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RNA-binding proteins mediate anti-inflammatory regulation of vascular diseaseHerman, Allison January 2019 (has links)
This work identifies the Fragile X-related protein (FXR1) as a reciprocal regulator of HuR target transcripts in vascular smooth muscle cells (VSMC). FXR1 was identified as an HuR interacting protein by liquid chromatography-tandem mass spectrometry (LC-MS/MS). The-HuR-FXR1 interaction is abrogated in RNase-treated extracts, indicating that their association is tethered by mRNAs. FXR1 expression is induced in diseased, but not normal arteries. SiRNA knock down of FXR1 increases abundance and stability of inflammatory mRNAs, while overexpression of FXR1 reduces their abundance and stability. RNA-EMSA and RIP demonstrate that FXR1 directly interacts with an ARE and a previously uncharacterized element in the 3’UTR of TNFa. FXR1 expression is increased in VSMC challenged with the anti-inflammatory cytokine IL-19, and FXR1 is required for IL-19 reduction of HuR. This suggests FXR1 is an anti-inflammation responsive, HuR counter-regulatory protein that reduces abundance of pro-inflammatory transcripts. Additionally, we observed significantly increased poly-A-Binding protein (PABP) expression localizing to discrete punctate structures in both vascular smooth muscle (VSMC) and endothelial cells (EC) of the aortic arch of Ldlr-/- mice, as compared to WT controls. EIF2α phosphorylation, requisite for SG formation, was also induced by clotrimazole and oxLDL in these cells. Interestingly, VSMCs pre-treated with anti-inflammatory cytokine IL-19 followed by clotrimazole significantly reduced the formation of SGs and eIF2a phosphorylation, suggesting a relationship between inflammation and SG formation in vascular cells. Reduction of SG component G3BP1 by siRNA knockdown significantly reduced stress granule formation and inflammatory gene abundance in hVSMC. Microtubule inhibitors reduced SG formation in hVSMC. These results support the hypothesis that SG formation in atherosclerosis is driven by inflammation, SG may mediate the cellular response to inflammation, and that anti-inflammatory treatment may lessen atherosclerosis progression and plaque formation by reduction of SGs. / Biomedical Sciences
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Interaction entre l’oncoprotéine E6 d’HPV16 et le métabolisme des ARN messagers / The relationship between HPV16 E6 oncoprotein and messenger RNA metabolismMeznad, Koceila 28 November 2018 (has links)
Les papillomavirus humains (HPV) sont des virus à ADN double brin qui infectent la peau et les muqueuses. Les infections par les HPV, bien que majoritairement asymptomatique, provoquent des défauts de prolifération cellulaire pouvant parfois générer des cancers. Selon leur pouvoir carcinogène, on distingue les HPV à bas risque oncogène (HPV-BR) provoquant des lésions bénignes, et les HPV à haut risque (HPV-HR) responsables de l’apparition de nombreux cancers ano-génitaux et de certains cancers des voies aéro-digestives supérieures. Parmi les HPV-HR, HPV16 est le plus prévalent. La carcinogenèse induite par les HPV-HR est corrélée à l’expression des protéines virales E6 et E7, qui dérégulent de nombreux processus cellulaires. L’expression des gènes viraux, réalisée par la machinerie de la cellule hôte, est finement régulée particulièrement au niveau posttranscriptionnel. En outre, l’épissage alternatif génère une vingtaine de transcrits viraux, permettant l’expression des protéines virales. L’épissage au sein de la région codante E6 permettant de former l’isoforme E6*I est présent uniquement chez les HPV-HR, mais pas chez les HPV-BR, ce qui suggère son implication dans la carcinogenèse induite par les HPV-HR. Toutefois, le rôle biologique de la protéine E6*I produite par les HPV-HR est encore controversé.Afin de mieux appréhender les mécanismes de la carcinogenèse induite par les HPV-HR, nous nous sommes intéressés à : (i) l’étude des fonctions biologiques de l’isoforme E6*I, et (ii) aux mécanismes impliqués dans la régulation de l’expression de E6 et E7.Pour appréhender le rôle biologique d’E6*I d’HPV16, nous avons utilisé le séquençage de l’ARN afin d’identifier des cibles dérégulées par son expression ectopique. L’expression des isoformes E6 et E6*I d’HPV16 dans des cellules HPV négatives dérégule des transcrits impliqués dans des processus biologiques relatifs à l’expression des gènes viraux, la carcinogenèse virale, la transduction du signal et la traduction. L’expression d’E6*I seule, dérégule des transcrits impliqués dans l’organisation de la matrice extracellulaire, des voies de signalisation et d’adhérence cellulaire. De façon intéressante, il a été montré que ces gènes dérégulés par l’expression d’E6*I sont communément affecté par le niveau intracellulaire de ROS (espèces réactives de l’oxygène). Cela corrobore le rôle