are able to rule out several scenarios of site-specific selection, under which binding sites of the same TF would experience different selection pressures depending on their position in the genome. These findings support the existence of universal fitness landscapes which shape evolution of all sites for a given TF, and whose properties are determined in part by the physics of protein-DNA interactions.
机译:细胞群体可用的表型状态和进化轨迹最终取决于DNA,RNA,蛋白质和其他分子种类之间的复杂相互作用。在这里,我们研究了转录因子(TFs)与它们的同源DNA位点之间的相互作用如何影响单细胞真核酿酒酵母中基因调控的进化。我们的研究是基于基因组结合位点的全面收集和TF-DNA结合相互作用的高通量体外测量。使用适应度景观上进化的单态种群的进化模型,我们推断适应度是TF-DNA结合的函数,以表明推断的适应度函数的形状与受两个热力学模型启发的简单函数形式大致吻合状态的TF-DNA结合。但是,模型的有效参数并不总是与物理值一致,表明选择压力超出了TF-DNA相互作用所施加的生物物理限制。我们发现很少有统计支持在结合位点的每个位置都独立进化的适应态,这表明上位性在基因调控的进化中很普遍。最后,通过将TF-DNA结合能与位点或它们调控的基因的生物学特性相关联,我们可以排除几种位点特异性选择的情况,在这种情况下,相同TF的结合位点将经历不同的选择压力,具体取决于它们在基因组中的位置。这些发现支持了通用健身景观的存在,该景观塑造了给定TF的所有位点的进化,其特性部分取决于蛋白质-DNA相互作用的物理学。

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