Viswanathan Ramya, True Jason D, Auble David T
From the Department of Biochemistry and Molecular Genetics, University of Virginia Health System, Charlottesville, Virginia 22908.
From the Department of Biochemistry and Molecular Genetics, University of Virginia Health System, Charlottesville, Virginia 22908
J Biol Chem. 2016 Jul 22;291(30):15714-26. doi: 10.1074/jbc.M116.730366. Epub 2016 Jun 2.
The essential Saccharomyces cerevisiae ATPase Mot1 globally regulates transcription by impacting the genomic distribution and activity of the TATA-binding protein (TBP). In vitro, Mot1 forms a ternary complex with TBP and DNA and can use ATP hydrolysis to dissociate the TBP-DNA complex. Prior work suggested an interaction between the ATPase domain and a functionally important segment of DNA flanking the TATA sequence. However, how ATP hydrolysis facilitates removal of TBP from DNA is not well understood, and several models have been proposed. To gain insight into the Mot1 mechanism, we dissected the role of the flanking DNA segment by biochemical analysis of complexes formed using DNAs with short single-stranded gaps. In parallel, we used a DNA tethered cleavage approach to map regions of Mot1 in proximity to the DNA under different conditions. Our results define non-equivalent roles for bases within a broad segment of flanking DNA required for Mot1 action. Moreover, we present biochemical evidence for two distinct conformations of the Mot1 ATPase, the detection of which can be modulated by ATP analogs as well as DNA sequence flanking the TATA sequence. We also show using purified complexes that Mot1 dissociation of a stable, high affinity TBP-DNA interaction is surprisingly inefficient, suggesting how other transcription factors that bind to TBP may compete with Mot1. Taken together, these results suggest that TBP-DNA affinity as well as other aspects of promoter sequence influence Mot1 function in vivo.
酿酒酵母必需的ATP酶Mot1通过影响TATA结合蛋白(TBP)的基因组分布和活性来全局调节转录。在体外,Mot1与TBP和DNA形成三元复合物,并可利用ATP水解来解离TBP-DNA复合物。先前的研究表明ATP酶结构域与TATA序列侧翼功能重要的DNA片段之间存在相互作用。然而,ATP水解如何促进TBP从DNA上移除尚不清楚,并且已经提出了几种模型。为了深入了解Mot1的作用机制,我们通过对使用具有短单链缺口的DNA形成的复合物进行生化分析,剖析了侧翼DNA片段的作用。同时,我们使用DNA系链切割方法来绘制在不同条件下Mot1靠近DNA的区域。我们的结果确定了Mot1作用所需的广泛侧翼DNA片段内碱基的不等同作用。此外,我们提供了Mot1 ATP酶两种不同构象的生化证据,其检测可由ATP类似物以及TATA序列侧翼的DNA序列调节。我们还使用纯化的复合物表明,Mot1对稳定的高亲和力TBP-DNA相互作用的解离效率出奇地低,这表明与TBP结合的其他转录因子可能如何与Mot1竞争。综上所述,这些结果表明TBP-DNA亲和力以及启动子序列的其他方面会影响Mot1在体内的功能。