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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

TCP6, a regulator in Arabidopsis gametophyte development and DNA damage response

Ku, Chuan-Chih January 2014 (has links)
Plants have developed intricate mechanisms to control growth in response to a variety of environmental cues, to compensate its immobility and to survive in both normal and adverse conditions. The TCP proteins are a family of plant-specific, basic helix-loop-helix (bHLH) transcription factors that involve in different aspects in plant growth and developmental control. The Arabidopsis TCP20 has been shown to involve in coordinating cell growth and proliferation, and in growth arrest in response to DNA double-stranded breaks (DSB). In this thesis, the main interest is to examine the function of Arabidopsis TCP6, which shares the highest homology with TCP20, and like TCP20, contains a putative ATM phosphorylation motif that suggests potential involvement in the ATM/ATR-mediated DSB responses. Expressional analysis including transcript measurement and reporter gene tagging demonstrated that TCP6 is expressed in flowers, in particular in the first mitotic event of pollen and ovule/embryo sac development, indicating that TCP6 potentially involves in regulating the mitotic cell cycle during gametophyte development. Yet no gametophytic or fertility-affecting mutant phenotype was observed in the tcp6 single and tcp6/tcp20 double mutants, which may be due to high functional redundancy. The tcp6/tcp20 double mutant seedlings exhibited significantly higher growth performances in true leaf growth compared to wild type when treated with gamma radiation, implying that both functional TCP6 and TCP20 are involved in response to gamma radiation-generated DSBs. The work of this thesis provides the first expressional and functional characterizations of TCP6, with the results suggesting that TCP6 and other class I TCPs play a role in regulating growth under both normal and stress conditions.
2

Investigating the roles of the Srs2 and Pif1 helicases in DNA double-strand break repair in Saccharomyces cerevisiae

Vasianovich, Yuliya January 2015 (has links)
DNA double strand breaks (DSBs), which may occur during DNA replication or due to the action of genotoxic agents, are extremely dangerous DNA lesions as they can cause chromosomal rearrangements and cell death. Therefore, accurate DSB repair is vital for genome stability and cell survival. Two main mechanisms serve to repair DNA DSBs: non-homologous end joining, which re-ligates DNA ends together, and homologous recombination (HR), which restores broken DNA using homologous sequence as a template for repair. One-ended DSBs are a subject for the specialised HR-dependent repair pathway known as break-induced replication (BIR). At low frequency, DNA breaks can also be healed by telomerase, which normally extends telomeres at natural chromosome ends, but may also add de novo telomeres to DSBs due to their similarity to chromosome ends. De novo telomere addition is a deleterious event, which is effectively inhibited by the nuclear Pif1 (nPif1) helicase phosphorylated at the TLSSAES motif in response to DNA damage. In this study, it is reported that the same regulatory motif of nPif1 is also required for DSB repair via BIR. The requirement of the nPif1 TLSSAES sequence in BIR is dependent on the functional DNA damage response (DDR). Thus, nPif1 phosphorylation by the DDR machinery might mediate the role of nPif1 in BIR. In contrast, the nPif1 regulatory motif is not essential for BIR at telomeres in cells lacking telomerase. These observations indicate that the mechanism of nPif1 function in DSB repair via BIR and in BIR at telomeres might be different. In this work, a protocol for nPif1 pull-down was optimized to reveal the mechanism of the phosphorylation-dependent nPif1 functions in cells undergoing DNA repair, i. e. the mechanism of nPif1-mediated inhibition of de novo telomere addition and promoting DSB repair via BIR. In future, this protocol can be used to dissect the role of nPif1 in DNA repair through the identification of its potential interacting partners. The Srs2 helicase negatively regulates HR via dismantling Rad51 filaments. According to preliminary data from the laboratory of Sveta Makovets, Srs2 also promotes de novo telomere addition at DSBs in a Rad51-dependent manner. The work presented here establishes that Srs2 is dispensable for telomerase-mediated addition of TG1-3 repeats to DSBs. Instead, Srs2 is required for the reconstitution of the complementary DNA strand after telomerase action, thus ensuring the completion of de novo telomere addition. Overall, this study demonstrates that recombination-dependent DSB repair and de novo telomere addition share common regulatory components, i. e. the nPif1 helicase phosphorylated in response to DNA damage and the Srs2 helicase. Phosphorylated nPif1 promotes DSB repair via BIR in addition to its known role in inhibition of telomerase at DSBs, whereas Srs2 uses its well established ability to remove Rad51 from ssDNA to promote the restoration of dsDNA and thus to complete de novo telomere addition.
3

