McKnight Jeffrey N, Tsukiyama Toshio, Bowman Gregory D
Basic Sciences Division, Fred Hutchinson Cancer Research Center, Seattle, Washington 98109, USA;
T.C. Jenkins Department of Biophysics, Johns Hopkins University, Baltimore, Maryland 21218, USA.
Genome Res. 2016 May;26(5):693-704. doi: 10.1101/gr.199919.115. Epub 2016 Mar 18.
ATP-dependent chromatin remodelers regulate chromatin dynamics by modifying nucleosome positions and occupancy. DNA-dependent processes such as replication and transcription rely on chromatin to faithfully regulate DNA accessibility, yet how chromatin remodelers achieve well-defined nucleosome positioning in vivo is poorly understood. Here, we report a simple method for site-specifically altering nucleosome positions in live cells. By fusing the Chd1 remodeler to the DNA binding domain of the Saccharomyces cerevisiae Ume6 repressor, we have engineered a fusion remodeler that selectively positions nucleosomes on top of adjacent Ume6 binding motifs in a highly predictable and reproducible manner. Positioning of nucleosomes by the fusion remodeler recapitulates closed chromatin structure at Ume6-sensitive genes analogous to the endogenous Isw2 remodeler. Strikingly, highly precise positioning of single founder nucleosomes by either chimeric Chd1-Ume6 or endogenous Isw2 shifts phased chromatin arrays in cooperation with endogenous chromatin remodelers. Our results demonstrate feasibility of engineering precise nucleosome rearrangements through sequence-targeted chromatin remodeling and provide insight into targeted action and cooperation of endogenous chromatin remodelers in vivo.
ATP 依赖的染色质重塑因子通过改变核小体位置和占有率来调节染色质动力学。诸如复制和转录等依赖 DNA 的过程依赖染色质来忠实地调节 DNA 可及性,然而染色质重塑因子如何在体内实现明确的核小体定位却知之甚少。在此,我们报告了一种在活细胞中位点特异性改变核小体位置的简单方法。通过将 Chd1 重塑因子与酿酒酵母 Ume6 阻遏物的 DNA 结合结构域融合,我们构建了一种融合重塑因子,它能以高度可预测和可重复的方式将核小体选择性地定位在相邻的 Ume6 结合基序之上。融合重塑因子对核小体的定位在 Ume6 敏感基因处重现了封闭染色质结构,类似于内源性 Isw2 重塑因子。引人注目的是,嵌合的 Chd1-Ume6 或内源性 Isw2 对单个起始核小体的高度精确定位与内源性染色质重塑因子协同作用,使染色质阵列发生相位变化。我们的结果证明了通过序列靶向染色质重塑工程实现精确核小体重排的可行性,并为体内内源性染色质重塑因子的靶向作用和协同作用提供了见解。