d’E6*I dans l’augmentation de la production de ROS. Le stress oxydatif associé aux ROS pourrait favoriser l’intégration du génome viral à celui de la cellule hôte, caractéristique de carcinogenèse associée aux HPV-HR. En somme, E6*I pourrait avoir un rôle oncogénique indépendant de celui d’E6, et interviendrait dans la carcinogenèse associée aux HPV-HR.Nous avons aussi étudié le rôle du complexe de jonction des exons (EJC), dans la régulation posttranscriptionnelle de l’expression d’E6 et E7. L’EJC est un complexe multiprotéique déposé sur les ARNm via l’épissage influençant ainsi leur devenir. Nous avons montré qu’un facteur de l’EJC, eukaryotic initiation factor 4A3 (eIF4A3), se liait aux ARNm viraux. Par ailleurs, nous avons observé que les composants de l’EJC affectent, certes de différentes façons, l’expression d’E6 et E7. Enfin, nous avons aussi étudié l’effet du nonsense-mediated mRNA decay (NMD), un mécanisme lié à l’EJC, sur l’expression d’E6 et E7. Non seulement nos résultats suggèrent que le NMD inhibe l’expression d’E6 et E7, mais nous avons aussi observé que la protéine E6 d’HPV16 réduit l’activité du NMD. Cette inhibition permettrait à HPV16 d’avoir un contrôle sur ses transcrits mais d’affecter aussi des cibles cellulaires du NMD. Etant donné l’implication des gènes régulés par le NMD dans le maintien de l’homéostasie et l’adaptation cellulaires, il serait intéressant d’appréhender le rôle de cette nouvelle activité d’E6 dans la carcinogenèse associée aux HPV-HR. / Human papillomaviruses (HPV) are double strand DNA viruses that infect skin and mucosa. HPV infections, although mostly asymptomatic, cause cell proliferation defects that can sometimes give rise to cancer. According to their carcinogenic potential, we distinguish low-risk HPVs (lr-HPV) causing benign lesions, and high-risk HPV (hr-HPV) responsible for the appearance of numerous anogenital and some head and neck squamous-cell cancers. Among the hr-HPV, HPV16 is the most prevalent. Hr-HPV-induced carcinogenesis is correlated with the expression of the viral oncoproteins, E6 and E7, which deregulate many cellular processes. Viral gene expression, performed by the host cell machine, is finely regulated particularly at the post-transcriptional level. Besides, alternative splicing generates about twenty viral transcripts, leading to the expression of viral proteins. The splicing within the E6 open reading frame that generates an E6*I mRNA only in hr-HPV, but not in the lr-HPV, suggests its involvement in hr-HPV-induced carcinogenesis. However, the biological role of E6*I protein produced by HPV-HR is still controversial.In order to better understand the mechanisms of hr-HPV-induced carcinogenesis, we have interested in: (i) the study of the biological functions of the E6*I isoform, and (ii) the mechanisms involved in the regulation of E6 and E7 expression.To get insight the biological role of HPV16 E6*I, we used RNA sequencing to identify targets deregulated by its ectopic expression. Expression of HPV16 E6 and E6*I isoforms in negative HPV cells deregulate several transcripts involved in biological processes related to viral gene expression, viral carcinogenesis, signal transduction and translation. The expression of E6*I alone, deregulates transcripts involved in the organization of the extracellular matrix, signaling pathways and cell adhesion. Interestingly, it was shown that the genes deregulated by E6*I expression are commonly affected by the intracellular level of ROS (reactive oxygen species). These results support the role of E6*I in increasing ROS production. The ROS-associated oxidative stress could favor viral genome integration with that of the host cell, a characteristic of hr-induced carcinogenesis. In sum, E6*I may have an oncogenic role independent of E6, and intervene in the carcinogenesis associated with hr-HPV.We also studied the role of the exon junction complex (EJC) in the posttranscriptional regulation of E6 and E7 expression. EJC is a multiprotein complex deposited on mRNAs via splicing, thus influencing their fate. We have shown that a factor of EJC, eukaryotic initiation factor 4A3 (eIF4A3), binds to viral mRNAs. Moreover, we have observed that the components of the EJC affected, in different ways, the expression of E6 and E7. Finally, we also studied the effect of nonsense-mediated mRNA decay (NMD), a mechanism linked to the EJC, on the expression of E6 and E7. Our results suggest that not only NMD inhibits the expression of E6 and E7, but we have also observed that HPV16 E6 protein reduces NMD activity. This inhibition would allow HPV16 to have control over its transcripts but also to affect NMD cellular targets. Given the involvement of NMD-regulated genes in the maintenance of cellular homeostasis and adaptation, it would be interesting to understand the role of this new E6 activity in carcinogenesis associated with HPV-HR.