Le maintien de la stabilité génomique du plastide : un petit génome d’une grande importance

Lepage, Étienne 04 1900 (has links)
Chez les plantes, le génome plastidique est continuellement exposé à divers stress mutagènes, tels l’oxydation des bases et le blocage des fourches de réplication. Étonnamment, malgré ces menaces, le génome du plastide est reconnu pour être très stable, sa stabilité dépassant même celle du génome nucléaire. Néanmoins, les mécanismes de réparation de l’ADN et du maintien de la stabilité du génome plastidique sont encore peu connus. Afin de mieux comprendre ces processus, nous avons développé une approche, basée sur l’emploi de la ciprofloxacine, qui nous permet d’induire des bris d’ADN double-brins (DSBs) spécifiquement dans le génome des organelles. En criblant, à l’aide de ce composé, une collection de mutants d’Arabidopsis thaliana déficients pour des protéines du nucléoïde du plastide, nous avons identifié 16 gènes vraisemblablement impliqués dans le maintien de la stabilité génomique de cette organelle. Parmi ces gènes, ceux de la famille Whirly jouent un rôle primordial dans la protection du génome plastidique face aux réarrangements dépendants de séquences de microhomologie. Deux autres familles de gènes codant pour des protéines plastidiques, soit celle des polymérases de types-I et celle des recombinases, semblent davantage impliquées dans les mécanismes conservateurs de réparation des DSBs. Les relations épistatiques entre ces gènes et ceux des Whirly ont permis de définir les bases moléculaires des mécanismes de la réparation dépendante de microhomologies (MHMR) dans le plastide. Nous proposons également que ce type de mécanismes servirait en quelque sorte de roue de secours pour les mécanismes conservateurs de réparation. Finalement, un criblage non-biaisé, utilisant une collection de plus de 50,000 lignées mutantes d’Arabidopsis, a été réalisé. Ce criblage a permis d’établir un lien entre la stabilité génomique et le métabolisme des espèces réactives oxygénées (ROS). En effet, la plupart des gènes identifiés lors de ce criblage sont impliqués dans la photosynthèse et la détoxification des ROS. Globalement, notre étude a permis d’élargir notre compréhension des mécanismes du maintien de la stabilité génomique dans le plastide et de mieux comprendre l’importance de ces processus. / The plant plastidial genome is constantly threatened by many mutagenic stresses, such as base oxidation and replication fork stalling. Despite these threats, the plastid genome has long been known to be more stable than the nuclear genome, suggesting that alterations of its structure would have dramatic consequences on plant fitness. At the moment, little is known about the genes and the pathways allowing such conservation of the organelle genome sequences. To gain insight into these mechanisms, we developed an assay which uses ciprofloxacin, a gyrase inhibitor, to generate DNA double-strand breaks (DSBs) exclusively in plant organelles. By screening mutants deficient for proteins composing the plastid nucleoid on ciprofloxacin, we were able to identify 16 candidate genes, most likely involved in the repair of DSBs in plastid. Among these genes, those of the Whirly family of single-stranded DNA binding proteins are shown to be key factors in protecting the genome from error-prone microhomology mediated repair (MHMR). Two other family of proteins, the plastid type-I polymerases and the plastid recombinases, seem to be involved in the conservative repair pathways. The evaluation of the epistatic relationship between those two genes and the Whirly genes led us to define the molecular basis of MHMR and to propose that they might act as a backup system for conservative repair pathways. Finally, a non-biased screen, using 50,000 different insertion lines, allowed the identification of numerous genes that were already associated with ROS homeostasis, suggesting a link between DNA repair and ROS imbalance. Globally, our study shed light on the mechanisms that allow the maintenance of plastid genome, while explaining the importance of such conservation of the plastid genome.
4

