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The first step in microRNA (miRNA) biogenesis usually involves cleavage at the base of its fold‐back precursor. Here, we describe a non‐canonical processing mechanism for miRNAs miR319 and miR159 in Arabidopsis thaliana. We found that their biogenesis begins with the cleavage of the loop, instead of the usual cut at the base of the stem–loop structure. DICER‐LIKE 1 (DCL1) proceeds then with three additional cuts until the mature miRNA is released. We further show that the conserved upper stem of the miR319 precursor is essential to organize its biogenesis, whereas sequences below the miRNA/miRNA* region are dispensable. In addition, the bulges present in the fold‐back structure reduce the accumulation of small RNAs other than the miRNA. The biogenesis of miR319 is conserved in the moss Physcomitrella patens, showing that this processing mechanism is ancient. These results provide new insights into the plasticity of small‐RNA pathways.  相似文献   

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Plant microRNAs originate from a stem-loop structured single-stranded RNA precursor. Each stem-loop is processed to generate a mature microRNA that is recruited to an ARGONAUTE-containing multi-protein complex to direct silencing of its target mRNA. Here we report that the conserved plant miR159a precursor produces a second 21-nt long RNA with the properties of a microRNA. Its presence in different plant species is supported by its conservation in the stem-loop position and expression as determined by northern blot analysis. We show that successive processing by DCL1 produces this novel microRNA from the same precursor as miR159a. In contrast to the low levels observed in other plant models for the equivalent of miR159.2, in P. vulgaris, the accumulation of miR159.2 is easily detectable and when compared to miR159a, their expression patterns are distinct in different organs and growth conditions. Further evidence of the functionality of miR159.2 comes from its association with silencing complexes as demonstrated by co-immunoprecipitation experiments using an AGO1-specific antibody and processing of an artificial GFP reporter construct containing a complementary target sequence. These results indicate that the second small RNA corresponds to a microRNA, at least partially independent of miR159 activity, and that in plants a miRNA precursor may encode multiple regulatory small RNAs.  相似文献   

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MicroRNA(miRNA)是一类由内源基因编码的长度为21~23nt的非编码单链小RNA分子,通过与靶基因的互补位点结合而降解或抑制靶mRNA的翻译,从而在转录后水平上调控基因的活性。miRNA在调控植物发育方面发挥着广泛的作用。从成花诱导到花器官特征属性的形成,miRNA在整个花发育过程均发挥着关键作用。miRl72和miRl56/157参与由营养生长向生殖生长转换的调控,miRl72和miRl69在花发育的早期阶段通过界定靶基因的表达区域而调控花器官的属性,miR319、miRl59、miRl64以及miRl67在花发育的晚期阶段决定细胞的特化。文章综述了miRNA调控被子植物花发育的研究进展,为深入了解miRNA的作用机制奠定基础。  相似文献   

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In plants, the silencing efficacy of microRNAs (miRNAs) is thought to be predominantly determined by the degree of complementarity to their target genes. Here, silencing efficacy was determined for Arabidopsis miR159 and four artificial miRNAs (amiRNAs) that all target MYB33/MYB65 with analogous complementarities. As determined through complementation of a loss-of-function mir159 mutant, the amiRNAs displayed highly variable efficacies, none of which was as strong as endogenous miR159. This was despite amiRNA expression levels being many fold-higher than miR159 in wild-type. The results highlight the variable nature of miRNA silencing efficacy in plants, where it appears that factors additional to complementarity strongly impact silencing.  相似文献   

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Hikosaka A  Takaya K  Jinno M  Kawahara A 《FEBS letters》2007,581(16):3013-3018
Small RNAs (miR159-like RNAs) identical to some plant miR159s were found in Xenopus tropicalis miRNA cDNA libraries (30 miRNA families consisting of 75 unique sequences). Preferential expression of this RNA species was found in neural tissues during development. A sequence matching to this RNA species was not found in the 21 available animal's genome databases, but its resembling sequences associated with transposons were found in the X. tropicalis database. A possibility of horizontal transfer of the miR159 genes from plants will be discussed. Expression profiles of other miRNA species at metamorphosis were shown by DNA array and/or Northern hybridization.  相似文献   

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