Department of Biochemistry and Center for Biomedical Genetics, Erasmus University Medical Center, Rotterdam, The Netherlands.
Mol Cell Biol. 2012 Feb;32(3):675-88. doi: 10.1128/MCB.06365-11. Epub 2011 Nov 28.
The nucleosome is the fundamental repeating unit of eukaryotic chromatin. Here, we assessed the interplay between DNA sequence and ATP-dependent chromatin-remodeling factors (remodelers) in the nucleosomal organization of a eukaryotic genome. We compared the genome-wide distribution of Drosophila NURD, (P)BAP, INO80, and ISWI, representing the four major remodeler families. Each remodeler has a unique set of genomic targets and generates distinct chromatin signatures. Remodeler loci have characteristic DNA sequence features, predicted to influence nucleosome formation. Strikingly, remodelers counteract DNA sequence-driven nucleosome distribution in two distinct ways. NURD, (P)BAP, and INO80 increase histone density at their target sequences, which intrinsically disfavor positioned nucleosome formation. In contrast, ISWI promotes open chromatin at sites that are propitious for precise nucleosome placement. Remodelers influence nucleosome organization genome-wide, reflecting their high genomic density and the propagation of nucleosome redistribution beyond remodeler binding sites. In transcriptionally silent early embryos, nucleosome organization correlates with intrinsic histone-DNA sequence preferences. Following differential expression of the genome, however, this relationship diminishes and eventually disappears. We conclude that the cellular nucleosome landscape is the result of the balance between DNA sequence-driven nucleosome placement and active nucleosome repositioning by remodelers and the transcription machinery.
核小体是真核染色质的基本重复单元。在这里,我们评估了 DNA 序列和 ATP 依赖性染色质重塑因子(重塑因子)在真核基因组核小体组织中的相互作用。我们比较了果蝇 NURD、(P)BAP、INO80 和 ISWI 的全基因组分布,它们代表了四个主要的重塑因子家族。每个重塑因子都有一组独特的基因组靶标,并产生不同的染色质特征。重塑因子的基因座具有特征性的 DNA 序列特征,预计会影响核小体的形成。引人注目的是,重塑因子以两种截然不同的方式抵消了 DNA 序列驱动的核小体分布。NURD、(P)BAP 和 INO80 在其靶序列上增加了组蛋白密度,这本质上不利于定位核小体的形成。相比之下,ISWI 在有利于精确核小体定位的位点促进开放染色质。重塑因子在全基因组范围内影响核小体组织,反映了它们的高基因组密度以及核小体重分布超越重塑因子结合位点的传播。在转录沉默的早期胚胎中,核小体组织与固有组蛋白-DNA 序列偏好相关。然而,随着基因组的差异表达,这种关系减弱,最终消失。我们得出的结论是,细胞核小体景观是 DNA 序列驱动核小体定位和重塑因子和转录机制介导的活性核小体重定位之间平衡的结果。