Imran Muhammad, Liu Tengfei, Wang Zheng, Wang Min, Liu Shulin, Gao Xinyan, Wang Anning, Liu Songfeng, Tian Zhixi, Zhang Min
State Key Laboratory of Plant Cell and Chromosome Engineering, Institute of Genetics and Developmental Biology, Innovative Academy for Seed Design, Chinese Academy of Sciences, Beijing, China.
Beijing Vegetable Research Center (BVRC), Beijing Academy of Agriculture and Forestry Sciences (BAAFS), Beijing, China.
Front Plant Sci. 2022 Jun 2;13:905264. doi: 10.3389/fpls.2022.905264. eCollection 2022.
MicroRNAs (miRNAs) are 20- to 24-nucleotide small RNAs, and whenever a pri-miRNA precursor includes another miRNA precursor, and both of these precursors may generate independent non overlapping mature miRNAs, we called them nested miRNAs. However, the functional and regulatory roles of nested miRNA structures in plants are still unknown. In this study, the nested miR159a structure, which consists of two nested miRNAs, miR159a.1, and miR159a.2, was used as a model to determine miRNA-mediated gene silencing in plants. Complementation analysis of nested miR159a structures revealed that the miR159a structure can differentially complement the phenotype, and a duplex nested structure in the tail end region of the pre-miR159a fold back may have a possible dominant function, indicating the importance of the flanking sequence of the stem in the cleavage of the mature miRNA. Furthermore, continuously higher expression of the miR159a.2 duplex in the severe leaf curl phenotype indicates that miR159a.2 is functional in and suggests that in plants, a miRNA precursor may encode multiple regulatory small RNAs. Taken together, our study demonstrates that the nested miR159a structure regulated by duplex mutations of miR159a has a unique pattern and provides novel insight into silencing efficacy of miR159a.
微小RNA(miRNA)是20至24个核苷酸的小RNA,当一个初级miRNA前体包含另一个miRNA前体,且这两个前体都能产生独立的、不重叠的成熟miRNA时,我们称它们为嵌套miRNA。然而,嵌套miRNA结构在植物中的功能和调控作用仍不清楚。在本研究中,由两个嵌套miRNA,即miR159a.1和miR159a.2组成的嵌套miR159a结构被用作模型,以确定植物中miRNA介导的基因沉默。对嵌套miR159a结构的互补分析表明,miR159a结构能够差异化地互补表型,并且前体miR159a回折末端区域的双链嵌套结构可能具有潜在的主导功能,这表明茎侧翼序列在成熟miRNA切割中的重要性。此外,在严重卷叶表型中miR159a.2双链体持续较高的表达表明miR159a.2具有功能,这表明在植物中,一个miRNA前体可能编码多个调控性小RNA。综上所述,我们的研究表明,由miR159a双链突变调控的嵌套miR159a结构具有独特模式,并为miR159a的沉默效率提供了新的见解。