The Role of Saccharomyces Cerevisiae MRX Complex and Sae2 in Maintenance of Genome Stability

Ghodke, Indrajeet Laxman January 2015 (has links) (PDF)
In eukaryotes, the repair of DSBs is accomplished through two broadly defined processes: Non-Homologous End Joining (NHEJ) and Homologous Recombination (HR). The central step of HR is pairing and exchange of strands between two homologous DNA molecules, which is catalyzed by the conserved Rad51/RecA family of proteins. Prior to this step, an essential step in all HR pathways i.e. 5'→3' resection of broken DNA ends to generate 3' single stranded DNA tails. At the molecular level, initiation of DNA end resection is accomplished through the concerted action of MRX complex (Mre11, Rad50 and Xrs2) and Sae2 protein. To elucidate the molecular basis underlying DSB end resection in S. cerevisiae mre11 nuclease deficient mutants, we have performed a comprehensive analysis of the role of S. cerevisiae Mre11 (henceforth called as ScMre11) in the processing of DSB ends using a variety of DNA substrates. We observed that S. cerevisiae Mre11(ScMre11) exhibits higher binding affinity for single- over double-stranded DNA and intermediates of recombination and repair and catalyzes robust unwinding of substrates possessing a3' single-stranded DNA overhang but not of 5' overhangs or blunt-ended DNA fragments. Furthermore, reconstitution of DSB end resection network in-vitro revealed that Rad50, Xrs2, and Sae2 potentiated the DNA unwinding activity of Mre11. Since the exonuclease activity of Mre11 is of the opposite polarity to that expected for resection of DSBs, unwinding activity of Mre11 in conjunction with Rad50, Xrs2, and Sae2 might provide an alternate mechanism for the generation of ssDNA intermediates for DSB end repair and HR. Additionally, ScMre11 displays strong homotypic as well as heterotypic interaction with Sae2. In summary, our results revealed important insights into the mechanism of DSB end processing and support a model in which Sae2, Rad50, and Xrs2 positively regulate the ScMre11-mediated DNA unwinding activity via their direct interactions or through allosteric effects on the DNA or cofactors. Prompted by the closer association of MRX and Sae2 during DSB end processing, we asked whether Sae2 and its endonuclease activity is required for cellular response to replication stress caused by DNA damage. Toward this end, we examined the sensitivity of S. cerevisiae wild type, sae2Δ and various SAE2 mutant strains defective in phosphorylation and nuclease activity in the presence of different genotoxic agents, which directly or indirectly generate DSBs during replication. We found that S. cerevisiae lacking SAE2 show decreased cell viability, altered cell cycle dynamics after DNA damage, and more specifically, that Sae2 endonuclease activity is essential for these biological functions. To corroborate the genetic evidences for role of SAE2 during replicative stress, we investigated SAE2 functions in-vitro. For this, we purified native Sae2 protein and nuclease dead mutant of Sae2 i.e. sae2G270D. Our studies revealed dimeric forms of both the wild type and mutant forms of Sae2. Furthermore, Sae2 displays higher binding affinity and catalytic activity with branched DNA structures, such as Holliday junction and replication forks. By using nuclease dead Sae2 protein i.e. sae2G270D, we confirmed that the endonuclease activity is not fortuitous and is intrinsic to Sae2 polypeptide. Furthermore, nuclease-defective Mre11 stimulates Sae2endonuclease activity. Mapping of the cleavage sites of Sae2 revealed a distinct preference for cleavage on the 5' end of the Holliday junction, suggesting the importance of Sae2 nuclease during recombination mediated restart of the reversed replication fork. In summary, our data clearly demonstrate a previously uncharacterized role for Sae2 nuclease activity in resection of DSB ends, processing of intermediates of DNA replication/repair and attenuation of DNA replication stress-related defects in S. cerevisiae.

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