Pontvianne Frédéric, Blevins Todd, Pikaard Craig S
Department of Biology, Indiana University, 915 E. Third Street, Bloomington, IN, 47405, USA.
Adv Bot Res. 2010 Jan 1;53:1-22. doi: 10.1016/S0065-2296(10)53001-5.
In eukaryotes, changes in chromatin structure regulate the access of gene regulatory sequences to the transcriptional machinery and play important roles in the repression of transposable elements, thereby protecting genome integrity. Chromatin dynamics and gene expression states are highly correlated, with DNA methylation and histone post-translational modifications playing important roles in the establishment or maintenance of chromatin states in plants. Histones can be covalently modified in a variety of ways, thereby affecting nucleosome spacing and/or higher-order nucleosome interactions directly or via the recruitment of histone-binding proteins. An extremely important group of chromatin modifying enzymes are the histone lysine methyltransferases (HKMTs). These enzymes are involved in the establishment and/or maintenance of euchromatic or heterochromatic states of active or transcriptionally repressed sequences, respectively. The vast majority of HKMTs possess a SET domain named for the three Drosophila proteins that are the founding members of the family: Suppressor of variegation, Enhancer of zeste and Trithorax. It is the SET domain that is responsible for HKMT enzymatic activity. Mutation of Arabidopsis HKMT genes can result in phenotypic abnormalities due to the improper regulation of important developmental genes. Here, we review the different classes of HKMTs present in the model plant Arabidopsis thaliana and discuss what is known about their biochemical and biological functions.
在真核生物中,染色质结构的变化调节基因调控序列与转录机制的接触,并在转座元件的抑制中发挥重要作用,从而保护基因组完整性。染色质动态变化与基因表达状态高度相关,DNA甲基化和组蛋白翻译后修饰在植物染色质状态的建立或维持中起重要作用。组蛋白可以通过多种方式进行共价修饰,从而直接或通过招募组蛋白结合蛋白来影响核小体间距和/或高阶核小体相互作用。一类极其重要的染色质修饰酶是组蛋白赖氨酸甲基转移酶(HKMTs)。这些酶分别参与活性或转录抑制序列的常染色质或异染色质状态的建立和/或维持。绝大多数HKMTs都拥有一个SET结构域,该结构域以果蝇的三种蛋白质命名,它们是该家族的创始成员:斑驳抑制因子、zeste增强子和三体胸节蛋白。正是SET结构域负责HKMT的酶活性。拟南芥HKMT基因的突变可能由于重要发育基因的调控不当而导致表型异常。在这里,我们综述了模式植物拟南芥中存在的不同类别的HKMTs,并讨论了它们的生化和生物学功能。