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1.
In plants, each pollen mother cell undergoes two rounds of cell divisions to form a mature pollen grain, which contains a vegetative cell(VC) and two sperm cells(SC). As a companion cell, the VC carries the SCs to an ovule by germinating a pollen tube. In-depth sequencing analyses of mature pollen showed that micro RNAs(mi RNAs) and short interfering RNAs(si RNAs) are present in both the VC and SCs. Additionally, epigenetically-regulated transposable elements(TEs) are reactivated in the VC and these TE m RNAs are further processed into 21-nt epigenetically reactivated si RNA(easiR NA) in SCs, which prevent 24-nt si RNA accumulation and sequester mi RNA loading. Small RNAs are thought to move from the VC to SCs, where they regulate gene expression and reinforce TE silencing. Here, we summarize current knowledge of the biogenesis and function of mi RNAs, si RNAs, and easi RNAs in pollen, emphasizing how these different small RNAs coordinately contribute to sperm cell formation and TE silencing.  相似文献   

2.
Nitrate and ammonium are two major nitrogen(N) sources for higher plants,but they differ in utilization and signaling.Micro RNAs(mi RNAs) play an essential role in N signal transduction;however,knowledge remains limited about the regulatory role of mi RNAs responsive to different N sources,especially in crop plants.To get global overview on mi RNAs involved in N response in rice,we performed high-throughput small RNA-sequencing under different nitrate and ammonium treatments.The results demonstrated that only 16 and 11 mi RNAs were significantly induced by nitrate and ammonium under short-term treatment,respectively.However,60 differentially expressed mi RNAs were found between nitrate and ammonium under long-term cultivation.These results suggested that mi RNA response greatly differentiates between nitrate and ammonium treatments.Furthermore,44 mi RNAs were found to be differentially expressed between high-and low-N conditions.Our study reveals comprehensive expression profiling of mi RNAs responsive to different N sources and different N treatments,which advances our understanding on the regulation of different N signaling and homeostasis mediated by mi RNAs.  相似文献   

3.
The role of small RNAs as critical components of global regulatory networks has been highlighted by several recent studies. An important class of such small RNAs is represented by CsrB and CsrC of Escherichia coli, which control the activity of the global regulator CsrA. Given the critical role played by CsrA in several bacterial species, an important problem is the identification of CsrA-regulating small RNAs. In this paper, we develop a computer program (CSRNA_FIND) designed to locate potential CsrA-regulating small RNAs in bacteria. Using CSRNA_FIND to search the genomes of bacteria having homologs of CsrA, we identify all the experimentally known CsrA-regulating small RNAs and also make predictions for several novel small RNAs. We have verified experimentally our predictions for two CsrA-regulating small RNAs in Vibrio fischeri. As more genomes are sequenced, CSRNA_FIND can be used to locate the corresponding small RNAs that regulate CsrA homologs. This work thus opens up several avenues of research in understanding the mode of CsrA regulation through small RNAs in bacteria.  相似文献   

4.
5.
Transcriptome-wide discovery of circular RNAs in Archaea   总被引:3,自引:0,他引:3  
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6.
Role of miRNAs and siRNAs in biotic and abiotic stress responses of plants   总被引:2,自引:0,他引:2  
Small, non-coding RNAs are a distinct class of regulatory RNAs in plants and animals that control a variety of biological processes. In plants, several classes of small RNAs with specific sizes and dedicated functions have evolved through a series of pathways. The major classes of small RNAs include microRNAs (miRNAs) and small interfering RNAs (siRNAs), which differ in their biogenesis. miRNAs control the expression of cognate target genes by binding to reverse complementary sequences, resulting in cleavage or translational inhibition of the target RNAs. siRNAs have a similar structure, function, and biogenesis as miRNAs but are derived from long double-stranded RNAs and can often direct DNA methylation at target sequences. Besides their roles in growth and development and maintenance of genome integrity, small RNAs are also important components in plant stress responses. One way in which plants respond to environmental stress is by modifying their gene expression through the activity of small RNAs. Thus, understanding how small RNAs regulate gene expression will enable researchers to explore the role of small RNAs in biotic and abiotic stress responses. This review focuses on the regulatory roles of plant small RNAs in the adaptive response to stresses. This article is part of a Special Issue entitled: Plant gene regulation in response to abiotic stress.  相似文献   

