Department of Biochemistry and Center of Excellence in Bioinformatics and Life Sciences, State University of New York at Buffalo, NY 14203, USA.
Nucleic Acids Res. 2011 Nov 1;39(20):8803-19. doi: 10.1093/nar/gkr557. Epub 2011 Jul 23.
Despite technical advances, the future of chromatin mapping studies requires an ability to draw accurate comparisons between different chromatin states to enhance our understanding of genome biology. In this study, we used matched chromatin preparations to enable specific and accurate comparisons of Saccharomyces cerevisiae chromatin structures in the presence and absence of the co-repressor protein Tup1. Analysis of wild-type and tup1 Δ chromatin data sets revealed unique organizational themes relating to the function of Tup1. Regulatory regions bound by Tup1 assumed a distinct chromatin architecture composed of a wide nucleosome-depleted region, low occupancy/poorly positioned promoter nucleosomes, a larger number and wider distribution of transcription factor-binding sites and downstream genes with enhanced transcription plasticity. Regions of Tup1-dependent chromatin structure were defined for the first time across the entire yeast genome and are shown to strongly overlap with activity of the chromatin remodeler Isw2. Additionally, Tup1-dependent chromatin structures are shown to relate to distinct biological processes and transcriptional states of regulated genes, including Tup1 stabilization of Minus 1 and Minus 2 promoter nucleosomes at actively repressed genes. Together these results help to enhance our mechanistic understanding of Tup1 regulation of chromatin structure and gene expression.
尽管技术取得了进步,但染色质作图研究的未来仍需要能够在不同的染色质状态之间进行准确的比较,以增强我们对基因组生物学的理解。在这项研究中,我们使用匹配的染色质制剂,使酿酒酵母染色质结构在存在和不存在共阻遏蛋白 Tup1 的情况下能够进行特定和准确的比较。对野生型和 tup1Δ染色质数据集的分析揭示了与 Tup1 功能相关的独特组织主题。Tup1 结合的调控区域呈现出独特的染色质结构,由一个广泛的核小体缺失区域、低占有率/定位不良的启动子核小体、更多和更广泛分布的转录因子结合位点以及转录可塑性增强的下游基因组成。首次在整个酵母基因组上定义了 Tup1 依赖的染色质结构区域,并显示与染色质重塑酶 Isw2 的活性强烈重叠。此外,Tup1 依赖的染色质结构与受调控基因的不同生物学过程和转录状态相关,包括 Tup1 稳定活跃受抑制基因的 Minus 1 和 Minus 2 启动子核小体。这些结果有助于增强我们对 Tup1 调节染色质结构和基因表达的机制理解。