生物
脱落酸
小RNA
小RNA
小干扰RNA
细胞生物学
心理压抑
基因沉默
掷骰子
RNA干扰
非生物胁迫
核糖核酸
RNA沉默
拟南芥
染色质
遗传学
基因表达
基因
突变体
作者
Yubin Yan,Yuman Zhang,Kun Yang,Zongxiu Sun,Yaping Fu,Xiaoying Chen,Rongxiang Fang
出处
期刊:Plant Journal
[Wiley]
日期:2011-01-19
卷期号:65 (5): 820-828
被引量:85
标识
DOI:10.1111/j.1365-313x.2010.04467.x
摘要
Summary Small silencing RNAs (sRNAs) are non‐coding RNA regulators that negatively regulate gene expression by guiding mRNA degradation, translation repression or chromatin modification. Plant sRNAs play crucial roles in various developmental processes, hormone signaling, immune responses and adaptation to a variety of abiotic stresses. miR441 and miR446 were previously annotated as microRNAs (miRNAs) because their precursors can form typical stem‐loop structures, but are not considered as real miRNAs because of inconsistency with some ancillary criteria of the recent guidelines for annotation of plant miRNAs. We tentatively rename them small interfering (si)R441 and siR446, respectively, in this study. It has recently been shown that the precursors of siR441 and siR446 might originate from the miniature inverted‐repeat transposable element (MITE) Stowaway1. In this report, we show that, in contrast with Dicer‐like (DCL)3‐ and RNA‐dependent RNA polymerase (RDR)2‐dependent MITE‐derived ra‐siRNAs, siR441 and siR446 are processed by Os DCL3a but independent of Os RDR2, indicating that siR441 and siR446 are generated from single‐stranded stem‐loop precursors. We also show that abscisic acid (ABA) and abiotic stresses downregulate the expression of siR441 and siR446 but, surprisingly, increase the accumulation of their precursors in rice plants, implying that processing of siRNA precursors is inhibited. We provide evidence to show that this defective processing is due to increased precursor accumulation per se , possibly by intermolecular self‐pairing of the processing intermediate sequences, thus hindering their normal processing. Functional examinations indicate that siR441 and siR446 are positive regulators of rice ABA signaling and tolerance to abiotic stress, possibly by regulating MAIF1 expression.
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