329 resultados para Caenorhabditis Briggsae


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Caenorhabditis elegans can reproduce exclusively by self-fertilization. Yet, males can be maintained in laboratory populations, a phenomenon that continues to puzzle biologists. In this study we evaluated the role of males in facilitating adaptation to novel environments. For this, we contrasted the evolution of a fitness component exclusive to outcrossing in experimental populations of different mating systems. We introgressed a modifier of outcrossing into a hybrid population derived from several wild isolates to transform the wild-type androdioecious mating system into a dioecious mating system. By genotyping 375 single-nucleotide polymorphisms we show that the two populations had similar standing genetic diversity available for adaptation, despite the occurrence of selection during their derivation. We then performed replicated experimental evolution under the two mating systems from starting conditions of either high or low levels of diversity, under defined environmental conditions of discrete non-overlapping generations, constant density at high population sizes (N = 10(4)), no obvious spatial structure and abundant food resources. During 100 generations measurements of sex ratios and male competitive performance showed: 1) adaptation to the novel environment; 2) directional selection on male frequency under androdioecy; 3) optimal outcrossing rates of 0.5 under androdioecy; 4) the existence of initial inbreeding depression; and finally 5) that the strength of directional selection on male competitive performance does not depend on male frequencies. Taken together, these results suggest that androdioecious males are maintained at intermediate frequencies because outcrossing is adaptive.

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The maT clade of transposons is a group of transposable elements intermediate in sequence and predicted protein structure to mariner and T-C transposons, with a distribution thus far limited to a few invertebrate species. In the nematode Caenorhabditis elegans, there are eight copies of CemaT1 that are predicted to encode a functional transposase, with five copies being >99% identical. We present evidence, based on searches of publicly available databases and on PCR-based mobility assays, that the CemaT1 transposase is expressed in C. elegans and that the CemaT transposons are capable of excising in both somatic and germline tissues. We also show that the frequency of CemaT1 excisions within the genome of the N2 strain of C. elegans is comparable to that of the Tc1 transposon. However, unlike T-C transposons in mutator strains of C elegans, maT transposons do not exhibit increased frequencies of mobility, suggesting that maT is not regulated by the same factors that control T-C activity in these strains. Finally, we show that CemaT1 transposons are capable of precise transpositions as well as orientation inversions at some loci, and thereby become members of an increasing number of identified active transposons within the C. elegans genome. (C) 2004 Elsevier B.V. All rights reserved.

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This work evaluated the fresh, spray dried (with 10 % of Arabic Gum) and freeze dried jambolan pulp (Eugenia jambolana Lam.) in regard to physicochemical (pH, moisture, water activity, average particle diameter, solubility and color), bioactive [total phenolic content (TPC), monomeric anthocyanin, pronathocyanidin (PA), total elagic acid (TEA), myricetin and cyanidin] and in vitro functionality (antioxidant, antienzymatic and antimicrobial activities]. In addition, the in vivo functionality of jambolan pulp was investigated using the Caenorhabditis elegans model for insulin signaling, longevity and induced neurodegeneration (Alzheimer’s disease and Parkinson’s disease related symptoms). The dried jambolan pulp presented TPC retention (50% to 75%), PA (90% to 98%), TEA (31% to 83%), myricetin (40% to 84%), cyanidin (72% to 84%) and antioxidant activity (15%). The fresh jambolan pulp, the freeze dried pulp and the spray dried jambolan pulp presented high enzymatic inhibitory activity against pancreatic lipase (4,4 to 5,8 mg/mL), alpha-glycosidase (10,3 to 13,8 mg/mL) and alpha-amylase (8,9 to 11,2 mg/mL). They also were active inhibitors against the pathogen S. aureus. The dried jambolan experimental samples were able to increase the expression of several genes linked to the insulin signaling pathways (SIR-2.1, PPTR-1, DAF-16, SOD-3, e CTL) and increased the lifespan in C. elegans (18,07 % - 24,34 %), besides decreasing the amyloid AB1-42 aggregation induced paralysis and MPP+ (1-methyl-4-phenylpyridinium) induced neurodegeneration. Based on that, the jambolan pulp and the spray dried jambolan pulp were further selected for the production of caprine frozen yogurt with the addition of Bifidobacterium animalis subsp. lactis BI-07. The final product were evaluated in regard to their physicochemical (pH, acidity, total solids, protein, total reducing sugars, fat, ashes, overrun, melting test), bioactive (TPC and monomeric anthocyanin, antioxidant activity, probiotic viability and sensory analysis (sensory acceptance). The results showed that samples with probiotic had lowest pH and higher acidity, TPC, anthocyanin and antioxidant activity. It was also observed low overrun (14.2% to 22.6%). vi Samples with probiotic had lower flavor scores. Overall, this research presents the jambolan as a highly functional bioactive-rich fruit with the potential to modulate important biological pathways, extend lifespan and retard the development of neurodegenerative diseases. Jambolan is an underexploited exotic fruit with a high colorant potential and this thesis shows for the first time in the literature important technological, biological and scientific data about this fruit that could be used towards the development of health-oriented food products.

