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冷应激在……中诱导H3K4me3和H3K27me3水平发生快速的基因特异性变化。

Cold stress induces rapid gene-specific changes in the levels of H3K4me3 and H3K27me3 in .

作者信息

Faivre Léa, Kinscher Nathalie-Francesca, Kuhlmann Ana Belén, Xu Xiaocai, Kaufmann Kerstin, Schubert Daniel

机构信息

Epigenetics of Plants, Freie Universität Berlin, Berlin, Germany.

Department for Plant Cell and Molecular Biology, Institute for Biology, Humboldt-Universität zu Berlin, Berlin, Germany.

出版信息

Front Plant Sci. 2024 Apr 15;15:1390144. doi: 10.3389/fpls.2024.1390144. eCollection 2024.

Abstract

When exposed to low temperatures, plants undergo a drastic reprogramming of their transcriptome in order to adapt to their new environmental conditions, which primes them for potential freezing temperatures. While the involvement of transcription factors in this process, termed cold acclimation, has been deeply investigated, the potential contribution of chromatin regulation remains largely unclear. A large proportion of cold-inducible genes carries the repressive mark histone 3 lysine 27 trimethylation (H3K27me3), which has been hypothesized as maintaining them in a silenced state in the absence of stress, but which would need to be removed or counteracted upon stress perception. However, the fate of H3K27me3 during cold exposure has not been studied genome-wide. In this study, we offer an epigenome profiling of H3K27me3 and its antagonistic active mark H3K4me3 during short-term cold exposure. Both chromatin marks undergo rapid redistribution upon cold exposure, however, the gene sets undergoing H3K4me3 or H3K27me3 differential methylation are distinct, refuting the simplistic idea that gene activation relies on a switch from an H3K27me3 repressed chromatin to an active form enriched in H3K4me3. Coupling the ChIP-seq experiments with transcriptome profiling reveals that differential histone methylation only weakly correlates with changes in expression. Interestingly, only a subset of cold-regulated genes lose H3K27me3 during their induction, indicating that H3K27me3 is not an obstacle to transcriptional activation. In the H3K27me3 methyltransferase mutant, many cold regulated genes display reduced H3K27me3 levels but their transcriptional activity is not altered prior or during a cold exposure, suggesting that H3K27me3 may serve a more intricate role in the cold response than simply repressing the cold-inducible genes in naïve conditions.

摘要

当暴露于低温环境时,植物会对其转录组进行剧烈的重编程,以适应新的环境条件,从而为潜在的冰点温度做好准备。虽然转录因子在这一称为冷驯化的过程中的作用已得到深入研究,但染色质调控的潜在贡献仍 largely 不清楚。很大一部分冷诱导基因携带抑制性标记组蛋白 3 赖氨酸 27 三甲基化(H3K27me3),据推测,在没有压力的情况下,该标记会使这些基因保持沉默状态,但在感知到压力时,该标记需要被去除或抵消。然而,冷暴露期间 H3K27me3 的命运尚未在全基因组范围内进行研究。在本研究中,我们提供了短期冷暴露期间 H3K27me3 及其拮抗活性标记 H3K4me3 的表观基因组图谱。冷暴露后,这两种染色质标记都会迅速重新分布,然而,经历 H3K4me3 或 H3K27me3 差异甲基化的基因集是不同的,这驳斥了基因激活依赖于从 H3K27me3 抑制的染色质转变为富含 H3K4me3 的活性形式这一简单观点。将染色质免疫沉淀测序(ChIP-seq)实验与转录组分析相结合发现,组蛋白甲基化差异与表达变化之间的相关性较弱。有趣的是,只有一部分冷调控基因在诱导过程中会失去 H3K27me3,这表明 H3K27me3 并非转录激活的障碍。在 H3K27me3 甲基转移酶突变体中,许多冷调控基因的 H3K27me3 水平降低,但在冷暴露之前或期间它们的转录活性并未改变,这表明 H3K27me3 在冷响应中的作用可能比单纯在初始条件下抑制冷诱导基因更为复杂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3ff/11056581/5ee7457215b4/fpls-15-1390144-g001.jpg

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