Agricultural Biotechnology Research Center, Academia Sinica, Taipei, 115, Taiwan.
Department of Agronomy, National Taiwan University, Taipei, 106, Taiwan.
New Phytol. 2018 Mar;217(4):1712-1725. doi: 10.1111/nph.14938. Epub 2017 Dec 5.
Unlike most ancient microRNAs, which conservatively target homologous genes across species, microRNA827 (miR827) targets two different types of SPX (SYG1/PHO81/XPR1)-domain-containing genes, NITROGEN LIMITATION ADAPTATION (NLA) and PHOSPHATE TRANSPORTER 5 (PHT5), in Arabidopsis thaliana and Oryza sativa to regulate phosphate (Pi) transport and storage, respectively. However, how miR827 shifted its target preference and its evolutionary history are unknown. Based on target prediction analysis, we found that in most angiosperms, miR827 conservatively targets PHT5 homologs, but in Brassicaceae and Cleomaceae it preferentially targets NLA homologs, and we provide evidence for the transition of target preference during Brassicales evolution. Intriguingly, we found a lineage-specific loss of the miR827-regulatory module in legumes. Analysis of miR827-mediated cleavage efficiency and the expression of PHT5 in A. thaliana indicated that accumulation of mutations in the target site and the exclusion of the target site by alternative transcriptional initiation eliminated PHT5 targeting by miR827. Here, we identified a transition of miR827 target preference during plant evolution and revealed the uniqueness of miR827-mediated regulation among conserved plant miRNAs. Despite the change in its target preference, upregulation of miR827 by Pi starvation and its role in regulating cellular Pi homeostasis were retained.
与大多数在物种间保守靶向同源基因的古老 microRNA 不同,microRNA827(miR827)靶向两种不同类型的 SPX(SYG1/PHO81/XPR1)-结构域包含基因,氮限制适应(NLA)和磷酸盐转运体 5(PHT5),分别在拟南芥和水稻中调节磷酸盐(Pi)运输和储存。然而,miR827 如何改变其靶标偏好及其进化历史尚不清楚。基于靶标预测分析,我们发现,在大多数被子植物中,miR827 保守靶向 PHT5 同源物,但在十字花科和白花菜科中,它优先靶向 NLA 同源物,我们提供了 Brassicales 进化过程中靶标偏好转变的证据。有趣的是,我们发现豆科植物中存在 miR827 调控模块的谱系特异性缺失。对 miR827 介导的切割效率和 A. thaliana 中 PHT5 的表达分析表明,靶位点的积累突变和替代转录起始排除了 miR827 对 PHT5 的靶向。在这里,我们确定了 miR827 靶标偏好在植物进化过程中的转变,并揭示了 miR827 介导的调节在保守植物 microRNA 中的独特性。尽管靶标偏好发生了变化,但 Pi 饥饿对 miR827 的上调及其在调节细胞 Pi 稳态中的作用得以保留。