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Inorganic phosphate is an essential mineral for both prokaryotic and eukaryotic cell metabolism and structure. Its uptake into the cell is mediated by membrane bound transporters and coupled to Na+ transport. Mammalian sodium-dependent Pi co-transporters have been grouped into three families NaPi-I, NaPi-II, and NaPi-III. Despite being discovered more than 2 decades ago, very little is known about requirements for NaPi-III transporters in vivo, in the context of intact animal models. Here we find that impaired function of the C. elegans NaPi-III transporter, pitr-1, results in decreased brood size and dramatically increased expression of vitellogenin by the worm intestine. Unexpectedly, we found that the effects of pitr-1 mutation on vitellogenin expression in the intestine could only be rescued by expression of pitr-1 in the germline, and not by expression of pitr-1 in the intestine itself. Our results indicate the existence of a signal from the germline that regulates gene expression in the intestine, perhaps linking nutrient export from the intestine to production of gametes by the germline.

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Millions of people worldwide are chronically exposed to arsenic through contaminated drinking water. Despite decades of research studying the carcinogenic potential of arsenic, the mechanisms by which arsenic causes cancer and other diseases remain poorly understood. Mitochondria appear to be an important target of arsenic toxicity. The trivalent arsenical, arsenite, can induce mitochondrial reactive oxygen species production, inhibit enzymes involved in energy metabolism, and induce aerobic glycolysis in vitro, suggesting that metabolic dysfunction may be important in arsenic-induced disease. Here, using the model organism Caenorhabditis elegans and a novel metabolic inhibition assay, we report an in vivo induction of aerobic glycolysis following arsenite exposure. Furthermore, arsenite exposure induced severe mitochondrial dysfunction, including altered pyruvate metabolism; reduced steady-state ATP levels, ATP-linked respiration and spare respiratory capacity; and increased proton leak. We also found evidence that induction of autophagy is an important protective response to arsenite exposure. Because these results demonstrate that mitochondria are an important in vivo target of arsenite toxicity, we hypothesized that deficiencies in mitochondrial electron transport chain genes, which cause mitochondrial disease in humans, would sensitize nematodes to arsenite. In agreement with this, nematodes deficient in electron transport chain complexes I, II, and III, but not ATP synthase, were sensitive to arsenite exposure, thus identifying a novel class of gene-environment interactions that warrant further investigation in the human populace.

