Leibniz Institute of Plant Genetics and Crop Plant Research, Gatersleben, 06466, Germany.
Cell Biology & Plant Biochemistry, Biochemistry Center, University of Regensburg, Regensburg, 93053, Germany.
New Phytol. 2022 Sep;235(6):2252-2269. doi: 10.1111/nph.18286. Epub 2022 Jun 27.
Dimethylation of histone H3 lysine 9 (H3K9me2), a crucial modification for heterochromatin formation and transcriptional silencing, is essential for proper meiotic prophase progression in mammals. We analyzed meiotic defects and generated genome-wide profiles of H3K9me2 and transcriptomes for the mutants of H3K9 demethylases. Moreover, we also identified proteins interacting with H3K9 demethylases. H3K9me2 is usually found at transposable elements and repetitive sequences but is absent from the bodies of protein-coding genes. In this study, we show that the Arabidopsis thaliana H3K9 demethylases IBM1 and JMJ27 cooperatively regulate crossover formation and chromosome segregation. They protect thousands of protein-coding genes from ectopic H3K9me2, including genes essential for meiotic prophase progression. In addition to removing H3K9me2, IBM1 and JMJ27 interact with the Precocious Dissociation of Sisters 5 (PDS5) cohesin complex cofactors. The pds5 mutant shared similar transcriptional alterations with ibm1 jmj27, including meiosis-essential genes, yet without affecting H3K9me2 levels. Hence, PDS5s, together with IBM1 and JMJ27, regulate male meiosis and gene expression independently of H3K9 demethylation. These findings uncover a novel role of H3K9me2 removal in meiosis and a new function of H3K9 demethylases and cohesin cofactors in meiotic transcriptional regulation.
组蛋白 H3 赖氨酸 9 二甲基化(H3K9me2)是异染色质形成和转录沉默的关键修饰,对于哺乳动物减数分裂前期的正常进展至关重要。我们分析了减数分裂缺陷,并对 H3K9 去甲基酶的突变体进行了全基因组 H3K9me2 谱和转录组分析。此外,我们还鉴定了与 H3K9 去甲基酶相互作用的蛋白质。H3K9me2 通常存在于转座元件和重复序列中,但不存在于蛋白质编码基因的主体中。在这项研究中,我们表明拟南芥的 H3K9 去甲基酶 IBM1 和 JMJ27 协同调节交叉形成和染色体分离。它们保护数千个蛋白质编码基因免受异位 H3K9me2 的影响,包括减数分裂前期进展所必需的基因。除了去除 H3K9me2 之外,IBM1 和 JMJ27 还与 Precocious Dissociation of Sisters 5(PDS5)黏合复合物共因子相互作用。pds5 突变体与 ibm1 jmj27 具有相似的转录变化,包括减数分裂必需基因,但不影响 H3K9me2 水平。因此,PDS5s 与 IBM1 和 JMJ27 一起,独立于 H3K9 去甲基化调节雄性减数分裂和基因表达。这些发现揭示了 H3K9me2 去除在减数分裂中的新作用,以及 H3K9 去甲基酶和黏合共因子在减数分裂转录调控中的新功能。