7.
Non-coding small RNAs (19-24 nucleotide long) have recently been recognized as the important regulator of gene expression in both plants and animals. Several classes of endogenous short RNAs have partial or near perfect complementarity to mRNAs and a protein complex is guided by short RNAs to target mRNAs. The targeted mRNA is either cleaved or its translation is suppressed. Initially, short RNAs were believed to primarily regulate the normal development of plants and animals, but recent advances implicate short RNAs in environmental adaptation.  相似文献   

8.
Increasing evidence suggests that long non-coding RNAs(lnc RNAs) play significant roles in plants.However,little is known about lnc RNAs in Panax ginseng C.A.Meyer,an economically significant medicinal plant species.A total of3,688 m RNA-like non-coding RNAs(mlnc RNAs),a class of lnc RNAs,were identified in P.ginseng.Approximately 40% of the identified mlnc RNAs were processed into small RNAs,implying their regulatory roles via small RNA-mediated mechanisms.Eleven mi RNA-generating mlnc RNAs also produced si RNAs,suggesting the coordinated production of mi RNAs and si RNAs in P.ginseng.The mlnc RNA-derived small RNAs might be 21-,22-,or 24-nt phased and could be generated from both or only one strand of mlnc RNAs,or from super long hairpin structures.A full-length mlnc RNA,termed MAR(multiple-function-associated mlnc RNA),was cloned.It generated the most abundant si RNAs.The MAR si RNAs were Researchpredominantly 24-nt and some of them were distributed in a phased pattern.A total of 228 targets were predicted for 71 MAR si RNAs.Degradome sequencing validated 68 predicted targets involved in diverse metabolic pathways,suggesting the significance of MAR in P.ginseng.Consistently,MAR was detected in all tissues analyzed and responded to methyl jasmonate(Me JA) treatment.It sheds light on the function of mlncRNAs in plants.  相似文献   

9.
Endogenous and silencing-associated small RNAs in plants   总被引:51,自引:0,他引:51       下载免费PDF全文
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10.
Small RNAs regulate gene expression and most genes in the worm Caenorhabditis elegans are subject to their regulation. Here, we analyze small RNA data sets and use reproducible features of RNAs present in multiple data sets to discover a new class of small RNAs and to reveal insights into two known classes of small RNAs—22G RNAs and 26G RNAs. We found that reproducibly detected 22-nt RNAs, although are predominantly RNAs with a G at the 5′ end, also include RNAs with A, C, or U at the 5′ end. These RNAs are synthesized downstream from characteristic sequence motifs on mRNA and have U-tailed derivatives. Analysis of 26G RNAs revealed that they are processed from a blunt end of double-stranded RNAs and that production of one 26G RNA generates a hotspot immediately downstream for production of another. To our surprise, analysis of RNAs shorter than 18 nt revealed a new class of RNAs, which we call NU RNAs (pronounced “new RNAs”) because they have a NU bias at the 5′ end, where N is any nucleotide. NU RNAs are antisense to genes and originate downstream from U bases on mRNA. Although many genes have complementary NU RNAs, their genome-wide distribution is distinct from that of previously known classes of small RNAs. Our results suggest that current approaches underestimate reproducibly detected RNAs that are shorter than 18 nt, and theoretical considerations suggest that such shorter RNAs could be used for sequence-specific gene regulation in organisms like C. elegans that have small genomes.  相似文献   

11.
R Parker 《Genetics》2012,191(3):671-702
All RNA species in yeast cells are subject to turnover. Work over the past 20 years has defined degradation mechanisms for messenger RNAs, transfer RNAs, ribosomal RNAs, and noncoding RNAs. In addition, numerous quality control mechanisms that target aberrant RNAs have been identified. Generally, each decay mechanism contains factors that funnel RNA substrates to abundant exo- and/or endonucleases. Key issues for future work include determining the mechanisms that control the specificity of RNA degradation and how RNA degradation processes interact with translation, RNA transport, and other cellular processes.  相似文献   

