Zhu Danling, Wen Yi, Yao Wanyue, Zheng Haiyan, Zhou Sixian, Zhang Qiqi, Qu Li-Jia, Chen Xi, Wu Zhe
Key Laboratory of Molecular Design for Plant Cell Factory of Guangdong Higher Education Institutes, Institute of Plant and Food Science, Department of Biology, School of Life Sciences, Southern University of Science and Technology, Shenzhen, China.
Shenzhen Key Laboratory of Gene Regulation and Systems Biology, Department of Biology, School of Life Sciences, Southern University of Science and Technology, Shenzhen, China.
Nat Genet. 2023 Apr;55(4):706-720. doi: 10.1038/s41588-023-01329-7. Epub 2023 Mar 2.
Epigenetic reprogramming in the germline contributes to the erasure of epigenetic inheritance across generations in mammals but remains poorly characterized in plants. Here we profiled histone modifications throughout Arabidopsis male germline development. We find that the sperm cell has widespread apparent chromatin bivalency, which is established by the acquisition of H3K27me3 or H3K4me3 at pre-existing H3K4me3 or H3K27me3 regions, respectively. These bivalent domains are associated with a distinct transcriptional status. Somatic H3K27me3 is generally reduced in sperm, while dramatic loss of H3K27me3 is observed at only ~700 developmental genes. The incorporation of the histone variant H3.10 facilitates the establishment of sperm chromatin identity without a strong impact on resetting of somatic H3K27me3. Vegetative nuclei harbor thousands of specific H3K27me3 domains at repressed genes, while pollination-related genes are highly expressed and marked by gene body H3K4me3. Our work highlights putative chromatin bivalency and restricted resetting of H3K27me3 at developmental regulators as key features in plant pluripotent sperm.
生殖细胞中的表观遗传重编程有助于消除哺乳动物世代间的表观遗传遗传,但在植物中其特征仍知之甚少。在这里,我们分析了拟南芥雄性生殖细胞发育过程中的组蛋白修饰。我们发现精子细胞具有广泛的明显染色质双价性,这分别是通过在预先存在的H3K4me3或H3K27me3区域获得H3K27me3或H3K4me3而建立的。这些双价结构域与独特的转录状态相关。精子中体细胞的H3K27me3通常会减少,而仅在约700个发育基因中观察到H3K27me3的显著丢失。组蛋白变体H3.10的掺入有助于建立精子染色质特性,而对体细胞H3K27me3的重置没有强烈影响。营养核在受抑制的基因上含有数千个特定的H3K27me3结构域,而与授粉相关的基因则高度表达并以基因体H3K4me3为标记。我们的工作突出了假定的染色质双价性以及发育调节因子处H3K27me3的受限重置是植物多能精子的关键特征。