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Avaliação da importância do controle da estabilidade de RNAm na sinalização por glicose e ABA e na interação desses sinais em Arabidopsis thaliana / Evaluation of the importance of mRNA stability control in glucose and ABA-signaling and in the interaction of these signals in Arabidopsis thalianaDuarte, Gustavo Turqueto, 1982- 21 August 2018 (has links)
Orientador: Michel Georges Albert Vincentz / Tese (doutorado) - Universidade Estadual de Campinas, Instituto de Biologia / Made available in DSpace on 2018-08-21T12:39:15Z (GMT). No. of bitstreams: 1
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Previous issue date: 2012 / Resumo: As plantas, sendo organismos sésseis, desenvolveram um conjunto de mecanismos que possibilitam a adaptação a condições ambientais adversas visando à manutenção da homeostase energética para o desenvolvimento e propagação. Tais respostas valem-se da integração entre a biossíntese de hormônios, ativação de vias gênicas de resposta a estresse e um balanço adequado do uso da energia disponível. Os açúcares, além de serem fontes de carbono e energia, também atuam como moléculas sinalizadoras podendo agir conjuntamente com sinais hormonais na adaptação a estresses bióticos e abióticos e no controle do desenvolvimento. Nesse contexto, diversos estudos apontam para uma importante relação entre o ácido abscísico (ABA), um dos principais hormônios relacionados à resposta a estresses, e a glicose. A sinalização por ABA, além de atuar sobre a regulação da transcrição, é conhecida por envolver fatores de controle de estabilidade do RNAm. Contudo, a participação destes mecanismos em respostas mediadas por glicose ainda é pouco explorada. Num primeiro momento, o presente trabalho visou avaliar o potencial das participações de regulações pós-transcricionais em resposta a ABA e glicose em Arabidopsis thaliana, através da determinação do perfil de expressão de RNAm após a inibição da transcrição. Um modelo experimental com condições de inibição de transcrição otimizadas foi estabelecido e utilizado para análise de transcriptoma por microarranjos CATMA em resposta à glicose e ABA. Um total de 962 genes foi identificado como diferencialmente expresso após os tratamentos, sugerindo uma possível regulação pós-transcricional por glicose sobre 204 transcritos, por ABA sobre 245 e pela combinação dos dois sinais sobre 513 transcritos. Esses genes foram classificados de acordo com o Gene Ontology, sugerindo uma relação importante com respostas adaptativas a condições de estresse. Aparentemente, as respostas mediadas por glicose e ABA seguem estratégias opostas, sendo que as respostas pós-transcricionais por ABA podem também atuar como um mecanismo rápido de retro-regulação negativa sobre a via central de sinalização desse hormônio, uma forma de dessensibilizar e reiniciar as respostas da via. Na segunda parte deste trabalho, levando em consideração as evidências do envolvimento do controle de estabilidade de RNAm na sinalização por glicose, foi avaliada a participação da via de regulação por microRNAs (miRNAs) em respostas mediadas por esses sinal durante os estágios iniciais de desenvolvimento da planta. Os mutantes ago1-25 e hyl1-2, deficientes em atividade e biossíntese de miRNAs, respectivamente, apresentaram hipossensibilidade à glicosedurante um determinado período do desenvolvimento da planta, entre a germinação e o estabelecimento. Tal resultado levanta a possibilidade de que a via dos miRNAs participa do atraso do desenvolvimento mediado por glicose. Visando compreender quais miRNAs poderiam estar envolvidos, análise de expressão em larga escala por reação em cadeia da polimerase em tempo real (qRT-PCR) de 200 precursores de miRNAs (pri-miRs) em resposta a glicose foi conduzida, apontando para uma potencial regulação sobre 38 deles, vários dos quais já são conhecidos por participarem direta ou indiretamente do controle de desenvolvimento da planta. Aparentemente, a deficiência na maquinaria de miRNAs leva a um desbalanço nas regulações de genes responsivos à glicose durante os primeiros estágios de desenvolvimento / Abstract: Plants, as sessile organisms, have developed a set of mechanisms that allow efficient adaptation to adverse environmental conditions. These processes rely on the integration of hormone biosynthesis, activation of stress-responsive pathways and on a balanced use of the available energy. Sugars, besides their role as carbon and energy sources, may also function as signaling molecules that may act together with hormonal signals to trigger adaptive responses to biotic and abiotic stresses. In this context, several studies have indicated an important relation between abscisic acid (ABA), one of the major hormones related to abiotic stresses responses, and glucose. ABA signaling, besides its function over transcription control, is known to involve factors regulating the stability of mRNAs. However, the importance of glucose-mediated mRNA decay control is essentially unknown. Our work intended to evaluate the potential of the participation of post-transcriptional regulations in response to ABA and glucose in Arabidopsis thaliana, by determining mRNA profile alteration in response to these signals after transcription inhibition. An experimental model which optimizes the conditions for transcription inhibition was established and used for transcriptome profiling with CATMA microarrays. A total of 962 genes were found to be differentially expressed after the treatments, suggesting a possible post-transcriptional control acting upon 204, 245 and 513 transcripts in response to glucose, ABA and the combination glucose + ABA, respectively. The genes were classified by their functions according to Gene Ontology, suggesting a close relation with adaptive response to stress conditions. Apparently, ABA- and glucose-mediated control of mRNA stability follows two opposite strategies, while ABA post-transcriptional responses may also act as a fast negative feedback mechanism over its own core signaling pathway, as a way to desensitize and reset the pathway responses. The second part of this work focused on the participation of microRNAs (miRNAs) pathway in responses mediated by glucose during plant early developmental stages. The mutants ago1-25 and hyl1-2, which are deficient in miRNA activity and biogenesis, respectively, showed hyposensitivity to glucose during a narrow time window of early plant development, between germination and seedling establishment. Such result raises the possibility that miRNA pathway may be involved in the glucose-mediated delay of early seedling development. To obtain further evidences about which miRNAs could be involved, the expression profile of 200 pri-miRs was evaluated by large-scale quantitative real-timepolymerase chain reaction (qRT-PCR) profiling, indicating that 38 pri-miRNA are potentially regulated by glucose, several of which are known to participate directly or indirectly in plant development. The data indicate that deficiency in miRNA machinery leads to an imbalance on glucose control over gene expression during early seedling development / Doutorado / Genetica Vegetal e Melhoramento / Doutor em Genetica e Biologia Molecular
