166 resultados para S. pombe


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Chez Schizosaccharomyces pombe, le cycle méiotique est le mode de division cellulaire spécialis qui permet la formation d’ascospores sistantes à différents stress lorsque les conditions environnementales ne sont pas propices à la multiplication cellulaire. Lors de mes travaux de thèse, mes objectifs consistaient à caractériser le rôle et le mécanisme d’action de la protéine Cuf2 lors du cycle méiotique chez S. pombe. Mes sultats ont montré que le gène cuf2[indice supérieur +] était exprimé exclusivement lors des divisions méiotiques et que la protéine se co-localisait de manière constitutive avec le matériel génétique. De plus, mes sultats ont dévoilé que Cuf2 participait à l’activation et à la répression de plusieurs gènes méiotiques selon un mécanisme de nature transcriptionnelle en sassociant spécifiquement avec leur région promotrice. Par la suite, mes sultats ont mis en évidence que Cuf2 interagissait physiquement avec Mei4, un facteur de transcription méiose-spécifique, au noyau des cellules méiotiques. Notamment, mes sultats ont montré que la présence de Mei4 et de son motif de liaison à l’ADN dénommé FLEX étaient nécessaires afin que Cuf2 puisse sassocier au promoteur de son gène cible fzr1[indice supérieur +] afin d’en activer l’expression. L’ensemble de mes sultats indiquent que Cuf2 et Mei4 interagissent aux promoteurs de certains gènes lors des divisions méiotiques afin d’en co-activer l’expression. D’ailleurs, mes sultats ont également montré que la fonction de Cuf2 était importante à la formation d’ascospores et à leur viabilité ; en absence de Cuf2, la majorité des ascospores présentent diverses aberrations et plus de la moitié d’entre elles sont non-viables. Globalement, mes sultats démontrent que Cuf2 est un régulateur critique de l’expression génique lors du cycle méiotique et que cette fonction est essentielle à la sporulation chez S. pombe.

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La synthèse d’un ARNm eucaryotique dépend d’une suite d’étapes qui inclut notamment l’ajout d’une queue poly(A) à son extrémité 3’. Au noyau, la queue poly(A) des ARNms est liée par PABPN1 (poly(A)-binding protein nuclear 1). PABPN1 fut notamment caractérise, d’après des études in vitro, pour stimuler la réaction de polyadénylation en plus de contrôler la taille ultime des queues poly(A). Cela dit, la ou les fonction(s) biologique(s) de PABPN1 est/sont cependant largement méconnue(s). Chez Schizosaccharomyces pombe (S. pombe), Pab2 est l’orthologue présumé de PABPN1. Or, mes travaux indiquent que Pab2 est fonctionnellement différente de PABPN1 à l’égard de son rôle sur le processus général de polyadénylation. Ainsi, in vivo, l’absence de Pab2 entraîne l’expression et l’accumulation d’un groupe limité d’ARNs hyperadénylés parmi lesquels se trouvent de nombreux petits ARNs nucléolaires non-codants (snoRNAs) lesquels constituent normalement un groupe abondant d’ARN poly(A)-. Mes sultats supportent ainsi un mécanisme par lequel des snoRNAs immatures poly(A)+, sont convertis en une forme mature poly(A)- par le biais de Pab2 et de l’activité 3’-->5’ exoribonucléase de l’exosome à ARN. Ces observations sont inusitées dans la mesure où elles associent une fonction pour une PABP dans la maturation d'ARNs non-codants, contrairement à la notion que les PABPs travaillent exclusivement au niveau des ARNms, en plus de procurer une nouvelle perspective face au mécanisme de recrutement de l'exosome à ARN à des substrats poly(A)+. La formation de l’extrémité 3’ d’un ARN est un processus étroitement lié à la terminaison de sa transcription. Pour les gènes codants, la terminaison transcriptionnelle est initiée par le clivage endonucléolytique du pré-ARNm. Ce clivage génère une extrémité d’ARN 5’ libre laquelle sera ciblée par une exoribonucléase 5'-->3’ afin de mener à bien l’éviction de l’ARNPII de la matrice d’ADN (terminaison transcriptionnelle de type torpedo). Au contraire, chez Saccharomyces cerevisiae (S. cerevisiae), la majorité des gènes non-codants, incluant les snoRNAs, dépendent plutôt du complexe NNS (Nrd1/Nab3/Sen1) pour la terminaison de leur transcription. Cela dit, il est incertain si le complexe NNS est conservé chez d’autres espèces. À cet égard, mes travaux indiquent que S. pombe est dépourvu d’un mécanisme de terminaison de la transcription de type NNS. Seb1, l’orthologue présumé de Nrd1 chez S. pombe, sassocie plutôt à la machinerie de clivage et de polyadénylation et influence la slection de site de polyadénylation à l’échelle du génome. Mes sultats supportent ainsi l’utilisation de la machinerie de maturation 3’ des ARNms comme principal vecteur de terminaison transcriptionnelle chez S. pombe et identifient Seb1 comme un facteur clé de ce processus. L’évènement transcriptionnel étant hautement complexe, des erreurs peuvent arriver de manière stochastique menant à l’accumulation d’ARNs aberrants potentiellement néfastes pour la cellule. Or, mes travaux ont mis en lumière un mécanisme de surveillance co-transcriptionnel des ARNs impliquant l’exosome à ARN et lié à la terminaison de la transcription. Pour ce faire, l’exosome à ARN promeut la terminaison transcriptionnelle via la dégradation d’une extrémité 3’ libre d’ARN devenue émergente suite au recul de l’ARNPII le long de la matrice d’ADN (phénomène de backtracking). Mes sultats supportent ainsi une terminaison de la transcription de type torpedo invers (3'-->5’) réévaluant par la même occasion le concept voulant que la terminaison de la transcription seffectue uniquement selon une orientation 5’-->3’. Somme toute, mes travaux de doctorat auront permis d’identifier et de caractériser plus en détail les facteurs et mécanismes impliqués dans la maturation 3’ et la terminaison de la transcription des gènes codants et non-codants chez l’organisme modèle S. pombe.

