Xiao Mu, Wang Jinbiao, Xu Fang
The Key Laboratory of Plant Development and Environmental Adaptation Biology, Ministry of Education, School of Life Sciences, Shandong University, Qingdao, China.
Front Plant Sci. 2022 Aug 10;13:967607. doi: 10.3389/fpls.2022.967607. eCollection 2022.
Plants dynamically manipulate their gene expression in acclimation to the challenging environment. Hereinto, the histone methylation tunes the gene transcription modulation of the chromatin accessibility to transcription machinery. Osmotic stress, which is caused by water deprivation or high concentration of ions, can trigger remarkable changes in histone methylation landscape and genome-wide reprogramming of transcription. However, the dynamic regulation of genes, especially how stress-inducible genes are timely epi-regulated by histone methylation remains largely unclear. In this review, recent findings on the interaction between histone (de)methylation and osmotic stress were summarized, with emphasis on the effects on histone methylation profiles imposed by stress and how histone methylation works to optimize the performance of plants under stress.
植物在适应具有挑战性的环境时会动态地调控其基因表达。其中,组蛋白甲基化可调节染色质对转录机制的可及性从而调控基因转录。由缺水或高离子浓度引起的渗透胁迫可引发组蛋白甲基化格局的显著变化以及全基因组范围内的转录重编程。然而,基因的动态调控,尤其是应激诱导基因如何通过组蛋白甲基化进行适时的表观调控,仍 largely不清楚。在本综述中,总结了关于组蛋白(去)甲基化与渗透胁迫之间相互作用的最新研究发现,重点关注胁迫对组蛋白甲基化谱的影响以及组蛋白甲基化如何在胁迫下优化植物的性能。