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microRNA(miRNA)参与植物多种生理代谢过程,在调控植物形态建成中发挥着重要作用。miR164作为植物特有的miRNA,其主要的靶基因是NAC转录因子,参与调控植物茎、叶顶端分生组织的建立、器官的分化和植株衰老等过程。本研究以毛竹(Phyllostachys edulis(Carr.) Lehaie)为材料,从中分离出miR164b的前体序列(82 bp),二级结构分析结果发现该前体序列能够形成稳定的茎环结构,其成熟序列(21 bp)产生于茎环结构5'端的臂上,且碱基具有较高的保守性。本研究还构建了由CaMV 35S启动,包含毛竹miR164b前体序列的植物表达载体,并转化野生型拟南芥(Arabidopsis thaliana(L.) Heynh),获得了转基因植株。结果表明,转基因植株生长瘦弱,莲座叶数量明显减少,叶片变小且叶片边缘锯齿减少,更加光滑。实时定量PCR分析结果显示,转基因拟南芥中毛竹miR164b的表达量极显著上升,而拟南芥内源靶基因CUC1与CUC2的表达量极显著下降。表明毛竹miR164b通过调节CUC1和CUC2的表达来参与植物叶形态建成过程。研究结果可为利用miRNA开展竹子分子育种提供参考。  相似文献   

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Guo HS  Xie Q  Fei JF  Chua NH 《The Plant cell》2005,17(5):1376-1386
Although several plant microRNAs (miRNAs) have been shown to play a role in plant development, no phenotype has yet been associated with a reduction or loss of expression of any plant miRNA. Arabidopsis thaliana miR164 was predicted to target five NAM/ATAF/CUC (NAC) domain-encoding mRNAs, including NAC1, which transduces auxin signals for lateral root emergence. Here, we show that miR164 guides the cleavage of endogenous and transgenic NAC1 mRNA, producing 3'-specific fragments. Cleavage was blocked by NAC1 mutations that disrupt base pairing with miR164. Compared with wild-type plants, Arabidopsis mir164a and mir164b mutant plants expressed less miR164 and more NAC1 mRNA and produced more lateral roots. These mutant phenotypes can be complemented by expression of the appropriate MIR164a and MIR164b genomic sequences. By contrast, inducible expression of miR164 in wild-type plants led to decreased NAC1 mRNA levels and reduced lateral root emergence. Auxin induction of miR164 was mirrored by an increase in the NAC1 mRNA 3' fragment, which was not observed in the auxin-insensitive mutants auxin resistant1 (axr1-12), axr2-1, and transport inhibitor response1. Moreover, the cleavage-resistant form of NAC1 mRNA was unaffected by auxin treatment. Our results indicate that auxin induction of miR164 provides a homeostatic mechanism to clear NAC1 mRNA to downregulate auxin signals.  相似文献   

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吴骏  张俊红  黄蒙慧  朱敏慧  童再康 《遗传》2016,38(2):155-162
氮是植物生长发育所必需的大量营养元素,植物缺氮后严重影响地上部分生物量的积累,因此,揭示植物如何抵抗或适应低氮胁迫的分子机制具有重要意义。杨树(Populus tremula × P. alba)NAC1(NAM, ATAF, CUC 1)基因位于调控网络上游,在低氮环境下调控下游关键基因的表达,进而调控根系生长以抵抗低氮胁迫。本文以光皮桦(Betula luminifera)G49-3无性系组培苗为材料,探讨了miR164及其靶基因NAC1对低氮胁迫的响应。通过RACE技术克隆了光皮桦NAC1基因(GenBank登录号:KT900889),全长1497 bp,编码358个氨基酸,N端具有高度保守的NAM结构域;运用5′-RACE验证了NAC1为miR164靶基因,切割位点在第10和11位碱基之间;采用qRT-PCR分析miR164与靶基因NAC1在低氮胁迫时的表达模式,发现miR164表达在根中的低氮处理前期(4 d)受到抑制,而后升高,而茎叶中表达模式与根不同;靶基因NAC1与miR164表达水平呈负相关,且在恢复实验组(重新添加全营养液)中,根中miR164表达上升,NAC1显示出相应的表达变化,暗示miR164及其靶基因NAC1可能在低氮胁迫响应中发挥调控功能。本研究结果有助于揭示miR164对NAC1在低氮胁迫响应中转录后水平的分子调控机制,为进一步研究miR164-NAC1在低氮胁迫响应中的功能提供有价值的信息。  相似文献   

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The phytohormone auxin plays a critical role in plant development, including embryogenesis, organogenesis, tropism, apical dominance and in cell growth, division, and expansion. In these processes, the concentration gradient of auxin, which is established by polar auxin transport mediated by PIN-FORMED (PIN) proteins and several ATP-binding cassette/multi-drug resistance/P-glycoprotein (ABCB/MDR/PGP) transporters, is a crucial signal. Here, we characterized the function of ABCB19 in the control of Arabidopsis organ boundary development. We identified a new abcb19 allele, abcb19-5, which showed stem-cauline leaf and stem-pedicel fusion defects. By virtue of the DII-VENUS marker, the auxin level was found to be increased at the organ boundary region in the inflorescence apex. The expression of CUP-SHAPED COTYLEDON2 (CUC2) was decreased, while no obvious change in the expression of CUC3 was observed, in abcb19. In addition, the fusion defects were greatly enhanced in cuc3 abcb19-5, which was reminiscent of cuc2 cuc3. We also found that some other organ boundary genes, such as LOF1/2 were down-regulated in abcb19. Together, these results reveal a new aspect of auxin transporter ABCB19 function, which is largely dependent on the positive regulation of organ boundary genes CUC2 and LOFs at the postembryonic organ boundary.  相似文献   

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CUP-SHAPED COTYLEDON2 (CUC2) and the interacting microRNA miR164 regulate leaf margin dissection. Here, we further investigate the evolution and the specific roles of the CUC1 to CUC3 genes during Arabidopsis thaliana leaf serration. We show that CUC2 is essential for dissecting the leaves of a wide range of lobed/serrated Arabidopsis lines. Inactivation of CUC3 leads to a partial suppression of the serrations, indicating a role for this gene in leaf shaping. Morphometric analysis of leaf development and genetic analysis provide evidence for different temporal contributions of CUC2 and CUC3. Chimeric constructs mixing CUC regulatory sequences with different coding sequences reveal both redundant and specific roles for the three CUC genes that could be traced back to changes in their expression pattern or protein activity. In particular, we show that CUC1 triggers the formation of leaflets when ectopically expressed instead of CUC2 in the developing leaves. These divergent fates of the CUC1 and CUC2 genes after their formation by the duplication of a common ancestor is consistent with the signature of positive selection detected on the ancestral branch to CUC1. Combining experimental observations with the retraced origin of the CUC genes in the Brassicales, we propose an evolutionary scenario for the CUC genes.  相似文献   

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