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The Schizosaccharomyces pombe Mei2 gene encodes an RNA recognition motif (RRM) protein that stimulates meiosis upon binding a specific non-coding RNA and subsequent accumulation in a “mei2-dot” in the nucleus. We present here the first systematic characterization of the family of proteins with characteristic Mei2-like amino acid sequences. Mei2-like proteins are an ancient eukaryotic protein family with three identifiable RRMs. The C-terminal RRM (RRM3) is unique to Mei2-like proteins and is the most highly conserved of the three RRMs. RRM3 also contains conserved sequence elements at its C-terminus not found in other RRM domains. Single copy Mei2-like genes are present in some fungi, in alveolates such as Paramecium and in the early branching eukaryote Entamoeba histolytica, while plants contain small families of Mei2-like genes. While the C-terminal RRM is highly conserved between plants and fungi, indicating conservation of molecular mechanisms, plant Mei2-like genes have changed biological context to regulate various aspects of developmental pattern formation.

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Understanding the process of cell division is crucial for modern cancer medicine due to the central role of uncontrolled cell division in this disease. Cancer involves unrestrained proliferation as a result of cells loosing normal control and being driven through the cell cycle, where they normally would be non-dividing or quiescent. Progression through the cell cycle is thought to be dependent on the sequential activation of cyclin-dependent kinases (Cdks). The full activation of Cdks requires the phosphorylation of a conserved residue (threonine-160 on human Cdk2) on the T-loop of the kinase domain. In metazoan species, a trimeric complex consisting of Cdk7, cyclin H and Mat1 has been suggested to be the T-loop kinase of several Cdks. In addition, Cdk7 have also been implicated in the regulation of transcription. Cdk7, cyclin H, and Mat1 can be found as subunits of general transcription factor TFIIH. Cdk7, in this context, phosphorylates the Carboxy-terminal domain (CTD) of the large subunit of RNA polymerase II (RNA pol II), specifically on serine-5 residues of the CTD repeat. The regulation of Cdk7 in these and other functions is not well known and the unambiguous characterization of the in vivo role of Cdk7 in both T-loop activation and CTD serine-5 phosphorylation has proved challenging. In this study, the fission yeast Cdk7-cyclin H homologous complex, Mcs6-Mcs2, is identified as the in vivo T-loop kinase of Cdk1(Cdc2). It also identifies multiple levels of regulation of Mcs6 kinase activity, i.e. association with Pmh1, a novel fission yeast protein that is the apparent homolog of metazoan Mat1, and T-loop phosphorylation of Mcs6, mediated by Csk1, a monomeric T-loop kinase with similarity to Cak1 of budding yeast. In addition, Skp1, a component of the SCF (Skp1-Cullin-F box protein) ubiquitin ligase is identified by its interactions with Mcs2 and Pmh1. The Skp1 association with Mcs2 and Pmh1 is however SCF independent and does not involve proteolytic degradation but may reflect a novel mechanism to modulate the activity or complex assembly of Mcs6. In addition to Cdk7, also Cdk8 has been shown to have CTD serine-5 kinase activity in vitro. Cdk8 is not essential in yeast but has been shown to function as a transcriptional regulator. The function of Cdk8 is unknown in flies and mammals. This prompted the investigation of murine Cdk8 and its potential role as a redundant CTD serine-5 kinase. We find that Cdk8 is required for development prior to implantation, at a time that is co-incident with a burst of Cdk8 expression during normal development. The results does not support a role of Cdk8 as a serine-5 CTD kinase in vivo but rather shows an unexpected requirement for Cdk8, early in