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Etude du rôle de la sumoylation dans le métabolisme des ribonucléoparticules d'ARN messagers (mRNPs) / The role of sumoylation in messenger ribonucleoproteins (mRNPs) metabolismRouvière, Jérôme 24 March 2016 (has links)
Au sein des cellules, les ARNms sont liés par de nombreuses protéines, générant ainsi des particules appelées mRNPs (Ribonucléoparticules de messagers). Leur formation est cotranscriptionnelle, et leur composition va réguler l’ensemble des étapes du métabolisme des ARNms : stabilité, maturation, export, localisation et traduction. Au vu de l’importance de ces mécanismes dans la physiologie cellulaire, le contenu protéique des mRNPs est finement régulé dans le temps et l’espace et fait l’objet de nombreux remodelages. Ces changements de composition dépendent notamment des hélicases, ainsi que des modifications post-traductionnelles ; cependant, ces mécanismes demeurent à caractériser de façon plus approfondie. Une modification post-traductionnelle susceptible de moduler ces remaniements depuis la levure S. cerevisiae jusqu’aux métazoaires est la sumoylation. En effet, la SUMO-protéase Ulp1/SENP2, une enzyme clé de la machinerie de sumoylation, est localisée au panier des pores nucléaires, à proximité d’une plateforme d’ancrage des mRNPs destinées à l’export. Par ailleurs, il a été rapporté chez la levure que des mutants affectant la localisation et la stabilité d’Ulp1 présentent des défauts d’export et de localisation des mRNPs. Au vu de ces données, le laboratoire s’est intéressé aux rôles potentiels de la sumoylation dans le métabolisme de ces particules d’ARNm. Dans ce but, un crible protéomique a été réalisé chez la levure S. cerevisiae afin de comparer la composition des mRNPs entre des cellules sauvages ou mutantes pour Ulp1. Ce crible a mis en évidence un rôle d’Ulp1 dans le recrutement de deux composants des mRNPs, le complexe THO et l’hnRNP Hek2. Le complexe THO est un facteur multiprotéique qui participe à la prévention de l’instabilité génique et contribue à la transcription des ARNms, à l’assemblage des mRNPs et à leur export. L’hnRNP Hek2 est une protéine aux rôles multiples, dont l’association à un ARNm est susceptible de moduler sa stabilité, sa traduction et/ou sa localisation. Des analyses biochimiques nous ont permis de mettre en évidence l’existence de formes sumoylées de la sous-unité Hpr1 du complexe THO ainsi que de l’hnRNP Hek2. Toutes deux sont Ulp1-dépendantes, et interviennent sur la partie C-terminale de ces protéines. Nous avons également mis en évidence que chacune de ces sumoylations contrôle le recrutement de son substrat au sein des mRNPs. L’analyse fonctionnelle d’un mutant affectant la sumoylation d’Hpr1 a identifié cette modification comme nécessaire au recrutement du complexe THO sur une population d’ARNms impliqués dans la résistance au stress acide, autrement dégradés par l’exosome. Ainsi, l’absence de sumoylation d’Hpr1 diminue fortement la viabilité cellulaire en conditions de stress, un phénotype supprimé par l’inactivation de l’exosome. L’étude des effets de la sumoylation d’Hek2 suggère une modulation par SUMO de certaines de ses fonctions, notamment dans la localisation cellulaire des ARNms. L’ensemble de ces données fournit donc les deux premiers exemples de régulation du métabolisme des mRNPs par des événements de sumoylation intervenant au niveau du pore nucléaire. / Within the cells, mRNAs are associated to proteins, thereby generating particles called mRNPs (messenger ribonucleoproteins). mRNPs form in a cotranscriptional manner and their composition defines the fate of mRNAs by modulating the different steps of their metabolism, including their stability, their processing, their export, their localisation and their translation. In view of the importance of such mechanisms for cell physiology, several mechanisms ensure a tight spatio-temporal control of mRNPs composition through multiple mRNP remodelling events. These changes in the protein content of mRNPs depend on helicases and post-translational modifications, but remain to be further investigated. Sumoylation is one of the modifications that could contribute to mRNPs remodelling from yeast (S. cerevisiae) to metazoans. Indeed, it has been reported that the SUMO-protease Ulp1/SENP2, a key enzyme of the sumoylation machinery, is localized at the basket of nuclear pore complexes, in close vicinity with mRNPs committed for export. This particular localization, together with the reported defects in mRNPs export and localisation of yeast mutants affecting Ulp1, prompted the lab to ask whether sumoylation could contribute to mRNP biogenesis. In order to investigate this hypothesis, our lab compared mRNPs composition between wild-type and ulp1 mutant S. cerevisiae yeast strains using a proteomic approach. This screen identified two mRNP components that depend on Ulp1 for their recruitment onto these particles: the THO complex and the hnRNP Hek2. The THO complex is a multi-subunit factor that prevents genome instability and contributes to transcription, mRNP assembly and export. Hek2 has multiple functions in mRNA stability, translation and/or localization. Using biochemical approaches, we have been able to visualize sumoylated versions of the Hpr1 subunit of the THO complex and of the hnRNP Hek2. In both cases, this modification depends on Ulp1 activity and occurs on the C-terminal part of the protein. We further showed that these sumoylation events control THO and Hek2 recruitment onto mRNPs. Functional analysis of a mutant impairing Hpr1 sumoylation revealed that this modification is required for proper recruitment of the THO complex onto a subset of mRNAs involved in acidic stress resistance, which are otherwise degraded by the exosome. Decreased Hpr1 sumoylation results in a strong reduction of viability in acid stress conditions, a phenotype that is rescued by inactivation of the exosome. The investigation of the role of Hek2 sumoylation in mRNPs metabolism suggests that this modification regulates some of Hek2 functions, especially in mRNA localisation. All together, these results provide the two first examples of mRNPs components whose functions are regulated by sumoylation events occurring at the level of nuclear pores.
