Department of Molecular Biosciences, Northwestern University, Evanston, IL 60208, USA.
J Mol Biol. 2012 Sep 28;422(4):519-31. doi: 10.1016/j.jmb.2012.06.013. Epub 2012 Jun 21.
The transcriptional output at a genomic locus in eukaryotes is determined, in part, by the pattern of histone modifications that are read and interpreted by key effector proteins. The histone deacetylase activity of the evolutionarily conserved Rpd3S/Sin3S complex is crucial for suppressing aberrant transcription from cryptic start sites within intragenic regions of actively transcribed genes. Precise targeting of the complex relies on the chromatin binding activities of the MRG15 (MRG stands for mortality factor on chromosome 4 related gene) and Pf1 subunits. Whereas the molecular target of the MRG15 chromodomain (CD) has been suggested to be H3K36me(2/3), the precise molecular target of the Pf1 plant homeodomain 1 (PHD1) has remained elusive. Here, we show that Pf1 PHD1 binds preferentially to the unmodified extreme N-terminus of histone H3 (H3K4me(0)) but not to H3K4me(2/3), which are enriched in the promoter and 5' regions of genes. Unlike previously characterized CD and PHD domains that bind to their targets with micromolar affinity, both MRG15 CD and Pf1 PHD1 bind to their targets with >100 μM affinity, offering an explanation for why both MRG15 CD and Pf1 PHD1 domains are required to target the Rpd3S/Sin3S complex to chromatin. Our results also suggest that bivalency, rather than cooperativity, is the operative mechanism by which Pf1 and MRG15 combine to engage H3 in a biologically significant manner. Finally, the studies reveal an unanticipated role of Pf1 PHD1 in engaging the MRG15 MRG domain, albeit in a Pf1 MRG-binding-domain-dependent manner, implying a key role for the MRG15 MRG-Pf1 MBD interaction in chromatin targeting of the Rpd3S/Sin3S complex.
真核生物基因组位置的转录输出部分取决于组蛋白修饰模式,这些模式被关键效应蛋白读取和解释。进化保守的 Rpd3S/Sin3S 复合物的组蛋白去乙酰化酶活性对于抑制基因内区域中活跃转录基因的隐性起始位点的异常转录至关重要。复合物的精确靶向依赖于 MRG15(MRG 代表与第 4 号染色体相关的死亡因子基因)和 Pf1 亚基的染色质结合活性。虽然已经提出了 MRG15 色氨酸-丝氨酸富含域(CD)的分子靶标是 H3K36me(2/3),但 Pf1 植物同源域 1(PHD1)的精确分子靶标仍然难以捉摸。在这里,我们表明 Pf1 PHD1 优先结合组蛋白 H3 的未修饰极端 N 末端(H3K4me(0)),而不结合富含基因启动子和 5' 区域的 H3K4me(2/3)。与以前表征的以微摩尔亲和力结合其靶标的 CD 和 PHD 结构域不同,MRG15 CD 和 Pf1 PHD1 都以>100 μM 的亲和力结合其靶标,这解释了为什么 MRG15 CD 和 Pf1 PHD1 结构域都需要将 Rpd3S/Sin3S 复合物靶向染色质。我们的结果还表明,二价性而不是协同性是 Pf1 和 MRG15 以生物上有意义的方式结合 H3 的操作机制。最后,这些研究揭示了 Pf1 PHD1 参与结合 MRG15 MRG 结构域的意外作用,尽管是以 Pf1 MRG 结合结构域依赖性的方式,但这意味着 MRG15 MRG-Pf1 MBD 相互作用在 Rpd3S/Sin3S 复合物的染色质靶向中起着关键作用。