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1.
Noncoding RNAs play essential roles in genetic regulation in all organisms. In eukaryotic cells, many small non-coding RNAs act in complex with Argonaute proteins and regulate gene expression by recognizing complementary RNA targets. The complexes of Argonaute proteins with small RNAs also play a key role in silencing of mobile genetic elements and, in some cases, viruses. These processes are collectively called RNA interference. RNA interference is a powerful tool for specific gene silencing in both basic research and therapeutic applications. Argonaute proteins are also found in prokaryotic organisms. Recent studies have shown that prokaryotic Argonautes can also cleave their target nucleic acids, in particular DNA. This activity of prokaryotic Argonautes might potentially be used to edit eukaryotic genomes. However, the molecular mechanisms of small nucleic acid biogenesis and the functions of Argonaute proteins, in particular in bacteria and archaea, remain largely unknown. Here we briefly review available data on the RNA interference processes and Argonaute proteins in eukaryotes and prokaryotes.  相似文献   

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The discovery ot small non-coding RNAs- microRNA(miRNA),short interfering RNA(siRNA) and PIWIinteracting RNA(piRNA)- represents one of the most exciting frontiers in biology specifically on the mechanism of gene regulation.In order to execute their functions,these small RNAs require physical interactions with their protein partners,the Argonaute(AGO) family proteins.Over the years,numerous studies have made tremendous progress on understanding the roles of AGO in gene silencing in various organisms.In this review,we summarize recent progress of AGO-mediated gene silencing and other cellular processes in which AGO proteins have been implicated with a particular focus on progress made in flies,humans and other model organisms as compliment.  相似文献   

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Argonaute proteins: key players in RNA silencing   总被引:1,自引:0,他引:1  
During the past decade, small non-coding RNAs have rapidly emerged as important contributors to gene regulation. To carry out their biological functions, these small RNAs require a unique class of proteins called Argonautes. The discovery and our comprehension of this highly conserved protein family is closely linked to the study of RNA-based gene silencing mechanisms. With their functional domains, Argonaute proteins can bind small non-coding RNAs and control protein synthesis, affect messenger RNA stability and even participate in the production of a new class of small RNAs, Piwi-interacting RNAs.  相似文献   

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piRNA的生物学功能   总被引:3,自引:0,他引:3  
非编码小RNA(non-coding RNA, ncRNA)主要有siRNA(small interfering RNA)、miRNA(microRNA)和piRNA (piwi-interacting RNA)三类,其中piRNA是近年来新发现的一类小RNA分子,特异性地同Argonuat蛋白家族中的Piwi亚家族蛋白结合,主要在生殖细胞系中表达,对维持生殖系DNA完整、抑制转座子转录、抑制翻译、参与异染色质的形成、执行表观遗传调控和生殖细胞发生等均有重要作用.piRNA基因几乎遍布于整个基因组,但呈高度不连续性分布,大部分定位于20~90 kb的染色体基因簇上.与来自于双链RNA的siRNA和发卡结构miRNA不同之处是piRNA来自长单链RNA前体,或者是两股非重叠的反向转录前体,其生成与Dicer无关.作为调节RNA(riboregulator),piRNA和miRNA可能在动物起源早期就已经出现了,帮助生命进入了一个多细胞动物的时代,产生了今天的生物体复杂性和多样性.piRNA成为ncRNA的研究热点,进展飞快,有很多综述及时介绍piRNA的研究进展,本文结合siRNA、miRNA的特点介绍了关于piRNA的形成机制和作用的最新研究成果.  相似文献   

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来源于tRNA的小分子RNA——降解碎片还是新的调控分子   总被引:1,自引:0,他引:1  
具有经典三叶草结构的tRNA作为细胞蛋白质合成机器的重要元件,已经拥有几十年深入细致的研究历史.但是,对于其功能的认识远没有止境,尤其在其作为潜在的基因表达调控分子前体的功能目前正逐渐被人们认识.最新的多项研究结果表明,在多种细胞系中通过高通量测序发现某种来源于tRNA的小片段RNA,这些剪切产物被认为与多种microRNA加工体系关键分子(如Dicer、Ago家族中的蛋白质)具有相互作用的能力.同时,报告基因检测系统的研究结果也暗示,这些小片段RNA具有类似microRNA的潜在调控功能,可能在细胞应对外界环境刺激时发挥重要的调节作用.如其具体的作用机制能够被更多的实验结果阐明,将极大地扩展我们对于非编码RNA调控功能的认识.  相似文献   

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In eukaryotes, small RNAs play important roles in both gene regulation and resistance to viral infection. Argonaute proteins have been identified as a key component of the effector complexes of various RNA-silencing pathways, but the mechanistic roles of Argonaute proteins in these pathways are not clearly understood. To address this question, we performed single-molecule fluorescence experiments using an RNA-induced silencing complex (core-RISC) composed of a small RNA and human Argonaute 2. We found that target binding of core-RISC starts at the seed region of the guide RNA. After target binding, four distinct reactions followed: target cleavage, transient binding, stable binding, and Argonaute unloading. Target cleavage required extensive sequence complementarity and accelerated core-RISC dissociation for recycling. In contrast, the stable binding of core-RISC to target RNAs required seed-match only, suggesting a potential explanation for the seed-match rule of microRNA (miRNA) target selection. [BMB Reports 2015; 48(12): 643-644]  相似文献   

