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1.
He M  Wang ZW 《遗传》2011,33(9):925-930
RNA干扰是表观遗传学的研究热点,它参与基因复制后表达调控,并与肿瘤发生密切相关。近年对RNA干扰研究较多的是微小RNA和小干扰RNA。文章概述了微小RNA和小干扰RNA的基本理论,并综述它们在胃癌研究中的现状及进展。认为RNA干扰分析和应用是研究胃癌相关基因功能及作用机制的有效方法,并将对胃癌的诊治产生巨大影响。  相似文献   

2.
非编码小RNA是一类通过调节基因的表达从而影响生命活动的小分子,主要包括微小RNA、内源性小干扰RNA、Piwi蛋白相互作用的RNA及竞争性内源RNA。研究发现日本血吸虫感染动物后,宿主和虫体的非编码小RNA的表达水平均发生了改变。宿主源的非编码小RNA主要为微小RNA,其中miR-454和miR-203与日本血吸虫病发生发展有关,miR-223和miR-451与日本血吸虫自身生长发育有关;日本血吸虫非编码小RNA包括微小RNA、内源性小干扰RNA,这些非编码小RNA在日本血吸虫的生长、发育、性成熟及产卵中发挥着重要作用,如sjalet-7、sja-bantam,而且像sja-miR-3479和sja-miR-0001还可以诊断日本血吸虫病。就日本血吸虫非编码小RNA的研究进展进行综述,为日本血吸虫病的防治提供参考。  相似文献   

3.
真核生物中的微小RNA及其功能研究进展   总被引:6,自引:1,他引:6  
马中良  杨怀义  田波 《遗传学报》2003,30(7):693-696
真核生物中存在两种主要的非编码RNA(non-coding RNA),在真核生物中发挥重要作用。一类为微小RNA(microRNA,miRNA),另一为小干扰RNA(siRNA)。miRNA大小为19~25nt,在体内与蛋白质形成核糖核蛋白复合体(miRNP),在真核基因的表达调控,生长发育中起重要作用。siRNA在RNA干扰(RNA地 interference,RNAi)途径中起定位特异mRNA的作用。miRNA与siRNA有联系也有区别。miRNA在真核生物中的调控机制具有保守性。  相似文献   

4.
植物非编码小RNA(sRNAs)主要分为三类:微小RNA(m iRNAs)、小干扰RNA(siRNAs)和长小片段干扰RNA(lsiRNAs)。三者的生物合成和作用机制有所不同,但他们主要都通过介导靶mRNAs的剪切或抑制其翻译来调控基因的表达。这篇文章主要介绍小RNA研究的最新进展,并重点阐述其在非生物和生物胁迫中发挥的作用,如应对矿质元素缺乏、氧化胁迫、ABA胁迫以及病原菌入侵等生理过程。  相似文献   

5.
谢兆辉 《生命科学》2010,(9):925-929
很多动物可以产生具调节作用的小RNAs,根据产生方式和作用机制可以将它们分为三类:微小RNAs(miRNAs)、与Piwi相互作用的RNAs(piRNAs)和内源小干扰RNAs(endo-siRNAs),这些小RNAs可以在生物生殖细胞发育过程中发挥重要作用。其中miRNAs的主要作用是调节蛋白质基因的表达;piRNAs主要的作用是沉默转座因子,但piRNAs主要存在于生殖细胞中;endo-siRNAs则可能具有上述两种主要作用。该文论述了这三种小RNAs在生物生殖细胞发育过程中的作用,同时也讨论了它们在治疗生物不育及其在生物节育方面的应用前景。  相似文献   

6.
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   

7.
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   

8.
RNA干扰与染色质沉默——生物体内精密的网络调控机制   总被引:2,自引:0,他引:2  
基因表达受不同层次的调控.RNA干扰通过产生双链小RNA诱导同源mRNA序列降解,从而在转录后抑制特定基因的表达.最新的研究成果显示:RNA干扰产生的双链小RNA可通过与染色质中的重复序列DNA及组蛋白甲基化酶相互作用,引起组蛋白H3 Lys9的甲基化,进一步与异染色质形成相关蛋白结合,导致染色质沉默.综述了RNA干扰,小RNA,组蛋白修饰,染色质沉默及基因表达调控之间存在着精密的网络调控机制.  相似文献   