mammalian development. The results presented in this thesis extends our current knowledge of the regulation of the cell cycle by characterizing the function of two distinct cell cycle regulating T-loop kinases, including the unambiguous identification of Mcs6, the fission yeast Cdk7 homolog, as the T-loop kinase of Cdk1. The results also indicate that the function of Mcs6 is conserved from fission yeast to human Cdk7 and suggests novel mechanisms by which the distinct functions of Cdk7 and Mcs6 could be regulated. These findings are important for our understanding of how progression of the cell cycle and proper transcription is controlled, during normal development and tissue homeostasis but also under condition where cells have escaped these control mechanisms e.g. cancer.

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The multiple short introns in Schizosaccharomyces pombe genes with degenerate cis sequences and atypically positioned polypyrimidine tracts make an interesting model to investigate canonical and alternative roles for conserved splicing factors. Here we report functions and interactions of the S. pombe slu7(+) (spslu7(+)) gene product, known from Saccharomyces cerevisiae and human in vitro reactions to assemble into spliceosomes after the first catalytic reaction and to dictate 3' splice site choice during the second reaction. By using a missense mutant of this essential S. pombe factor, we detected a range of global splicing derangements that were validated in assays for the splicing status of diverse candidate introns. We ascribe widespread, intron-specific SpSlu7 functions and have deduced several features, including the branch nucleotide-to-3' splice site distance, intron length, and the impact of its A/U content at the 5' end on the intron's dependence on SpSlu7. The data imply dynamic substrate-splicing factor relationships in multiintron transcripts. Interestingly, the unexpected early splicing arrest in spslu7-2 revealed a role before catalysis. We detected a salt-stable association with U5 snRNP and observed genetic interactions with spprp1(+), a homolog of human U5-102k factor. These observations together point to an altered recruitment and dependence on SpSlu7, suggesting its role in facilitating transitions that promote catalysis, and highlight the diversity in spliceosome assembly.

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The multiple short introns in Schizosaccharomyces pombe genes with degenerate cis sequences and atypically positioned polypyrimidine tracts make an interesting model to investigate canonical and alternative roles for conserved splicing factors. Here we report functions and interactions of the S. pombe slu7(+) (spslu7(+)) gene product, known from Saccharomyces cerevisiae and human in vitro reactions to assemble into spliceosomes after the first catalytic reaction and to dictate 3' splice site choice during the second reaction. By using a missense mutant of this essential S. pombe factor, we detected a range of global splicing derangements that were validated in assays for the splicing status of diverse candidate introns. We ascribe widespread, intron-specific SpSlu7 functions and have deduced several features, including the branch nucleotide-to-3' splice site distance, intron length, and the impact of its A/U content at the 5' end on the intron's dependence on SpSlu7. The data imply dynamic substrate-splicing factor relationships in multiintron transcripts. Interestingly, the unexpected early splicing arrest in spslu7-2 revealed a role before catalysis. We detected a salt-stable association with U5 snRNP and observed genetic interactions with spprp1(+), a homolog of human U5-102k factor. These observations together point to an altered recruitment and dependence on SpSlu7, suggesting its role in facilitating transitions that promote catalysis, and highlight the diversity in spliceosome assembly.