12.
真菌小RNA的发生及其作用机制   总被引:1,自引:0,他引:1  
小RNA是真核生物体内一种含量丰富的内源性非编码RNA,通过与其靶m RNA完全或非完全互补结合调控真核生物的基因表达。本文全面综述了真菌中已发现的小RNA种类、小RNA发生相关蛋白因子以及小RNA的具体作用机制,为进一步研究小RNA对真菌生长发育的调控机制提供重要参考。  相似文献   

13.
在植物中发现大量内源性的小RNA,它们与真核生物中的内源性的微RNA和外源性的干扰小RNA有类似的性质和功能。本对植物中小RNA分子的分布、作用机制、功能以及信号传导等方面作一概述。  相似文献   

14.
Xu L  Xu ML 《遗传》2012,34(1):41-49
植物中的小RNA参与多种生物学过程,依据其起源及前体结构的不同主要分为两类:微小RNA(miRNAs)和小干扰RNA(siRNAs),它们的长度通常为21~24个核苷酸,在生物合成途径以及作用机制等方面存在差异。病原物侵染植物后常通过诱导或抑制小RNA分子来调节抗病相关基因的表达,进而调控植物与病原物的互作反应。文章就小RNA的生物合成、作用途径及其在植物与病原物互作中的调控机制等方面进行了综述。  相似文献   

15.
16.
Small RNAs(s RNAs) play essential roles in plants upon biotic stress. Plants utilize RNA silencing machinery to facilitate pathogen-associated molecular pattern-triggered immunity and effector-triggered immunity to defend against pathogen attack or to facilitate defense against insect herbivores. Pathogens, on the other hand, are also able to generate effectors and s RNAs to counter the host immune response. The arms race between plants and pathogens/insect herbivores has triggered the evolution of s RNAs,RNA silencing machinery and pathogen effectors. A great number of studies have been performed to investigate the roles of s RNAs in plant defense, bringing in the opportunity to utilize s RNAs in plant protection. Transgenic plants with pathogen-derived resistance ability or transgenerational defense have been generated, which show promising potential as solutions for pathogen/insect herbivore problems in the field. Here we summarize the recent progress on the function of s RNAs in response to biotic stress, mainly in plant-pathogen/insect herbivore interaction,and the application of s RNAs in disease and insect herbivore control.  相似文献   

17.
18.
Virus specific RNA ribosome complexes were isolated by sucrose density gradient centrifugation of cytoplasmic extracts from HeLa cells infected at 42 C with an RNA(+) mutant (ts2) of Sindbis virus. Viral RNA-ribosome complexes were accumulated by infected cells treated with sodium fluoride and cycloheximide. The RNA-ribosome complexes were characterized by (i) their sensitivity to the action of ribonuclease or ethylenediaminetetraacetic acid, (ii) their density in cesium chloride gradients, and (iii) presence of host ribosomes and viral RNAs. The viral RNAs were isolated and characterized. The results showed that two species of single-stranded RNAs (a 28s and 18 to 15s species) were associated with the complexes. Base composition analysis of the viral RNAs indicated that both species had a higher adenine content than the 42s or 26s forms of viral RNAs. The RNAs associated with the ribosome complexes were virus specific since they annealed with denatured double-stranded RNAs from the infected cells. Little or no 42S RNA was associated with the RNA-ribosome complexes. The results suggest that the 28s and 18 to 15s forms of RNAs may represent viral messenger RNAs.  相似文献   

19.
Endogenous small RNAs and antibacterial immunity in plants   总被引:2,自引:0,他引:2  
Jin H 《FEBS letters》2008,582(18):2679-2684
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20.
Small RNAs in viral infection and host defense   总被引:2,自引:0,他引:2  
Small RNAs are the key mediators of RNA silencing and related pathways in plants and other eukaryotic organisms. Silencing pathways couple the destruction of double-stranded RNA with the use of the resulting small RNAs to target other nucleic acid molecules that contain the complementary sequence. This discovery has revolutionized our ideas about host defense and genetic regulatory mechanisms in eukaryotes. Small RNAs can direct the degradation of mRNAs and single-stranded viral RNAs, the modification of DNA and histones, and the inhibition of translation. Viruses might even use small RNAs to do some targeting of their own to manipulate host gene expression. This review highlights the current understanding and new insights concerning the roles of small RNAs in virus infection and host defense in plants.  相似文献   

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