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cis- and trans-Regulation of miR163 and Target Genes Confers Natural Variation of Secondary Metabolites in Two Arabidopsis Species and Their Allopolyploids

机译:miR163和靶基因的顺式和反式调节赋予两个拟南芥属及其同素多倍体次生代谢产物天然变异。

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摘要

MicroRNAs (miRNAs) play essential roles in plant and animal development, but the cause and effect of miRNA expression divergence between closely related species and in interspecific hybrids or allopolyploids are unknown. Here, we show differential regulation of a miR163-mediated pathway in allotetraploids and their progenitors, Arabidopsis thaliana and Arabidopsis arenosa. miR163 is a recently evolved miRNA in A. thaliana and highly expressed in A. thaliana, but its expression was undetectable in A. arenosa and repressed in resynthesized allotetraploids. Repression of A. arenosa MIR163 (Aa MIR163) is caused by a weak cis-acting promoter and putative trans-acting repressor(s) present in A. arenosa and allotetraploids. Moreover, ectopic Aa MIR163 precursors were processed more efficiently in A. thaliana than in resynthesized allotetraploids, suggesting a role of posttranscriptional regulation in mature miR163 abundance. Target genes of miR163 encode a family of small molecule methyltransferases involved in secondary metabolite biosynthetic pathways that are inducible by a fungal elicitor, alamethicin. Loss of miR163 or overexpression of miR163 in mir163 mutant plants alters target transcript and secondary metabolite profiles. We suggest that cis- and trans-regulation of miRNA and other genes provides a molecular basis for natural variation of biochemical and metabolic pathways that are important to growth vigor and stress responses in Arabidopsis-related species and allopolyploids.
机译:微小RNA(miRNA)在动植物的发育中起着至关重要的作用,但是在密切相关的物种之间以及种间杂种或同种多倍体中miRNA表达差异的原因和影响尚不清楚。在这里,我们显示了异源四倍体及其祖先拟南芥和拟南芥中miR163介导的途径的差异调节。 miR163是拟南芥中最近进化的miRNA,在拟南芥中高度表达,但其表达在槟榔中不可检测,并在重新合成的异源四倍体中被抑制。砂仁曲霉MIR163(Aa MIR163)的抑制是由砂仁曲霉和异源四倍体中存在的弱顺式作用启动子和推定的反式作用阻遏物引起的。此外,异位Aa MIR163前体在拟南芥中比在重新合成的异源四倍体中更有效地加工,表明转录后调控在成熟miR163丰度中的作用。 miR163的靶基因编码一个家族的小分子甲基转移酶,该家族参与次级代谢物的生物合成途径,该途径可被真菌激发子丙乐霉素诱导。 mir163突变植物中miR163的缺失或miR163的过表达会改变目标转录本和次级代谢产物谱。我们建议,miRNA和其他基因的顺式和反式调节为生物化学和代谢途径的自然变化提供了分子基础,这对于拟南芥相关物种和同种多倍体的生长活力和应激反应很重要。

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