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A Characterization of Substrates and Factors Involved in Yeast Nonsense-Mediated mRNA Decay: A DissertationBelk, Jonathan Philip 08 January 2002 (has links)
Many intricate and highly conserved mechanisms have evolved to safeguard organisms against errors in gene expression. The nonsense-mediated mRNA decay pathway (NMD) exemplifies one such mechanism, specifically by eliminating mRNAs containing premature translation termination codons within their protein coding regions, thereby limiting the synthesis of potentially deleterious truncated polypeptides. Studies in Saccharomyces Cerevisiae have found that the activity of at least three trans-acting factors, known as UPF1, UPF2/NMD2, and UPF3is necessary for the proper function of the NMD pathway. Further research conducted in yeast indicates that the degradation of substrates of the NMD pathway is dependent on their translation, and that the sub-cellular site of their degradation in the cytoplasm.
Although most evidence in yeast suggests that substrates of the NMD pathway are degraded in the cytoplasm while in association with the translation apparatus, some mammalian studies have found several mRNAs whose decay appears to occur within the nucleus or before their transport to the cytoplasm has been completed. In addition, study of the mammalian TPI mRNA found that this transcript was unavailable as a substrate for the NMD pathway once it had been successfully exported to the cytoplasm, further supporting the notion that the degradation of mammalian substrates of the NMD pathway occurs in association with the nucleus, or during export from the nucleus to the cytoplasm.
To determine if yeast cytoplasmic nonsense-containing mRNA can become immune to the NMD pathway we examined the decay kinetics of two NMDS substrate mRNAs in response to repressing or activating the NMD pathway. Both the ade2-1 and pgk1-UAG-2nonsense-containing mRNAs were stabilized by repressing this pathway, while activation of NMD resulted in the rapid and immediate degradation of each transcripts. These findings demonstrate that nonsense-containing mRNAs residing in the nucleus are potentially susceptible to NMD at each round of translation.
The remainder of this thesis utilizes protein overexpression studies to gain understanding into the function of factors related to the processes of nonsense-mediated mRNA decay and translation in Saccharomyces cerevisiae. Overexpression of a C-terminal truncated form of Nmd3p was found to be dominant-negative for cell viability, translation and the normal course of rRNA biogenesis.
Overexpression studies conducted with mutant forms of the nonsense-mediated mRNA decay protein Upf1p, found that overexpression of mutants in the ATP binding and ATP hydrolysis region ofUpflp were dominant-negative for growth in an otherwise wild-type yeast strain. Furthermore, overexpression of the ATP hydrolysis mutant of Upf1p (DE572AA), resulted in the partial inhibition of NMD and a general perturbation of the translation apparatus. These results support previous studies suggesting a general role for Upf1p function in translation.
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Characterization of New Factors in the 18S Nonfunctional Ribosomal RNA Decay Pathway in S. cerevisiae: A DissertationMerrikh, Christopher N. 05 March 2012 (has links)
The molecular biology revolution of the 1960s has given rise to an enormous body of literature describing, in great detail, the inner workings of the cell. Over the course of the past 50 years, and countless hours at the bench, biologists have used the implications of basic research to produce vaccines, antibiotics, and other therapies that have improved both the quality and duration of our lives. Despite these incredible advances, basic questions remain unanswered. In even the simplest model organism, hundreds of essential genes have never been studied. Moreover, the central dogma of molecular biology—DNA to RNA to Protein—is understood largely in terms of how the cell functions under ideal conditions. What happens when things go wrong?
This study seeks to characterize one of the cell’s contingency plans—a quality control measure for the eukaryotic ribosome. Today, despite the abundance of ribosomes in all cells, we are only beginning to understand the details of how they function, and the mechanisms that monitor their behavior. Recently, inactivated ribosomes were shown to be destroyed by the cell's own quality control measures, potentially preventing them from harming the cell. This system, dubbed 18S Nonfunctional rRNA Decay, is known to utilize a pair of ribosome-binding proteins to carry out its function. Yet the pathway still functions, albeit more slowly, in the absence of these two proteins, suggesting that other components must exist. The work discussed here is largely concerned with identifying these other factors, characterizing their activities, and determining how the 18S Nonfunctional rRNA Decay pathway impacts the health of the cell.
