Nodelman Ilana M, Horvath Kyle C, Levendosky Robert F, Winger Jessica, Ren Ren, Patel Ashok, Li Ming, Wang Michelle D, Roberts Elijah, Bowman Gregory D
T.C. Jenkins Department of Biophysics, Johns Hopkins University, Baltimore, MD 21218, USA.
Department of Biology, Johns Hopkins University, Baltimore, MD 21218, USA.
Nucleic Acids Res. 2016 Sep 19;44(16):7580-91. doi: 10.1093/nar/gkw406. Epub 2016 May 12.
Chromatin remodelers are essential for establishing and maintaining the placement of nucleosomes along genomic DNA. Yet how chromatin remodelers recognize and respond to distinct chromatin environments surrounding nucleosomes is poorly understood. Here, we use Lac repressor as a tool to probe how a DNA-bound factor influences action of the Chd1 remodeler. We show that Chd1 preferentially shifts nucleosomes away from Lac repressor, demonstrating that a DNA-bound factor defines a barrier for nucleosome positioning. Rather than an absolute block in sliding, the barrier effect was achieved by altered rates of nucleosome sliding that biased redistribution of nucleosomes away from the bound Lac repressor site. Remarkably, in addition to slower sliding toward the LacO site, the presence of Lac repressor also stimulated sliding in the opposite direction. These experiments therefore demonstrate that Chd1 responds to the presence of a bound protein on both entry and exit sides of the nucleosome. This sensitivity to both sides of the nucleosome allows for a faster and sharper response than would be possible by responding to only the entry side, and we speculate that dual entry/exit sensitivity is also important for regularly spaced nucleosome arrays generated by Chd1 and the related ISWI remodelers.
染色质重塑因子对于在基因组DNA上建立和维持核小体的定位至关重要。然而,人们对染色质重塑因子如何识别和响应核小体周围不同的染色质环境知之甚少。在这里,我们使用乳糖阻遏物作为工具来探究与DNA结合的因子如何影响Chd1重塑因子的作用。我们发现Chd1优先将核小体从乳糖阻遏物上移开,表明与DNA结合的因子为核小体定位定义了一个屏障。这种屏障效应并非通过绝对阻止滑动来实现,而是通过改变核小体滑动速率来实现的,这种改变使核小体偏向于从结合的乳糖阻遏物位点重新分布。值得注意的是,除了向LacO位点的滑动较慢外,乳糖阻遏物的存在还刺激了相反方向的滑动。因此,这些实验表明Chd1在核小体的进入和退出两侧都对结合蛋白的存在做出反应。与仅对进入侧做出反应相比,对核小体两侧的这种敏感性允许更快、更敏锐的反应,并且我们推测双进入/退出敏感性对于由Chd1和相关的ISWI重塑因子产生的规则间隔核小体阵列也很重要。