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Guo WT  Xu WY  Gu MM 《遗传》2012,34(8):935-942
无义介导的mRNA降解(Nonsense-mediated mRNA decay,NMD)是一种广泛存在于真核生物细胞中的mRNA质量监控机制。该机制通过识别和降解含有提前终止密码子(Premature translational-termination codon,PTC)的转录产物防止有潜在毒性的截短蛋白的产生。据估计,约1/3的遗传性疾病是由提前终止密码子引起的,而NMD作用通常会改变某些遗传病的临床症状或遗传方式。文章主要综述了人体细胞中NMD对底物的识别及其作用机制,并以几种单基因遗传病为例探讨其对这些疾病表型的影响,表明NMD作用机制的进一步揭示将有助于单基因遗传病发病机制的阐明及治疗方法的改进。  相似文献   

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Nonsense-mediated mRNA decay (NMD) is a conserved RNA decay pathway that degrades aberrant mRNAs and directly regulates many normal mRNAs. This dual role for NMD raises the possibility that its magnitude is buffered to prevent the potentially catastrophic alterations in gene expression that would otherwise occur if NMD were perturbed by environmental or genetic insults. In support of this, here we report the existence of a negative feedback regulatory network that directly acts on seven NMD factors. Feedback regulation is conferred by different branches of the NMD pathway in a cell type-specific and developmentally regulated manner. We identify feedback-regulated NMD factors that are rate limiting for NMD and demonstrate that reversal of feedback regulation in response to NMD perturbation is crucial for maintaining NMD. Together, our results suggest the existence of an intricate feedback network that maintains both RNA surveillance and the homeostasis of normal gene expression in mammalian cells.  相似文献   

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It has been reported that eukaryotic organisms have a nonsense-mediated mRNA decay (NMD) system to exclude aberrant mRNAs that produce truncated proteins. NMD is an RNA surveillance pathway that degrades mRNAs possessing premature translation termination codons (PTCs), thus avoiding production of possibly toxic truncated proteins. Three interacting proteins, UPF1, UPF2 and UPF3, are required for NMD in mammals and yeasts, and their amino acid sequences are well conserved among most eukaryotes, including plants. In this study, 'The Arabidopsis Information Resource' database was searched for mRNAs with premature termination codons. We selected five of these mRNAs and checked for the presence of PTCs in these mRNAs when translated in vivo. As a result we identified aberrant mRNAs produced by alternative splicing for each gene. These genes produced at least one alternative splicing variant including a PTC (PTC+) and another variant without a PTC (PTC-). We analyzed their PTC+/PTC- ratios in wild-type Arabidopsis and upf3 mutant plants and showed that the PTC+/PTC- ratios were higher in atupf3 mutant plants than wild-type plants and that the atupf3 mutant was less able to degrade mRNAs with premature termination codons than wild-type plants. This indicated that the AtUPF3 gene is required by the plant NMD system to obviate aberrantly spliced mRNA.  相似文献   

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无义介导的mRNA降解(nonsense-mediated mRNA decay,NMD)作为真核细胞中重要RNA监控机制,识别并降解开放阅读框中含有提前终止密码子(premature termination codon,PTC)的mRNA,以避免因截短的蛋白产物积累对细胞造成毒害. NMD还调控正常生理基因的表达,暗示其在真核细胞中扮演重要角色. NMD途径的关键是PTC的识别.本文通过3种模型来分别阐述发现于哺乳动物、酵母等不同有机体的识别机制.通常由NMD因子UPF1(up-frameshift)等被招募至含PTC的mRNA上,借助这些因子组装形成“功能复合体”并激活降解.但目前对于PTC识别后的过程仍认识有限,本文通过综述NMD途径的分子机制以更好地理解其生物学意义.  相似文献   

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无义介导的mRNA降解途径(nonsense-mediated mRNA decay,NMD)作为细胞内的一种重要的mRNA质量监控机制,可以降解含有提前终止密码子(premature termination codon,PTC)的异常转录本,从而避免截短蛋白质对细胞的毒害,但其详细的分子机制有待进一步阐释。蓝氏贾第虫(Giardia lamblia)作为一种寄生性单细胞原生动物,进化地位特殊,对其NMD途径的研究有利于阐明基因表达调控的分子和进化机制。本研究通过酵母双杂交及体外pull-down实验分析了贾第虫NMD途径因子上游移码蛋白1(Giardia lamblia up-frameshift 1,GlUPF1)、贾第虫RNA结合蛋白(Giardia lamblia HRP1, GlHRP1)、贾第虫核糖核酸外切酶(Giardia lamblia Ski7p,GlSki7p、Giardia lamblia XRN1,GlXRN1)之间的相互作用关系。结果表明,GlUPF1全长与GlHRP1、GlXRN1(1~500 aa)、GlSki7p间均可发生相互作用。而且GlUPF1的CH结构域和C端结构域分别与GlHRP1、GlXRN1(1~500 aa)、GlSki7p相互作用。说明GlUPF1在贾第虫NMD途径中作为招募平台,在无义mRNA识别和降解过程中发挥重要作用。为此,结合本实验室之前的研究结果,我们提出原生动物贾第虫的NMD途径:在提前终止密码子处SURF(SMG1-UPF1-eRF1-eRF3)复合物形成后,GlUPF1被磷脂酰肌醇3-激酶(suppressor with morphogenetic effect on genitalia 1,SMG1)磷酸化修饰, NMD途径激活,随后GlUPF1与HRP1相互作用,将转录本标记为NMD底物;GlUPF1进而招募下游贾第虫5′-3′核糖核酸降解酶GlXRN1、贾第虫3′-5′ 核糖核酸降解因子GlSki7p,最终降解靶标mRNA。  相似文献   