9.
RNA干扰技术的原理与应用   总被引:6,自引:0,他引:6  
RNA干扰(RNA interference,RNAi)是由双链RNA(double-stranded RNA,dsRNA)所引起的序列特异性基因沉默,是真核生物中一种非常保守的机制,它与协同抑制(cosuppression)、转座子沉默(transposon silencing)以及发育等许多重要的生物学过程密切相关。RNA干扰依赖于小干扰RNA(Small interference RNA,siRNA)与靶序列之间严格的碱基配对,具有很强的特异性,涉及众多基因和蛋白复合物,构成了一个以小RNA为核心的真核基因表达调控系统,它可以在染色质水平、转录水平、转录后水平和翻译水平参与基因表达的调节。RNA干扰技术为人们迅速、准确的剖析基因的功能,分析基因之间错综复杂的联系和相互作用提供了极为有用的工具,同时也为人们预防和治疗癌症和病毒疾病提供了新的思路。  相似文献   

10.
RNA干扰作为转录后基因沉默的有效途径,在基因调控、功能分析及疾病防治等领域发挥重要作用。小干扰RNA表达载体的诞生实现了RNA干扰技术持续、稳定和可控性应用,是实现基因沉默的理想选择。目前干扰性小RNA表达载体虽已发展到第二代,也开发出多种商品化的产品,但依然未能很好地解决其高效、安全、可控性方面的矛盾,发展陷入了瓶颈期。因此,从载体自身角度出发,通过系统分析其功能部件的特点,纵观小RNA载体的历史渊源、发展现状、存在问题和发展方向等问题,为干扰性小RNA表达载体的优化与选择提供相关理论指导。  相似文献   

11.
Recent studies showed that small interfering RNAs (siRNAs) and Piwi-interacting RNA (piRNA) in mammalian germ cells play important roles in retrotransposon silencing and gametogenesis. However, subsequent contribution of those small RNAs to early mammalian development remains poorly understood. We investigated the expression profiles of small RNAs in mouse metaphase II oocytes, 8–16-cell stage embryos, blastocysts and the pluripotent inner cell mass (ICM) using high-throughput pyrosequencing. Here, we show that during pre-implantation development a major small RNA class changes from retrotransposon-derived small RNAs containing siRNAs and piRNAs to zygotically synthesized microRNAs (miRNAs). Some siRNAs and piRNAs are transiently upregulated and directed against specific retrotransposon classes. We also identified miRNAs expression profiles characteristic of the ICM and trophectoderm (TE) cells. Taken together, our current study reveals a major reprogramming of functional small RNAs during early mouse development from oocyte to blastocyst.  相似文献   

12.
microRNAs (miRNAs) and small interfering RNAs (siRNAs), which constitute two major classes of endogenous small RNAs in plants, impact a multitude of developmental and physiological processes by imparting sequence specificity to gene and genome regulation. Although lacking the third major class of small RNAs found in animals, Piwi-interacting RNAs (piRNAs), plants have expanded their repertoire of endogenous siRNAs, some of which fulfill similar molecular and developmental functions as piRNAs in animals. Research on plant miRNAs and siRNAs has contributed invaluable insights into small RNA biology, thanks to the highly conserved molecular logic behind the biogenesis and actions of small RNAs. Here, I review progress in the plant small RNA field in the past two years, with an emphasis on recent findings related to plant development. I do not recount the numerous developmental processes regulated by small RNAs; instead, I focus on major principles that have been derived from recent studies and draw parallels, when applicable, between plants and animals.  相似文献   

13.
The Argonaute protein family   总被引:5,自引:0,他引:5  
  相似文献   

14.
Small RNAs, including miRNAs, siRNAs, and PIWI-interacting RNAs (piRNAs), are small noncoding RNAs that are 21-30 nucleotides in length and play important roles...  相似文献   

