Parker Kathryn, Maxson Julia, Mooney Alissa, Wiley Emily A
Joint Science Department, W M Keck Science Center, Claremont, CA 91711, USA.
Eukaryot Cell. 2007 Oct;6(10):1913-24. doi: 10.1128/EC.00217-07. Epub 2007 Aug 22.
Class I histone deacetylases (HDACs) regulate DNA-templated processes such as transcription. They act both at specific loci and more generally across global chromatin, contributing to acetylation patterns that may underlie large-scale chromatin dynamics. Although hypoacetylation is correlated with highly condensed chromatin, little is known about the contribution of individual HDACs to chromatin condensation mechanisms. Using the ciliated protozoan Tetrahymena thermophila, we investigated the role of a specific class I HDAC, Tauhd1p, in the reversible condensation of global chromatin. In this system, the normal physiological response to cell starvation includes the widespread condensation of the macronuclear chromatin and general repression of gene transcription. We show that the chromatin in Thd1p-deficient cells failed to condense during starvation. The condensation failure correlated with aberrant hyperphosphorylation of histone H1 and the overexpression of CDC2, encoding the major histone H1 kinase. Changes in the rate of acetate turnover on core histones and in the distribution of acetylated lysines 9 and 23/27 on histone H3 isoforms that were found to correlate with normal chromatin condensation were absent from Thd1p mutant cells. These results point to a role for a class I HDAC in the formation of reversible higher-order chromatin structures and global genome compaction through mechanisms involving the regulation of H1 phosphorylation and core histone acetylation/deacetylation kinetics.
I类组蛋白去乙酰化酶(HDACs)调节诸如转录等以DNA为模板的过程。它们既作用于特定基因座,也更普遍地作用于整个染色质,促成可能是大规模染色质动态基础的乙酰化模式。尽管低乙酰化与高度浓缩的染色质相关,但关于单个HDAC对染色质浓缩机制的贡献知之甚少。我们利用纤毛原生动物嗜热四膜虫,研究了特定的I类HDAC,Tauhd1p,在整体染色质可逆浓缩中的作用。在这个系统中,细胞饥饿的正常生理反应包括大核染色质的广泛浓缩和基因转录的普遍抑制。我们发现,在饥饿期间,Thd1p缺陷细胞中的染色质无法浓缩。这种浓缩失败与组蛋白H1的异常过度磷酸化以及编码主要组蛋白H1激酶的CDC2的过表达相关。在Thd1p突变细胞中,未发现与正常染色质浓缩相关的核心组蛋白上乙酸盐周转速率的变化以及组蛋白H3亚型上乙酰化赖氨酸9和23/27分布的变化。这些结果表明,I类HDAC通过涉及调节H1磷酸化和核心组蛋白乙酰化/去乙酰化动力学的机制,在可逆的高阶染色质结构形成和全基因组压缩中发挥作用。