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The centromere, on which kinetochore proteins assemble, ensures precise chromosome segregation. Centromeres are largely specified by the histone H3 variant CENP-A (also known as Cse4 in yeasts). Structurally, centromere DNA sequences are highly diverse in nature. However, the evolutionary consequence of these structural diversities on de novo CENP-A chromatin formation remains elusive. Here, we report the identification of centromeres, as the binding sites of four evolutionarily conserved kinetochore proteins, in the human pathogenic budding yeast Candida tropicalis. Each of the seven centromeres comprises a 2 to 5 kb non-repetitive mid core flanked by 2 to 5 kb inverted repeats. The repeat-associated centromeres of C. tropicalis all share a high degree of sequence conservation with each other and are strikingly diverged from the unique and mostly non-repetitive centromeres of related Candida species-Candida albicans, Candida dubliniensis, and Candida lusitaniae. Using a plasmid-based assay, we further demonstrate that pericentric inverted repeats and the underlying DNA sequence provide a structural determinant in CENP-A recruitment in C. tropicalis, as opposed to epigenetically regulated CENP-A loading at centromeres in C. albicans. Thus, the centromere structure and its influence on de novo CENP-A recruitment has been significantly rewired in closely related Candida species. Strikingly, the centromere structural properties along with role of pericentric repeats in de novo CENP-A loading in C. tropicalis are more reminiscent to those of the distantly related fission yeast Schizosaccharomyces pombe. Taken together, we demonstrate, for the first time, fission yeast-like repeat-associated centromeres in an ascomycetous budding yeast.

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  小G蛋白作为信号转导中重要的分子开关, 进化相当保守,与许多不同的调控因子和效应器分子相互作用,产生细胞功能的多样性。近年来,人们不断发现植物中小G蛋白家族的新成员,也不断揭示小G蛋白的新功能,许多植物特有的信号途径和功能需要小G蛋白这个重要的分子开关来完成,使它越来越成为人们研究的热点问题。但是,有关植物中Ran GTPase及其编码基因的研究工作报道很少,对与之相互作用的调控蛋白研究进展也刚刚开始。   TaRAN1 (AF488730) 是小麦来源的Ran同源蛋白编码基因,全长1055 bp, 编码221个氨基酸,它在植物发育过程中的功能还没有任何报道。本论文在验证了它是小G蛋白Ran家族的成员后,从分子水平上还发现它在植物细胞周期调控、对生长素以及胁迫应答信号转导过程中都起着重要作用,这也说明了它可能作为信号转导过程中重要的转换因子,参与了很多细胞的基本生理过程。   利用原核表达系统及亲和色谱的方法纯化了TaRAN1融合蛋白,并用放射性标记的GTP和竞争实验证实了它具有特异的GTP结合活性。TaRAN1的转录产物在小麦幼茎和花芽等分生组织活动旺盛的器官表达较多,而在老叶中表达较少。利用洋葱表皮瞬时表达系统分析表现,TaRAN1蛋白主要定位于细胞核,但其没有典型的核定位信号。   细胞周期一直是生物学领域中的热门问题,人们虽然在动物细胞中取得了很大进展,但在植物细胞中的研究远落后于动物。裂殖酵母(Schizosaccharomyces pombe)是研究细胞形态和细胞周期的良好系统,利用此系统发现超表达TaRAN1的酵母细胞表现出许多新的细胞学表型,例如G2细胞周期延滞、染色体对紫外线敏感、细胞超长或多隔细胞的出现等;反义表达TaRAN1的酵母细胞呈近圆型、具有高度凝集的核并且生长速度缓慢、核质混合和无核细胞的数目明显增加。流式细胞仪检测实验也证实其细胞周期的异常。这些结果推测TaRAN1蛋白可能参与细胞周期的有丝分裂过程和发育的调控机制,并且在维持染色体结构稳定和完整性方面起着重要的作用。通过免疫荧光实验观察表明,超表达转基因酵母的微管多呈异常的狭小扇形结构,反义表达TaRAN1的酵母微管不能形成丝状结构,推测TaRAN1还可能参与微管(包括纺锤体)的结构形成过程。最后,我们用超表达TaRAN1的转基因拟南芥和水稻也证实了它的功能,其生长点表现出分生组织增多的原基、根生长点的有丝分裂指数有所改变、出现异常的细胞分裂时相等有关细胞周期异常的现象,更进一步说明了TaRAN1确实参与着细胞周期的调控过程,推测其与细胞周期从G2期进入M期的过程有关。   TaRAN1基因受IAA的诱导表达,且随着浓度的增加表达量增强。超表达的TaRAN1植株(包括拟南芥和水稻)的根表现出对外源生长素异常敏感,侧根显著变少,地上部分表现出生长素过量的表现型,顶端优势减弱,分蘖增多,生长周期延长等。HPLC测定转基因植物的IAA含量,明显高于对照。所以,TaRAN1可能还参与了复杂的生长素信号转导过程。TaRAN1基因还受各种胁迫处理的诱导表达,并且超表达植株对胁迫的忍受能力有明显提高,这说明TaRAN1还参与了胁迫信号应答的相应机制。Ran蛋白这些新功能目前还未见到其它报道。