15.
In Aedes mosquitoes, infections with arthropod-borne viruses (arboviruses) trigger or modulate the expression of various classes of viral and host-derived small RNAs, including small interfering RNAs (siRNAs), PIWI interacting RNAs (piRNAs), and microRNAs (miRNAs). Viral siRNAs are at the core of the antiviral RNA interference machinery, one of the key pathways that limit virus replication in invertebrates. Besides siRNAs, Aedes mosquitoes and cells derived from these insects produce arbovirus-derived piRNAs, the best studied examples being viruses from the Togaviridae or Bunyaviridae families. Host miRNAs modulate the expression of a large number of genes and their levels may change in response to viral infections. In addition, some viruses, mostly with a DNA genome, express their own miRNAs to regulate host and viral gene expression. Here, we perform a comprehensive analysis of both viral and host-derived small RNAs in Aedes aegypti Aag2 cells infected with dengue virus 2 (DENV), a member of the Flaviviridae family. Aag2 cells are competent in producing all three types of small RNAs and provide a powerful tool to explore the crosstalk between arboviral infection and the distinct RNA silencing pathways. Interestingly, besides the well-characterized DENV-derived siRNAs, a specific population of viral piRNAs was identified in infected Aag2 cells. Knockdown of Piwi5, Ago3 and, to a lesser extent, Piwi6 results in reduction of vpiRNA levels, providing the first genetic evidence that Aedes PIWI proteins produce DENV-derived small RNAs. In contrast, we do not find convincing evidence for the production of virus-derived miRNAs. Neither do we find that host miRNA expression is strongly changed upon DENV2 infection. Finally, our deep-sequencing analyses detect 30 novel Aedes miRNAs, complementing the repertoire of regulatory small RNAs in this important vector species.  相似文献   

16.
Small RNAs in early mammalian development: from gametes to gastrulation   总被引:1,自引:0,他引:1  
Small non-coding RNAs, including microRNAs (miRNAs), endogenous small interfering RNAs (endo-siRNAs) and Piwi-interacting RNAs (piRNAs), play essential roles in mammalian development. The function and timing of expression of these three classes of small RNAs differ greatly. piRNAs are expressed and play a crucial role during male gametogenesis, whereas endo-siRNAs are essential for oocyte meiosis. By contrast, miRNAs are ubiquitously expressed in somatic tissues and function throughout post-implantation development. Surprisingly, however, miRNAs are non-essential during pre-implantation embryonic development and their function is suppressed during oocyte meiosis. Here, we review the roles of small non-coding RNAs during the early stages of mammalian development, from gamete maturation through to gastrulation.  相似文献   

17.
Small silencing RNAs repress gene expression by a set of related mechanisms collectively called RNA-silencing pathways [1, 2]. In the RNA interference (RNAi) pathway [3], small interfering mRNA (siRNAs) defend cells from invasion by foreign nucleic acids, such as those produced by viruses. In contrast, microRNAs (miRNAs) sculpt endogenous mRNA expression [4]. A third class of small RNAs, Piwi-interacting RNAs (piRNAs), defends the genome from transposons [5-9]. Here, we report that Drosophila piRNAs contain a 2'-O-methyl group on their 3' termini; this is a modification previously reported for plant miRNAs and siRNAs [10] and mouse and rat piRNAs [11, 12, 13]. Plant small-RNA methylation is catalyzed by the protein HEN1 [10, 14, 15]. We find that DmHen1, the Drosophila homolog of HEN1, methylates the termini of siRNAs and piRNAs. Without DmHen1, the length and abundance of piRNAs are decreased, and piRNA function is perturbed. Unlike plant HEN1, DmHen1 acts on single strands, not duplexes, explaining how it can use as substrates both siRNAs-which derive from double-stranded precursors-and piRNAs-which do not [8, 13]. 2'-O-methylation of siRNAs may be the final step in assembly of the RNAi-enzyme complex, RISC, occurring after an Argonaute-bound siRNA duplex is converted to single-stranded RNA.  相似文献   

18.
19.
Germ cells are the only immortal cells in a mammalian organism. Here, I review recent progress in the research on the role of small non-coding RNAs – namely microRNAs (miRNAs), endogenous siRNAs (endo-siRNAs), and piwi-interacting RNAs (piRNAs) – in the development of mammalian germ cells. Two key functions of small RNAs in germ cells are to globally regulate the germ cell developmental program and to keep selfish genetic elements under strict surveillance in order to maintain the germline immortality and to keep the species stable and eternal. I propose that many new members of small RNAs and even completely new types of small RNAs acting in the germline, especially in early primordial germ cells (PGCs) will be discovered in the near future.  相似文献   

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