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When mRNA folding rules gene expression : lessons from type I toxin-antitoxin systems / Lorsque le repliement de l’ARNm gouverne l’expression des gènes : leçons tirées des systèmes toxine-antitoxine de type IMasachis Gelo, Sara 18 October 2018 (has links)
Les systèmes toxine-antitoxine (TA) sont de petits modules génétiques largement présents dans les génomes bactériens. Ils codent pour une petite protéine toxique et une antitoxine. Ils sont classés en six types en fonction de la nature et du mode d'action de l'antitoxine. Ce travail a porté sur l'étude du type I, pour lequel l'antitoxine est un ARN antisens qui cible l'ARNm de la toxine afin de réprimer son expression. Au cours de cette thèse, nous avons étudié le système aapA3/IsoA3, codé sur le chromosome du pathogène gastrique humain Helicobacter pylori. À ce jour, la plupart des systèmes TA ont été étudiés à l'aide de systèmes d'expression artificiels, qui ne permettent pas de caractériser la régulation transcriptionnelle ou post-transcriptionnelle. En utilisant la létalité induite par l’expression chromosomique de la toxine obtenue en absence d’antitoxine, nous avons développé une sélection génétique de mutants suppresseurs révélés par séquençage haut-débit. Cette approche, appelée FASTBAC-Seq, nous a permis de cartographier une myriade de déterminants de toxicité localisés dans les régions codantes et non codantes du gène de la toxine AapA3. En particulier, certaines de ces mutations ont révélé l'existence de tige-boucles ARN transitoires qui agissent de manière co-transcriptionnelle pour empêcher l'initiation de la traduction pendant la synthèse de l'ARNm codant pour la toxine. Ces structures ARN métastables fonctionnelles sont nécessaires pour découpler les processus de transcription et de traduction et permettent la présence de ces gènes toxiques sur le chromosome bactérien. Bien que les ARNm non traduits deviennent rapidement instables, nos travaux ont également révélé l'existence de deux tige-boucles protectrices situées aux deux extrémités de l'ARNm. Ces structures secondaires empêchent des activités exonucléolytiques agissant en 5' et 3'. Dans l’ensemble, notre travail met en évidence les conséquences de la forte pression de sélection pour limiter l'expression des toxines sous laquelle évoluent les systèmes TA. Cela nous a permis de mieux comprendre l’influence du repliement secondaire des ARNm, non seulement lors de la régulation posttranscriptionnelle, mais aussi co-transcriptionnelle de l’expression de cette famille particulière de gènes. Ces caractéristiques de régulation basées sur l'ARN peuvent être exploitées à l'avenir pour des applications biotechnologiques (p. ex., production accrue de protéines par stabilisation d'ARNm) ou biomédicales (p.ex., développement de stratégies antimicrobiennes alternatives pour l'activation de la synthèse de toxines). / Toxin-antitoxin (TA) systems are small genetic modules widely present in bacterial genomes. They usually code for a small toxic protein and its cognate antitoxin and can be classified into six types depending on the nature and mode of action of the antitoxin. This work focuses on the study of type I, for which the antitoxin is an antisense RNA that targets the toxin mRNA to inhibit its expression. We characterized the aapA3/IsoA3 system, encoded on the chromosome of the human gastric pathogen Helicobacter pylori. To date, most TAs have been studied using artificial expression systems, which do not allow the characterization of transcriptional or post-transcriptional regulation. Taking advantage of the lethality induced by the toxin chromosomal expression in the absence of antitoxin, we developed a high-throughput genetic selection of suppressor mutations revealed by Next-Generation Sequencing. This approach, named FASTBAC-Seq, allowed us to map a myriad of toxicity determinants located in both, coding and noncoding regions, of the aapA3 toxic gene. More precisely, some suppressor mutations revealed the existence of transient RNA hairpins that act co-transcriptionally to prevent translation initiation while the toxinencoding mRNA is being made. Such functional RNA metastable structures are essential to uncouple the transcription and translation processes and allow the presence of these toxic genes on bacterial chromosomes. Although untranslated mRNAs become rapidly unstable, our work also revealed the presence of two protective stem-loops located at both mRNA ends that prevent from both, 5’ and 3’ exonucleolytic activity. Altogether, our work evidenced the consequences of the strong selection pressure to silence toxin expression under which the TAs evolve, and highlighted the key role of mRNA folding in the co- and post-transcriptional regulation of this family of genes. These RNA-based regulatory mechanisms may be exploited in the future for biotechnological (e.g., increased protein production through mRNA stabilization) or biomedical (e.g., development of alternative antimicrobial strategies aiming at the activation of toxin synthesis) applications.
