National Key Laboratory of Wheat and Maize Crop Science/Collaborative Innovation Center of Henan Grain Crops/College of Agronomy, Henan Agricultural University, Zhengzhou, 450002, P. R. China.
Department of Biological Sciences, Michigan Technological University, Houghton, Michigan, 49931, USA.
Sci Rep. 2019 Feb 26;9(1):2832. doi: 10.1038/s41598-019-39397-7.
MicroRNAs (miRNAs) are a class of non-coding RNAs that play important roles in plant development and abiotic stresses. To date, studies have mainly focused on the roles of individual miRNAs, however, a few have addressed the interactions among multiple miRNAs. In this study, we investigated the interplay and regulatory circuit between miR160 and miR165/166 and its effect on leaf development and drought tolerance in Arabidopsis using Short Tandem Target Mimic (STTM). By crossing STTM160 Arabidopsis with STTM165/166, we successfully generated a double mutant of miR160 and miR165/166. The double mutant plants exhibited a series of compromised phenotypes in leaf development and drought tolerance in comparison to phenotypic alterations in the single STTM lines. RNA-seq and qRT-PCR analyses suggested that the expression levels of auxin and ABA signaling genes in the STTM-directed double mutant were compromised compared to the two single mutants. Our results also suggested that miR160-directed regulation of auxin response factors (ARFs) contribute to leaf development via auxin signaling genes, whereas miR165/166- mediated HD-ZIP IIIs regulation confers drought tolerance through ABA signaling. Our studies further indicated that ARFs and HD-ZIP IIIs may play opposite roles in the regulation of leaf development and drought tolerance that can be further applied to other crops for agronomic traits improvement.
microRNAs (miRNAs) 是一类非编码 RNA,在植物发育和非生物胁迫中发挥重要作用。迄今为止,研究主要集中在单个 miRNAs 的作用上,但是,有一些研究已经解决了多个 miRNAs 之间的相互作用。在这项研究中,我们使用短串联靶标模拟物(STTM)研究了 miR160 和 miR165/166 之间的相互作用和调控回路及其对拟南芥叶片发育和耐旱性的影响。通过将 STTM160 拟南芥与 STTM165/166 杂交,我们成功地生成了 miR160 和 miR165/166 的双突变体。与单突变株的表型改变相比,双突变体植物在叶片发育和耐旱性方面表现出一系列受损表型。RNA-seq 和 qRT-PCR 分析表明,与两个单突变体相比,STTM 指导的双突变体中生长素和 ABA 信号基因的表达水平受到了损害。我们的结果还表明,miR160 指导的生长素反应因子 (ARF) 的调节通过生长素信号基因促进叶片发育,而 miR165/166 介导的 HD-ZIP IIIs 的调节通过 ABA 信号赋予耐旱性。我们的研究进一步表明,ARFs 和 HD-ZIP IIIs 可能在叶片发育和耐旱性的调节中发挥相反的作用,这可以进一步应用于其他作物的农艺性状改良。