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多梳复合物成分 BMI1 和 H2A 单泛素化通过结合来塑造拟南芥基因组中的局部和长程相互作用。

Binding by the Polycomb complex component BMI1 and H2A monoubiquitination shape local and long-range interactions in the Arabidopsis genome.

机构信息

State Key Laboratory of Protein and Plant Gene Research, School of Advanced Agricultural Sciences, Peking-Tsinghua Center for Life Sciences, Peking University, Beijing 100871, China.

Institute of Plant Biochemistry and Photosynthesis (IBVF-CSIC), Avenida Américo Vespucio 49, 41092 Seville, Spain.

出版信息

Plant Cell. 2023 Jun 26;35(7):2484-2503. doi: 10.1093/plcell/koad112.

Abstract

Three-dimensional (3D) chromatin organization is highly dynamic during development and seems to play a crucial role in regulating gene expression. Self-interacting domains, commonly called topologically associating domains (TADs) or compartment domains (CDs), have been proposed as the basic structural units of chromatin organization. Surprisingly, although these units have been found in several plant species, they escaped detection in Arabidopsis (Arabidopsis thaliana). Here, we show that the Arabidopsis genome is partitioned into contiguous CDs with different epigenetic features, which are required to maintain appropriate intra-CD and long-range interactions. Consistent with this notion, the histone-modifying Polycomb group machinery is involved in 3D chromatin organization. Yet, while it is clear that Polycomb repressive complex 2 (PRC2)-mediated trimethylation of histone H3 on lysine 27 (H3K27me3) helps establish local and long-range chromatin interactions in plants, the implications of PRC1-mediated histone H2A monoubiquitination on lysine 121 (H2AK121ub) are unclear. We found that PRC1, together with PRC2, maintains intra-CD interactions, but it also hinders the formation of H3K4me3-enriched local chromatin loops when acting independently of PRC2. Moreover, the loss of PRC1 or PRC2 activity differentially affects long-range chromatin interactions, and these 3D changes differentially affect gene expression. Our results suggest that H2AK121ub helps prevent the formation of transposable element/H3K27me1-rich long loops and serves as a docking point for H3K27me3 incorporation.

摘要

三维(3D)染色质组织在发育过程中高度动态,似乎在调节基因表达中发挥着关键作用。自相互作用结构域,通常称为拓扑关联结构域(TAD)或隔室结构域(CD),被认为是染色质组织的基本结构单元。令人惊讶的是,尽管这些结构域在几种植物物种中被发现,但在拟南芥(Arabidopsis thaliana)中却未被检测到。在这里,我们展示了拟南芥基因组被分成具有不同表观遗传特征的连续 CD,这些 CD 对于维持适当的 CD 内和长距离相互作用是必需的。与这一观点一致,组蛋白修饰的 Polycomb 组蛋白机器参与了 3D 染色质组织。然而,尽管很明显,多梳抑制复合物 2(PRC2)介导的组蛋白 H3 赖氨酸 27 三甲基化(H3K27me3)有助于在植物中建立局部和长距离染色质相互作用,但 PRC1 介导的组蛋白 H2A 单泛素化赖氨酸 121(H2AK121ub)的影响尚不清楚。我们发现,PRC1 与 PRC2 一起维持 CD 内相互作用,但当独立于 PRC2 时,它也会阻碍富含 H3K4me3 的局部染色质环的形成。此外,PRC1 或 PRC2 活性的丧失会以不同的方式影响长距离染色质相互作用,这些 3D 变化以不同的方式影响基因表达。我们的结果表明,H2AK121ub 有助于防止转座元件/H3K27me1 丰富的长环的形成,并作为 H3K27me3 掺入的停靠点。

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