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Biogênese, estabilidade e localização sub-celular de RNAs não-codificadores longos expressos em regiões intrônicas do genoma humano / Biogenesis, stability and sub-cellular localization of long non-coding RNAs expressed in intronic regions of the human genomeOliveira, Ana Carolina Ayupe de 26 March 2012 (has links)
Trabalhos recentes indicam que a maior parte do transcriptoma de células de mamíferos é composto por RNAs não-codificadores de proteínas (ncRNAs). Nosso grupo tem identificado e caracterizado ncRNAs longos (>200 nt), sem splicing, expressos em regiões intrônicas de genes codificadores de proteína. Contudo, a biogênese, processamento e localização sub-celular desta classe de RNAs permanecem desconhecidos. Este trabalho teve como objetivos i) investigar a contribuição da RNA Polimerase II (RNAP II) na transcrição de ncRNAs intrônicos, ii) avaliar a meia-vida destes ncRNAs em relação a mRNAs, e iii) verificar a distribuição sub-celular de ncRNAs intrônicos. Os resultados obtidos indicaram que ncRNAs intrônicos são predominantemente transcritos pela RNAP II a partir de regiões promotoras funcionalmente semelhantes as que controlam a transcrição de mRNAs. Ensaios de estabilidade revelaram que, em média, ncRNAs intrônicos possuem meia-vida igual ou maior (3,4h a 4,2h) do que mRNAs (3,1h). A maior parte dos ncRNAs intrônicos possui estrutura cap 5\', sugerindo que sejam estabilizados para desempenhar papéis na biologia da célula que não dependam de um rápido turnover. A maior parte dos ncRNAs intrônicos é exportada para o citoplasma, indicando que devam exercer alguma função biológica neste compartimento. Em conjunto, este trabalho fornece informações novas a respeito da biogênese, estabilidade e localização sub-celular ncRNAs intrônicos expressos em células humanas, contribuindo para avançar o conhecimento sobre esta classe de transcritos celulares. / Recent studies have shown that most of the mammalian transcriptome is comprised of non-coding RNAs (lncRNAs). Our group has identified and characterized long (>200 nt), unspliced lncRNAs expressed in intronic regions of protein coding genes. However, the biogenesis, processing, stability and subcellular localization of members from this RNA class remain unknown. The aims of this work were i) to investigate the contribution of RNA Polymerase II (RNAP II) to the transcription of intronic, ii) to evaluate the half-life of these ncRNAs relative to mRNAs, and iii) determine their subcellular distribution. Our results indicate that intronic ncRNAs are predominantly transcribed by RNAP II from promoter regions functionally similar to those that control the transcription of mRNAs. Stability assays revealed that intronic ncRNAs have an average half-life equal or greater (3.4h to 4.2h) than mRNAs (3.1h). The majority of intronic ncRNAs have 5\' cap modification suggesting that these transcripts are stabilized, possibly to exert roles in the biology of the cell that does not depend on a rapid turnover. Although intronic ncRNAs do not encode proteins, most of these transcripts are transported to the cytoplasm which indicates that they may perform some biological function in this compartment. Altogether, this study reveals with novel information regarding the biogenesis, stability and subcellular localization of intronic ncRNAs expressed in human cells, thus contributing to advance the knowledge on this class of cellular transcripts.
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Charakterisierung der chloroplastidären RNA-Bindeproteine CP33A und CP33B in Arabidopsis thalianaTeubner, Marlene 29 January 2019 (has links)
Plastiden enthalten ihr eigenes Genom, das u.a. für Untereinheiten des photosynthetischen Apparates kodiert. Die Expression dieses Apparates wird hauptsächlich posttranskriptionell reguliert. Dafür notwendige Faktoren sind vor allem RNA-Bindeproteine, welche fast ausschließlich kernkodiert und posttranslational in die Plastiden importiert werden. Dazu gehören auch die äußerst abundanten chloroplastidären Ribonukleoproteine (cpRNPs). Die bisher näher untersuchten Mitglieder der cpRNP-Familie aus Arabidopsis thaliana sind an der Prozessierung und Stabilisierung von plastidären Transkripten beteiligt und phylogenetisch eng miteinander verwandt. In dieser Studie wurden zwei noch unbekannte Mitglieder der cpRNP Familie, CP33A und CP33B, näher untersucht.
CP33A ist ein essentielles Protein der Chloroplastenbiogenese. Mutanten von CP33A keimen nur in der Gegenwart einer externen Kohlenstoffquelle. Die Blätter sind albinotisch, in ihrer Struktur anomal und das gesamte Wachstum ist stark eingeschränkt. Untersuchungen der RNA-Interaktionspartner von CP33A durch RIP-Chip-Analysen (RNA-Immunopräzipitation und Chip-Hybridisierung) zeigen, dass CP33A mit allen mRNAs assoziiert. Des Weiteren führt der Verlust von CP33A zu einer starken Reduktion vieler Transkripte, vor allem RNAs, die durch die plastidär kodierte RNA Polymerase (PEP) transkribiert werden und unprozessierte Vorläufer-Transkripte.
CP33B interagiert ebenfalls mit multiplen plastidären RNAs. Dabei zeigt CP33B eine Präferenz für psbA. Feinkartierung der CP33B-Bindung innerhalb des psbA Leserahmens verdeutlichten, dass CP33B vor allem mit dem 3´Ende des Transkriptes interagiert. Phänotypische und genetische Untersuchungen der cp33b-Nullmutante ließen keinen vom Wildtyp abweichenden Phänotyp identifizieren und zeigten dass CP33B keinen essentiellen Einfluss auf die Proteinakkumulation photosynthetischer Untereinheiten, die Expression plastidärer Transkripte, das Spleißen und die Edierung seiner Ziel-RNAs hat. / Plastids harbour their own genome, which encodes for essential subunits of the photosynthetic apparatus. The expression of these subunits is mainly regulated on the posttranscriptional level. The important factors for posttranscriptional processing are RNA-binding proteins (RBPs), which are almost exclusively nuclear-encoded and imported posttranslational into the plastids. Among them are the chloroplast ribonucleoproteins (cpRNPs). The cpRNPs are a family of highly abundant RNA-binding proteins found in the chloroplast of land plants. Members of the Arabidopsis thaliana cpRNP family, that have been investigated in more detail, are involved in processing and stabilization of plastid transcripts and are phylogenetically closely related. In this study two unknown members of the cpRNPs, CP33A and CP33B, which cluster outside of this phylogenetic group, are investigated.
