National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory, Huazhong Agricultural University, Wuhan, 430070, China.
Agricultural Bioinformatics Key Laboratory of Hubei Province and Hubei Engineering Technology Research Center of Agricultural Big Data, 3D Genomics Research Center, Huazhong Agricultural University, Wuhan, 430070, China.
Genome Biol. 2023 Aug 7;24(1):181. doi: 10.1186/s13059-023-03018-4.
Although spatial organization of compartments and topologically associating domains at large scale is relatively well studied, the spatial organization of regulatory elements at fine scale is poorly understood in plants.
Here we perform high-resolution chromatin interaction analysis using paired-end tag sequencing approach. We map chromatin interactions tethered with RNA polymerase II and associated with heterochromatic, transcriptionally active, and Polycomb-repressive histone modifications in Arabidopsis. Analysis of the regulatory repertoire shows that distal active cis-regulatory elements are linked to their target genes through long-range chromatin interactions with increased expression of the target genes, while poised cis-regulatory elements are linked to their target genes through long-range chromatin interactions with depressed expression of the target genes. Furthermore, we demonstrate that transcription factor MYC2 is critical for chromatin spatial organization, and propose that MYC2 occupancy and MYC2-mediated chromatin interactions coordinately facilitate transcription within the framework of 3D chromatin architecture. Analysis of functionally related gene-defined chromatin connectivity networks reveals that genes implicated in flowering-time control are functionally compartmentalized into separate subdomains via their spatial activity in the leaf or shoot apical meristem, linking active mark- or Polycomb-repressive mark-associated chromatin conformation to coordinated gene expression.
The results reveal that the regulation of gene transcription in Arabidopsis is not only by linear juxtaposition, but also by long-range chromatin interactions. Our study uncovers the fine scale genome organization of Arabidopsis and the potential roles of such organization in orchestrating transcription and development.
尽管隔间和拓扑关联域的大尺度空间组织已得到相对较好的研究,但植物中精细尺度调控元件的空间组织仍知之甚少。
在此,我们使用 PE- tag 测序方法进行了高分辨率染色质互作分析。我们在拟南芥中绘制了与 RNA 聚合酶 II 相连并与异染色质、转录活性和 Polycomb 抑制性组蛋白修饰相关的染色质互作。调控元件谱分析表明,远端活性顺式调控元件通过与靶基因的长距离染色质互作而与其靶基因相连,靶基因的表达增加,而静止顺式调控元件通过与靶基因的长距离染色质互作而与其靶基因相连,靶基因的表达受抑。此外,我们证明转录因子 MYC2 对染色质空间组织至关重要,并提出 MYC2 占据和 MYC2 介导的染色质互作共同促进了 3D 染色质结构框架内的转录。对功能相关基因定义的染色质连接网络的分析表明,参与开花时间调控的基因通过其在叶片或茎尖分生组织中的空间活性被功能分区成单独的亚域,将活性标记或 Polycomb 抑制性标记相关的染色质构象与协调的基因表达联系起来。
结果表明,拟南芥基因转录的调控不仅通过线性并列,还通过长距离染色质互作。我们的研究揭示了拟南芥的精细基因组组织及其在协调转录和发育中的潜在作用。