State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, the Chinese Academy of Sciences, Beijing 100093, P. R. China.
University of Chinese Academy of Sciences, the Chinese Academy of Sciences, Beijing 100049, P. R. China.
J Exp Bot. 2023 Mar 28;74(6):2005-2015. doi: 10.1093/jxb/erac517.
Emerging evidence reveals that the three-dimensional (3D) chromatin architecture plays a key regulatory role in various biological processes of plants. However, information on the 3D chromatin architecture of the legume model plant Medicago truncatula and its potential roles in the regulation of response to mineral nutrient deficiency are very limited. Using high-resolution chromosome conformation capture sequencing, we identified the 3D genome structure of M. truncatula in terms of A/B compartments, topologically associated domains (TADs) and chromatin loops. The gene density, expressional level, and active histone modification were higher in A compartments than in B compartments. Moreover, we analysed the 3D chromatin architecture reorganization in response to phosphorus (P) deficiency. The intra-chromosomal cis-interaction proportion was increased by P deficiency, and a total of 748 A/B compartment switch regions were detected. In these regions, density changes in H3K4me3 and H3K27ac modifications were associated with expression of P deficiency-responsive genes involved in root system architecture and hormonal responses. Furthermore, these genes enhanced P uptake and mobilization by increasing root surface area and strengthening signal transduction under P deficiency. These findings advance our understanding of the potential roles of 3D chromatin architecture in responses of plants in general, and in particular in M. truncatula, to P deficiency.
新兴证据表明,三维(3D)染色质结构在植物的各种生物学过程中发挥着关键的调控作用。然而,关于豆科模式植物蒺藜苜蓿的 3D 染色质结构及其在调节对矿质养分缺乏的反应中的潜在作用的信息非常有限。我们使用高分辨率染色体构象捕获测序,从 A/B 区室、拓扑关联域(TAD)和染色质环等方面鉴定了 M. truncatula 的 3D 基因组结构。A 区室的基因密度、表达水平和活性组蛋白修饰均高于 B 区室。此外,我们分析了磷(P)缺乏响应下的 3D 染色质结构重排。P 缺乏导致染色体内顺式相互作用比例增加,共检测到 748 个 A/B 区室转换区。在这些区域中,H3K4me3 和 H3K27ac 修饰的密度变化与根系统结构和激素反应中涉及 P 缺乏反应基因的表达相关。此外,这些基因通过增加根表面积和加强信号转导,增强了 P 的吸收和动员,从而在 P 缺乏时增强了 P 的吸收和动员。这些发现增进了我们对 3D 染色质结构在植物响应 P 缺乏中的潜在作用的理解,特别是在 M. truncatula 中的作用。