CP33A is essential for chloroplast biogenesis. Null alleles of CP33A only germinate in the presence of an external carbon source. cp33a seedlings are albino, show strong growth inhibition and an abnormal leaf structure. Investigating RNA-ligands of CP33A using RIP-Chip (coimmunoprecipitation coupled to microarray analysis) shows an association with all chloroplast mRNAs. The loss of CP33A leads to a reduction of almost all transcripts, predominantly affecting RNAs transcribed by the plastid-encoded RNA polymerase (PEP) and unspliced and unprocessed precursor mRNAs.
CP33B also interacts with multiple plastid RNAs. The main target is the mRNA of psbA. More than 90% of the stromal psbA mRNA is associated with CP33B. Fine mapping efforts suggest that CP33B preferentially interacts with the 3’-end of the psbA reading frame. Phenotypic and genetic analyses of cp33b-null mutants do not show any differences compared to wild-type plants. CP33B has no essential impact on: Protein accumulation of photosynthetic subunits, expression of plastid transcripts, RNA-splicing or RNA-editing of its target RNAs.
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Aspekte der plastidären TranskriptionHertel, Stefanie 13 August 2009 (has links)
In dieser Arbeit wurde die plastidäre Genexpression hinsichtlich zweier Aspekte untersucht: der Cytokinineinfluss auf die plastidäre Transkription und ihrer Komponenten sowie eine in vivo-Charakterisierung von PrpoB-345, des Promotors des rpoB-Operons im Tabak. Cytokinine beeinflussen die Chloroplastenbiogenese und –funktion. Um den Einfluss von Cytokinin auf die plastidäre Genexpression zu untersuchen, wurden run-on-Transkriptionsassays und quantitative real-time RT-PCR von BA-behandelten seneszenten Tabakblättern und sieben-Tage-alten Arabidopsis- und Tabakpflanzen durchgeführt. Zeitreihenanalysen zeigten eine Aktivierung der plastidären Transkription in jungen Pflanzen und im seneszenten Tabak 2 h bzw. 3 h nach BA-Applikation. Abgeschnittene Blätter von Tabakmutanten mit konstitutiv reduziertem Cytokiningehalt antworteten bereits nach 30 min der Hormonbehandlung. Es gibt jedoch keinen eindeutigen Hinweis für eine direkte Korrelation zwischen der Expression der nukleär kodierten Phagentyp-RNA-Polymerasen und der BA-induzierten transkriptionellen Aktivierung der Plastidengene. Zusammengefasst, scheint die Antwort auf exogenes Cytokinin vom physiologischen Status der Chloroplasten, die von der Pflanzenart sowie vom endogenen Cytokiningehalt beeinflusst werden, abzuhängen. Plastidäre Gene höherer Pflanzen werden von mindestens zwei RNA-Polymerasen transkribiert: die plastidär kodierte RNA-Polymerase vom Bakterientyp (PEP) und die kernkodierte Phagentyp-RNA-Polymerase (NEP). NEP transkribiert das rpoB-Operon, das drei von vier Untereinheiten der PEP kodiert. Transkriptions- und Transkriptanalysen von rpoB-Promotor-Deletionsmutanten ergaben Hinweise auf mögliche Regulationsstellen der Kontrolle der rpoB-Transkription. Neben PrpoB-345 konnten zwei weitere Promotoren kartiert werden. Einer von ihnen ist ein putativer PEP-Promotor, der auf autoregulatorische Rückkopplungsmechanismen bei der PEP-Expression hindeutet. / In this study, plastid gene expression was analyzed focusing on two aspects: the effect of cytokinin on plastid gene transcription and its components, and the in vivo characterization of PrpoB-345, the promoter of the rpoB operon in tobacco. Cytokinins are involved in the control of chloroplast biogenesis and function. To study cytokinin effects on plastid gene expression, chloroplast run-on transcription and quantitative real-time RT-PCR from senescent tobacco leaves as well as Arabidopsis and tobacco seedlings after BA treatment were performed. Analyses of time series revealed that BA-induced changes in plastid gene expression are seemingly under circadian and homeostatic control. After 2 h and 3 h of incubation with cytokinin, a stimulation of chloroplast transcription could be observed in seedlings and senescent leaves, respectively. Detached leaves of tobacco mutants with reduced endogenous cytokinin content responded even faster to BA (30 min). There is no indication of direct correlation of the expression of nuclear-encoded plastid phage-type RNA-polymerases and the BA-induced transcriptional activation of plastid genes. In summary, the responsiveness to exogenous cytokinin depends on the physiological status of chloroplasts influenced by plant species and endogenous cytokinin pool. Plastid genes of higher plants are transcribed by at least two RNA polymerases: the plastid-encoded eubacterial-type RNA polymerase (PEP) and the nucleus-encoded phage-type RNA polymerase (NEP). NEP transcribes the rpoB operon encoding three of four subunits of PEP. Transcription and transcript analyses from rpoB promoter deletion mutants indicated putative regulatory sites of control of rpoB transcription which may also interact with (cytokinin-regulated) specificity factors. Beside PrpoB-345, two additional rpoB promoters could be mapped. One of them is a putative PEP promoter which may imply autoregulatory loops of PEP expression.
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