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Nonsense-mediated mRNA decay (NMD), also called mRNA surveillance, is an important pathway used by all organisms that have been tested to degrade mRNAs that prematurely terminate translation and, as a consequence, eliminate the production of aberrant proteins that could be potentially harmful. In mammalian cells, NMD appears to involve splicing-dependent alterations to mRNA as well as ribosome-associated components of the translational apparatus. To date, human (h) Upf1 protein (p) (hUpf1p), a group 1 RNA helicase named after its Saccharomyces cerevisiae orthologue that functions in both translation termination and NMD, has been the only factor shown to be required for NMD in mammalian cells. Here, we describe human orthologues to S. cerevisiae Upf2p and S. cerevisiae Upf3p (Caenorhabditis elegans SMG-4) based on limited amino acid similarities. The existence of these orthologues provides evidence for a higher degree of evolutionary conservation of NMD than previously appreciated. Interestingly, human orthologues to S. cerevisiae Upf3p (C. elegans SMG-4) derive from two genes, one of which is X-linked and both of which generate multiple isoforms due to alternative pre-mRNA splicing. We demonstrate using immunoprecipitations of epitope-tagged proteins transiently produced in HeLa cells that hUpf2p interacts with hUpf1p, hUpf3p-X, and hUpf3p, and we define the domains required for the interactions. Furthermore, we find by using indirect immunofluorescence that hUpf1p is detected only in the cytoplasm, hUpf2p is detected primarily in the cytoplasm, and hUpf3p-X localizes primarily to nuclei. The finding that hUpf3p-X is a shuttling protein provides additional indication that NMD has both nuclear and cytoplasmic components.  相似文献   

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Cao D  Parker R 《Cell》2003,113(4):533-545
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The integrity and proper expression of genomes are safeguarded by DNA and RNA surveillance pathways. While many RNA surveillance factors have additional functions in the nucleus, little is known about the incidence and physiological impact of converging RNA and DNA signals. Here, using genetic screens and genome-wide analyses, we identified unforeseen SMG-1-dependent crosstalk between RNA surveillance and DNA repair in living animals. Defects in RNA processing, due to viable THO complex or PNN-1 mutations, induce a shift in DNA repair in dividing and non-dividing tissues. Loss of SMG-1, an ATM/ATR-like kinase central to RNA surveillance by nonsense-mediated decay (NMD), restores DNA repair and radio-resistance in THO-deficient animals. Mechanistically, we find SMG-1 and its downstream target SMG-2/UPF1, but not NMD per se, to suppress DNA repair by non-homologous end-joining in favour of single strand annealing. We postulate that moonlighting proteins create short-circuits in vivo, allowing aberrant RNA to redirect DNA repair.  相似文献   

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Nonsense‐mediated mRNA decay (NMD) is a cellular surveillance pathway that recognizes and degrades mRNAs with premature termination codons (PTCs). The mechanisms underlying translation termination are key to the understanding of RNA surveillance mechanisms such as NMD and crucial for the development of therapeutic strategies for NMD‐related diseases. Here, we have used a fully reconstituted in vitro translation system to probe the NMD proteins for interaction with the termination apparatus. We discovered that UPF3B (i) interacts with the release factors, (ii) delays translation termination and (iii) dissociates post‐termination ribosomal complexes that are devoid of the nascent peptide. Furthermore, we identified UPF1 and ribosomes as new interaction partners of UPF3B. These previously unknown functions of UPF3B during the early and late phases of translation termination suggest that UPF3B is involved in the crosstalk between the NMD machinery and the PTC‐bound ribosome, a central mechanistic step of RNA surveillance.  相似文献   

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Messenger RNAs are monitored for errors that arise during gene expression by a mechanism called RNA surveillance, with the result that most mRNAs that cannot be translated along their full length are rapidly degraded. This ensures that truncated proteins are seldom made, reducing the accumulation of rogue proteins that might be deleterious. The pathway leading to accelerated mRNA decay is referred to as nonsense-mediated mRNA decay (NMD). The proteins that catalyze steps in NMD in yeast serve two roles, one to monitor errors in gene expression and the other to control the abundance of endogenous wild-type mRNAs as part of the normal repertoire of gene expression. The NMD pathway has a direct impact on hundreds of genetic disorders in the human population, where about a quarter of all known mutations are predicted to trigger NMD.  相似文献   

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