Young Tiffany J, Kirchmaier Ann L
Biochim Biophys Acta. 2013 Mar-Apr;1819(3-4):303-312. doi: 10.1016/j.bbagrm.2011.10.006.
Identical genes in two different cells can stably exist in alternate transcriptional states despite the dynamic changes that will occur to chromatin at that locus throughout the cell cycle. In mammals, this is achieved through epigenetic processes that regulate key developmental transitions and ensure stable patterns of gene expression during growth and differentiation. The budding yeast Saccharomyces cerevisiae utilizes silencing to control the expression state of genes encoding key regulatory factors for determining cell-type, ribosomal RNA levels and proper telomere function. Here, we review the composition of silent chromatin in S. cerevisiae, how silent chromatin is influenced by chromatin assembly and histone modifications and highlight several observations that have contributed to our understanding of the interplay between silent chromatin formation and stability and the cell cycle. This article is part of a Special Issue entitled: Histone chaperones and Chromatin assembly.
尽管在整个细胞周期中,位于该基因座的染色质会发生动态变化,但两个不同细胞中的相同基因仍能稳定地以交替转录状态存在。在哺乳动物中,这是通过表观遗传过程实现的,这些过程调节关键的发育转变,并确保在生长和分化过程中基因表达的稳定模式。芽殖酵母酿酒酵母利用沉默来控制编码决定细胞类型、核糖体RNA水平和端粒正常功能的关键调节因子的基因的表达状态。在这里,我们综述了酿酒酵母中沉默染色质的组成、沉默染色质如何受到染色质组装和组蛋白修饰的影响,并强调了一些有助于我们理解沉默染色质形成与稳定性和细胞周期之间相互作用的观察结果。本文是名为:组蛋白伴侣与染色质组装的特刊的一部分。