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Super-Resolution imaging techniques such as Fluorescent Photo-Activation Localisation Microscopy (FPALM) have created a powerful new toolkit for investigating living cells, however a simple platform for growing, trapping, holding and controlling the cells is needed before the approach can become truly widespread. We present a microfluidic device formed in polydimethylsiloxane (PDMS) with a fluidic design which traps cells in a high-density array of wells and holds them very still throughout the life cycle, using hydrodynamic forces only. The device meets or exceeds all the necessary criteria for FPALM imaging of Schizosaccharomyces pombe and is designed to remain flexible, robust and easy to use. © 2011 IEEE.

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酿酒酵母属(S. cereviae)变异株和粟酒裂殖酵母属(S. pombe)变异株进行属间原生质体融合得到融合株SPSC,该融合株比S. cereviae具有强的自身絮凝能力。以葡萄糖浓度150g/L的底物在30~44℃的温度范围内进行摇瓶厌氧发酵,获得最佳温度范围为34~38℃,最高发酵温度为40℃。在有效容积2.35L悬浮床反应器中,在pH值3.0~5.0范围内进行连续发酵,获得最适发酵pH为3.5~4.5。

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The actin cytoskeleton is a dynamic and complex structure in fission yeast that plays a major function in many cell processes including cellular growth, septa formation, endocytosis and cellular division. Computational studies have shown that Arp2p, which forms part of the Arp2/3 complex, is a potential substrate of NatB acetyltransferase which has specificity for proteins possessing an N-terminal Met-Asp or Met-Glu sequence motif. In arm1- mutants the loss of function of Arm1p, an auxillary subunit required for NatB activity, results in a temperature sensitive phenotype characterized by multiple septa, failure of endocytosis, and the inability to form actin cables. A temperature sensitive mutant of Schizosaccharomyces pombe arp2 gene exhibits a similar phenotype as seen by the formation of improper septa, slow growth, and the delocalization of actin patches. Four expression vectors encoding the open reading frames of arp2 and cdc8 (tropomyosin) were constructed with a modification changing the second residue to a Histidine, believed to mimic the charge distribution of natural acetylation by NatB. Constructs tested in normal yeast strains remained viable and grew normally in the presence of Met-His Arp2p and tropomyosin. Analysis of their ability to suppress the mutant phenotypes of arp2-1 and arm1- mutants is an area of research to be explored in future studies.

