MicroRNA分析揭示了两个拮抗调节拟南芥木质部管状元件发育的模块

Chunhao Liu, An Li, Zhonglong Guo, Ningcong Chen, Yin Wang, Wenxiong Tang, Yuexin Wu, Jingyi Liu, Zihao Wang, Lei Li, Xin-Qiang He
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摘要

气管元素(TEs)在各种物质的运输和植物生长中起着至关重要的作用。TEs的分化是复杂的,受多种microrna (mirna)的调控。然而,在TE分化的各个阶段,miRNA的动态变化尚不清楚,miRNA调控网络尚不完整。本研究利用拟南芥叶片维管细胞诱导培养系统(VISUAL)对拟南芥(Arabidopsis thaliana) TE分化过程中的miRNome进行了分析,建立了在TE分化不同阶段发挥作用的miRNA共表达网络。miRNA网络中存在两个负相关模块,每个模块都表现出很强的模块内正相关和很强的模块间负相关。因此,这两个模块可能在TE分化和血管发育中发挥相反的作用。事实上,我们发现miR408促进形成层形成和TE分化,这与miR408作为命运决定网络和TE分化起始的关键节点相一致。此外,我们发现miR163抑制次级细胞壁形成和TE分化,对应于miR163作为TE成熟网络的关键节点。此外,我们发现杨树(Populus tomentosa)木质部发育中的miRNA共表达网络也由两个负相关的模块组成,这些模块含有与拟南芥同源的miRNA。因此,miRNA共表达网络的两个负相关模块可能是保守的,并且是木质部TE分化的基础。这些结果为研究microRNA在植物发育中的调控提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MicroRNA analysis reveals two modules that antagonistically regulate xylem tracheary element development in Arabidopsis
Tracheary elements (TEs) are vital in the transport of various substances and contribute to plant growth. The differentiation of TEs is complex and regulated by a variety of microRNAs (miRNAs). However, the dynamic changes in miRNAs during each stage of TE differentiation remain unclear, and the miRNA regulatory network is not yet complete. This study employed Vascular cell Induction culture System Using Arabidopsis Leaves (VISUAL) to profile the miRNome during TE differentiation in Arabidopsis (Arabidopsis thaliana) and established comprehensive miRNA co-expression networks functioning at the different stages of TE differentiation. Two negatively correlated modules exist in the miRNA networks, each exhibiting strong intra-module positive correlation and strong inter-module negative correlation. Thus, the two modules may play opposite roles in TE differentiation and vascular development. Indeed, we found that miR408 promotes cambium formation and TE differentiation, consistent with miR408 as a key node in the networks of fate determination and the initiation of TE differentiation. Additionally, we found that miR163 inhibits secondary cell wall formation and TE differentiation, corresponding to miR163 as a key node in the TE maturation network. Moreover, we discovered that the miRNA co-expression network in poplar (Populus tomentosa) xylem development is also composed of two negatively correlated modules that contain miRNAs orthologous to those in Arabidopsis. Therefore, the two negatively correlated modules of the miRNA co-expression network are likely conserved and fundamental to xylem TE differentiation. These results provide insights into microRNA regulation in plant development.
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