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The Argonaute protein family   总被引:5,自引:0,他引:5  
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Small RNAs, including small interfering RNAs (siRNAs), microRNAs (miRNAs) and Piwi-associated interfering RNAs (piRNAs), are powerful gene expression regulators. This RNA-mediated regulation results in sequence-specific inhibition of gene expression by translational repression and/or mRNA degradation. siRNAs and miRNAs are generated by RNase III enzymes and subsequently loaded into Argonaute protein, a key component of the RNA induced silencing complex (RISC), to form the core of the RNA silencing machinery. RNA silencing acts as an ancient cell defense system against molecular parasites, such as transgenes, viruses and transposons. RNA silencing also plays an important role in the control of development. In plants, RNA silencing serves as a potent antiviral defense system. In response, many viruses have developed strategies to suppress RNA silencing. The striking sequence diversity among viral suppressors suggests that different viral suppressors could target different components of the RNA silencing machinery at different steps in different suppressing modes. Significant progresses have been made in this field for the past 5 years on the basis of structural information derived from RNase III family proteins, Dicer fragments and homologs, Argonaute homologs and viral suppressors. In this paper, we will review the current progress on the understanding of molecular mechanisms of RNA silencing; highlight the structural principles determining the protein–RNA recognition events along the RNA silencing pathways and the suppression mechanisms displayed by viral suppressors.  相似文献   

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非编码RNA是一类没有开放阅读框、不能翻译成为蛋自质的RNA分子。在哺乳动物中,它们主要是指微小RNA、小干扰RNA、PIWI互作RNA和其他一些反义转录本等。它们在生物体内广泛存在,通过RNA干扰、基因沉默、基因印迹和DNA甲基化等机制调控着基因的表达。非编码RNA增加了真核细胞调控网络的复杂性,也为科学地解释一些现象提供了新的途径。  相似文献   

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The study of small RNAs and Argonaute proteins in eukaryotes that are deficient in functional RNA interference could provide insights into novel functions of small RNAs. In this study we describe small non-coding RNAs bound to a distinctive Argonaute protein of Trypanosoma cruzi, TcPIWI-tryp. Co-immunoprecipitation of TcPIWI-tryp followed by deep sequencing of isolated RNA identified abundant small RNAs derived from rRNAs and tRNAs. The small RNA repertoire differed from that of the canonical Argonaute in organisms with functional RNA interference, which could indicate novel biological functions for TcPIWI-tryp in T. cruzi and other members of the trypanosomatid clade.  相似文献   

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In Caenorhabditis elegans, specific Argonaute proteins are dedicated to the RNAi and microRNA pathways. To uncover how the precise Argonaute selection occurs, we designed dsRNA triggers containing both miRNA and siRNA sequences. While dsRNA carrying nucleotides mismatches can only enter the miRNA pathway, a fully complementary dsRNA successfully rescues let-7 miRNA function and initiates silencing by RNAi. We demonstrated that RDE-1 is essential for RNAi induced by the perfectly paired trigger, yet is not required for silencing by the let-7 miRNA. In contrast, ALG-1/ALG-2 are required for the miRNA function, but not for the siRNA-directed gene silencing. Finally, a dsRNA containing a bulged miRNA and a perfectly paired siRNA can enter both pathways suggesting that the sorting of small RNAs occurs after that the dsRNA trigger has been processed by Dicer. Thus, our data suggest that the selection of Argonaute proteins is affected by two molecular features: (1) the structure of the small RNA duplex; and (2) the Argonautes specific characteristics.  相似文献   

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Small RNAs derived from longer non-coding RNAs   总被引:3,自引:0,他引:3  
Röther S  Meister G 《Biochimie》2011,93(11):1905-1915
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microRNAs (miRNAs) encode a novel class of small, non-coding RNAs that regulate gene expression post-trancriptionally. miRNAs comprise one of the major non-coding RNA families, whose diverse biological functions and unusual capacity for gene regulation have attracted enormous interests in the RNA world. Over the past 16 years, genetic, biochemical and computational approaches have greatly shaped the growth of the field, leading to the identification of thousands of miRNA genes in nearly all metazoans. The key molecular machinery for miRNA biogenesis and silencing has been identified, yet the precise biochemical and regulatory mechanisms still remain elusive. However, recent findings have shed new light on how miRNAs are generated and how they function to repress gene expression. miRNAs provide a paradigm for endogenous small RNAs that mediate gene silencing at a genome-wide level. The gene silencing mediated by these small RNAs constitutes a major component of gene regulation during various developmental and physiological processes. The accumulating knowledge about their biogenesis and gene silencing mechanism will add a new dimension to our understanding about the complex gene regulatory networks.  相似文献   

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