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A functional nervous system requires the precise arrangement of all nerve cells and their neurites. To achieve this correct assembly, a myriad of molecular guidance cues works together to direct the outgrowth of neurites to their correct positions. The small nematode C. elegans provides the ideal model system to study the complex mechanisms of neurite guidance due to its relatively simple nervous system, composed of 302 neurons. I used two mechanosensory neurons, called the posterior lateral microtubule (PLM), to investigate the role of the ephrin and Eph receptor protein family in neurite termination in C. elegans. Activation of the C. elegans Eph receptor VAB-1 on the PLM growth cone is sufficient to cause PLM termination, but the identity and location of the activating ligand has not been established. In my thesis I investigated the ability of the ephrin ligand EFN-1 to activate VAB-1 to cause PLM termination when expressed on the same cell (in cis) and on opposing cells (in trans) to the receptor. I showed that EFN-1 is able to activate VAB-1 in cis and in trans to cause PLM termination. I also assessed the hypodermal seam cells as the source of the ephrin stop cue using fluorescently labelled and seam cell mutant transgenic worms. I found that although the PLM shows consistent termination on the seam cell V2 in wild type worms independent of PLM length, this process is not significantly disrupted in seam cell mutants. With this information I have created a new hypothesis that the PLM neurite is able the provide a positional cue for the developing seam cells, and have created a new transgenic strain which can be used to assess the impact of PLM and ALM cell ablation on seam cell position. My research is the first to demonstrate the ability of an ephrin ligand to activate its ephrin receptor in cis, and further research can investigate if this finding has in vivo applications.

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Since Altmann recognized ubiquitously distributed "bioblasts" in 1890, understanding of mitochondria has evolved from "elementary organisms" living inside cells and carrying out vital functions, over the Harman's "free radical theory" in 1956, to one of the driving forces of aging and cause of multiple associated diseases impacting society today. While a tremendous amount of work has contributed to the understanding of mitochondrial biology in different model organisms, the precise molecular mechanisms of basic mitochondrial function have yet to be deciphered. By employing an RNA interference mediated screen in Caenorhabditis elegans, we identified two transcription factors: SPTF-3, a member of Sp1 family, and an uncharacterized, nematode specific W04D2.4. We propose that both proteins modulate expression of many genes with regard to mitochondrial function including mitochondrial single-stranded binding protein encoded by mtss-1, whose promoter was used as transcriptional reporter in the screen. Further, RNA sequencing data indicate that W04D2.4 indirectly regulates expression of mitochondrial DNA via control of genes functionally related to mitochondrial replication and translation machineries. We also demonstrate that from all interventions targeting cytosolic translation, MTSS-1 levels are elevated only upon knockdown of genes encoding cytosolic ribosomal proteins. Reduction of ribosomes leads to increased sptf-3 translation, most likely in an internal ribosome entry side (IRES) mediated manner, eventually inducing mtss-1 expression. Moreover, we identify a novel role for SPTF-3 in the regulation of mitochondrial unfolded stress response (UPRmt) activation, but not endoplasmatic reticulum or oxidative stress responses. Taken together, this study identifies two transcription factors previously not associated with mitochondrial biogenesis and UPRmt in C. elegans, establishing a basis for further investigation of mito-nuclear interactions.

