MRC Clinical Sciences Centre, Faculty of Medicine, Imperial College, London W12 0NN, UK, Institute of Clinical Sciences, Faculty of Medicine, Imperial College, London W12 0NN, UK and Department of Informatics, University of Bergen, Thromøhlensgate 55, N-5008 Bergen, Norway.
Nucleic Acids Res. 2013 Aug;41(15):7185-99. doi: 10.1093/nar/gkt499. Epub 2013 Jun 13.
The precise regulation of gene transcription during metazoan development is controlled by a complex system of interactions between transcription factors, histone modifications and modifying enzymes and chromatin conformation. Developments in chromosome conformation capture technologies have revealed that interactions between regions of chromatin are pervasive and highly cell-type specific. The movement of enhancers and promoters in and out of higher-order chromatin structures within the nucleus are associated with changes in expression and histone modifications. However, the factors responsible for mediating these changes and determining enhancer:promoter specificity are still not completely known. In this review, we summarize what is known about the patterns of epigenetic and chromatin features characteristic of elements involved in long-range interactions. In addition, we review the insights into both local and global patterns of chromatin interactions that have been revealed by the latest experimental and computational methods.
真核生物发育过程中基因转录的精确调控是由转录因子、组蛋白修饰和修饰酶以及染色质构象之间的复杂相互作用系统控制的。染色体构象捕获技术的发展揭示了染色质区域之间的相互作用是普遍存在的,并且具有高度的细胞类型特异性。增强子和启动子在核内高级染色质结构内外的移动与表达和组蛋白修饰的变化相关。然而,负责介导这些变化并确定增强子-启动子特异性的因素尚不完全清楚。在这篇综述中,我们总结了已知的涉及长距离相互作用的元件的特征性表观遗传和染色质特征模式。此外,我们还综述了最新的实验和计算方法所揭示的局部和全局染色质相互作用模式的相关见解。