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Cdc25 is a mitosis triggering phosphatase in Schizosaccharomyces pombe, and is transported in to the nucleus during G2 phase by the importin-β protein Sal3. Cdc25 triggers mitosis and cell division by dephosphorylating tyrosine 15 of Cdc2. In sal3 mutants, Cdc25 is not transported into the nucleus and the cells halt in G2. The purpose of this study is to use a two-hybrid system to determine the nature of the relationship between Sal3 and Cdc25. Previous research has failed to detect any interaction between the two proteins, but specific modifications were made to the two-hybrid system in this study including the separation of Sal3 into its two binding domains, the addition of fluorescent tags to the fusion protein, and the reversal of plasmids in the fusion proteins. Unique PCR primers were successfully designed, based on a multiple alignment of Sal3 and its homologues, to separate Sal3 into its two domains.

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RNA polymerase I (Pol I) produces large ribosomal RNAs (rRNAs). In this study, we show that the Rpa49 and Rpa34 Pol I subunits, which do not have counterparts in Pol II and Pol III complexes, are functionally conserved using heterospecific complementation of the human and Schizosaccharomyces pombe orthologues in Saccharomyces cerevisiae. Deletion of RPA49 leads to the disappearance of nucleolar structure, but nucleolar assembly can be restored by decreasing ribosomal gene copy number from 190 to 25. Statistical analysis of Miller spreads in the absence of Rpa49 demonstrates a fourfold decrease in Pol I loading rate per gene and decreased contact between adjacent Pol I complexes. Therefore, the Rpa34 and Rpa49 Pol I–specific subunits are essential for nucleolar assembly and for the high polymerase loading rate associated with frequent contact between adjacent enzymes. Together our data suggest that localized rRNA production results in spatially constrained rRNA production, which is instrumental for nucleolar assembly.

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Dissertação de mestrado, Biologia Molecular e Microbiana, Faculdade de Ciências e Tecnologia, Universidade do Algarve, 2015

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The cell cycle comprise the four phases of, G1, S-phase, G2 and mitosis. Two critical transitions are G1/S and G2/M; the latter is regulated by WEE1 kinase and CDC25 phosphatases. The scope of this thesis was to investigate the regulation of the G2/M transition of the cell cycle by WEE1 and CDC25, and how these genes interface with plant growth regulators in Arabidopsis thaliana. In Arabidopsis roots, the frequency of lateral roots was found to be increased by ectopic expression of Schizosaccharomyces pombe (Sp)cdc25e and reduced by Arath;WEE1 expression. I examined the effect of Arath;WEE1 and Spcdc25 on induction of shoots and roots in Arabidopsis hypocotyls in vitro. Hypocotyl explants from two over-expressing WEE1 lines , three T-DNA insertion lines and two expressing cdc25 (Spcdc25e) lines together with wild type (WT) were cultured on two-way gradients of kinetin (Kin) and naphthyl acetic acid (NAA). Below a threshold concentration of NAA (100 ng ml-1), WEE1 repressed morphogenesis in vitro, whereas at all NAA/Kin combinations Spcdc25 promoted morphogenesis (particularly root formation) over and above that in WT. Loss of function wee1-1 cultures were very similar to WT. Quantitative data indicated a significant increase in the frequency of root formation in Spcdc25e cultures compared with WT particularly at low Kin concentrations, and WEE1oe’s repressive effect was overcome by NAA but not Kin. In conclusion, WEE1 has a repressive effect on morphogenesis in vitro that can be overcome by auxin whereas Spcd25 by-passes a cytokinin requirement for the induction of morphogenesis in vitro. The role of CDC25 and WEE1 in DNA damage responses was also analysed. Two over-expressing Arath;CDC25 lines and T-DNA mutants showed no difference to WT either in standard conditions or zeocin-supplemented treatments. However, root length was longer in Arath;CDC25oe lines treated with hydroxyurea (HU) and lateral root number was increased compared to WT. This suggests a differential response of Arath;CDC25oe in the DNA replication (HU-induced) and DNA damage (zeocin-induced) checkpoints (Chapter 5). Finally the roles of WEE1 and CDC25 in cell cycle regulation were examined using tobacco TBY-2 cell cultures expressing Arath;WEE1, Nicotiana tabacum (Nicta)WEE1 or Arath;CDC25. Whilst Nicta;WEE1 lengthened G2 of the cell cycle, Arath;WEE1 had an unusual effect of shortening G2 phase and Arath;CDC25 had no observable effect (Chapter 6).