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Les anthracyclines, comme la doxorubicine (DOX) ou la daunorubicine (DNR), sont utilisées dans le traitement d’une grande variété de cancers allant des lymphomes, au cancer du sein, en passant par certaines leucémies. Encore aujourd’hui, beaucoup pensent que les anthracyclines entrent dans les cellules par diffusion passive, toutefois, la plupart de ces mêmes personnes sont d’accord pour dire que la p-glycoprotéine est responsable d’exporter ces molécules hors de la cellule. Mais pourquoi une molécule aurait besoin d’un transporteur pour sortir de la cellule, et pas pour y entrer ? Qu’est-ce qui ferait que la diffusion passive fonctionnerait dans un sens, mais pas dans l’autre, d’autant que l’entrée des anthracyclines dans les cellules est très rapide ? Nous pensons qu’il existe bel et bien un transporteur responsable de faire passer les anthracyclines du milieu extracellulaire au cytoplasme, et nous voulons développer un modèle de levure qui permettrait de déterminer si une protéine, un transporteur, issue d’un autre organisme eucaryote est en mesure de transporter la DOX à l’intérieur de la cellule. Pour ce faire, nous avons rassemblé un groupe de mutants présentant une déficience dans l’absorption d’autres molécules chargées positivement telles que la bléomycine ou le NaD1 et avons déterminé le taux d’absorption de DOX de chacun de ces mutants. Les simples mutants sam3Δ ou dur3Δ n’ont montré qu’une faible réduction de l’absorption de DOX, voire, aucune, par rapport à la souche parentale. Si le double mutant sam3Δdur3Δ a montré une réduction relativement importante de l’absorption de DOX, c’est le mutant agp2Δ qui présentait la plus grande réduction d’absorption de DOX, ainsi qu’une résistance notable à son effet létal. Nous avons utilisé, par la suite, ce mutant pour exprimer, à l’aide d’un vecteur d’expression, une protéine du ver Caenorhabditis elegans, OCT-1 (CeOCT-1). Les résultats ont montré que cette protéine était en mesure de restaurer l’absorption de DOX, compromise chez le mutant agp2Δ ainsi que d’augmenter la sensibilité de la souche parentale à son effet létal, lorsqu’exprimée chez celle-ci. Cela suggère que CeOCT-1 est un transporteur fonctionnel de DOX et contredit également le dogme selon lequel les anthracyclines entrent dans les cellules par diffusion passive.

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Les anthracyclines, comme la doxorubicine (DOX) ou la daunorubicine (DNR), sont utilisées dans le traitement d’une grande variété de cancers allant des lymphomes, au cancer du sein, en passant par certaines leucémies. Encore aujourd’hui, beaucoup pensent que les anthracyclines entrent dans les cellules par diffusion passive, toutefois, la plupart de ces mêmes personnes sont d’accord pour dire que la p-glycoprotéine est responsable d’exporter ces molécules hors de la cellule. Mais pourquoi une molécule aurait besoin d’un transporteur pour sortir de la cellule, et pas pour y entrer ? Qu’est-ce qui ferait que la diffusion passive fonctionnerait dans un sens, mais pas dans l’autre, d’autant que l’entrée des anthracyclines dans les cellules est très rapide ? Nous pensons qu’il existe bel et bien un transporteur responsable de faire passer les anthracyclines du milieu extracellulaire au cytoplasme, et nous voulons développer un modèle de levure qui permettrait de déterminer si une protéine, un transporteur, issue d’un autre organisme eucaryote est en mesure de transporter la DOX à l’intérieur de la cellule. Pour ce faire, nous avons rassemblé un groupe de mutants présentant une déficience dans l’absorption d’autres molécules chargées positivement telles que la bléomycine ou le NaD1 et avons déterminé le taux d’absorption de DOX de chacun de ces mutants. Les simples mutants sam3Δ ou dur3Δ n’ont montré qu’une faible réduction de l’absorption de DOX, voire, aucune, par rapport à la souche parentale. Si le double mutant sam3Δdur3Δ a montré une réduction relativement importante de l’absorption de DOX, c’est le mutant agp2Δ qui présentait la plus grande réduction d’absorption de DOX, ainsi qu’une résistance notable à son effet létal. Nous avons utilisé, par la suite, ce mutant pour exprimer, à l’aide d’un vecteur d’expression, une protéine du ver Caenorhabditis elegans, OCT-1 (CeOCT-1). Les résultats ont montré que cette protéine était en mesure de restaurer l’absorption de DOX, compromise chez le mutant agp2Δ ainsi que d’augmenter la sensibilité de la souche parentale à son effet létal, lorsqu’exprimée chez celle-ci. Cela suggère que CeOCT-1 est un transporteur fonctionnel de DOX et contredit également le dogme selon lequel les anthracyclines entrent dans les cellules par diffusion passive.