59 resultados para MEFS


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O presente estudo teve como objetivo avaliar o efeito das baixas doses da radiação gama na concentração de carotenóides totais, alfa e beta-caroteno em cenouras minimamente processadas, durante a vida-útil. As cenouras são as principais fontes de carotenóides provitamínicos A (alfa e beta-caroteno) de origem vegetal. De acordo com a Pesquisa de Orçamento Familiar (POF) realizada na região Sudeste do Brasil, no grupo de raízes e tubérculos a cenoura é amplamente consumida. A estabilidade dos carotenóides varia grandemente durante o processamento e o armazenamento, dependendo de sua estrutura, temperatura, oxigênio, luz, umidade, atividade de água e presença de ácidos e metais antioxidantes e pró-oxidantes. As cenouras minimamente processadas neste experimento foram manualmente descascadas, lavadas, cortadas mecanicamente, acondicionadas em embalagens com atmosferas modificadas de 5% O2 / 10% CO2 e 21% O2 (ar sintético), tratadas com radiação ionizante gama, fonte de césio, nas doses de 0,25, 0,50, 0,75 e 1,00kGy, e armazenadas a 5°C durante 24 dias. Os carotenóides totais foram quantificados por espectrofotometria a 449nm. Para a determinação de alfa e beta-caroteno utilizou-se cromatografia líquida de alta eficiência (CLAE). Os diferentes tratamentos e o grupo controle foram, também, avaliados através das análises de cor e voláteis, por cromatografia gasosa/espectrometria de massas associada à microextração em fase sólida (CG-EM/MEFS), para estudar as perdas dos carotenóides durante o processamento.

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A substância 6-pentil-α-pirona (6-PP) é uma lactona com aroma característico de coco e uso aprovado pela agência americana Food and Drug Administration (FDA). O presente trabalho teve como objetivo ajustar as condições de microextração em fase sólida em headspace para a quantificação por cromatografia gasosa de 6-PP produzida pelo fungo Trichoderma harzianum a partir do pó da casca de coco verde. Para isto, foi realizado um estudo em que soluções padronizadas de 6-PP foram adicionadas ao pó da casca de coco verde. A substância foi extraída por uma fibra de polidimetilsiloxano. Agitação e adição de solução de NaCl a 25% (p/v) resultaram em melhor reprodutibilidade nas análises. Um planejamento composto central foi empregado para estudar três fatores: temperatura de extração, tempo de condicionamento e tempo de extração. Boas respostas foram obtidas com a temperatura de 79 °C e tempo de extração de 29 minutos. O efeito da variável tempo de condicionamento não foi significativo e foi fixado em 2 minutos. Após o desenvolvimento do método analítico, este foi empregado para determinar a produção de 6-PP por fermentação em estado sólido realizada por Trichoderma harzianum e com o uso de pó da casca de coco verde como suporte para o processo.

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Codirecteur de recherche: Dr Sylvain Meloche

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Mémoire numérisé par la Division de la gestion de documents et des archives de l'Université de Montréal.

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The fat mass and obesity-associated (FTO) gene plays a pivotal role in regulating body weight and fat mass; however, the underlying mechanisms are poorly understood. Here we show that primary adipocytes and mouse embryonic fibroblasts (MEFs) derived from FTO overexpression (FTO-4) mice exhibit increased potential for adipogenic differentiation, while MEFs derived from FTO knockout (FTO-KO) mice show reduced adipogenesis. As predicted from these findings, fat pads from FTO-4 mice fed a high-fat diet show more numerous adipocytes. FTO influences adipogenesis by regulating events early in adipogenesis, during the process of mitotic clonal expansion. The effect of FTO on adipogenesis appears to be mediated via enhanced expression of the pro-adipogenic short isoform of RUNX1T1, which enhanced adipocyte proliferation, and is increased in FTO-4 MEFs and reduced in FTO-KO MEFs. Our findings provide novel mechanistic insight into how upregulation of FTO leads to obesity.

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Objective: To describe two successful cases of utilizing refrozen blastocysts by vitrification derived from supernumerary embryos. Design: Case report. Setting: Private fertility clinic. Subjects: Two infertility couple. Interventions: Refrozen blastocysts by vitrification derived from supernumerary embryos. Main outcome measures: Obstetric and pediatric results. Results: Two pregnancies obtained from refrozen-warmed blastocysts led to two healthy babies being born without clinical or genetic problems. Conclusion: These case reports support the notion of safely repeating cryopreservation. However, despite these favorable results, there is still a need for prospective controlled studies on the obstetric and neonatal repercussions of refreezing and of vitrification in particular. © 2010 Middle East Fertility Society.

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Zusammenfassung Diese Arbeit beschreibt Untersuchungen über die zellulären Mechanismen, die zur Bildung dieser DNA-Schäden führen, sowie über die biologischen Auswirkungen dieser Schäden. Die Untersuchungen zu Uracil in der DNA wurden in ung-knockout-MEFs und Mäusen durchgeführt, die es erlauben, die Konsequenzen eines Ausfalls der wichtigsten Reparaturglykosylase für Uracil zu beleuchten. Die Ergebnisse zeigen eine deutliche Akkumulation von Uracil in den ung-/--Mausfibroblasten im Vergleich zum Wildtyp. In frisch isolierten Leber- und Milzzellen der Mäuse konnte dieser genotypspezifische Unterschied, wenn auch weniger ausgeprägt, ebenso beobachtet werden, nicht jedoch in reifen Spermien. Dieser gewebespezifische Unterschied und die quantitativ stärker ausgeprägte Akkumulation in ung-/--Mausfibroblasten im Vergleich zu den Mäusegeweben gab Anlass zur Vermutung, dass die Proliferation der Zellen für den Haupteintrag an Uracil in die DNA verantwortlich ist. Erstmals konnte in Versuche mit konfluenten (nicht mehr proliferierenden) ung-/--Mausfibroblasten gezeigt werden, dass nicht die spontane hydrolytische Desaminierung von Cytosin, sondern der Fehleinbau von dUMP während der DNA-Replikation die Hauptquelle für Uracil in der DNA von Säugerzellen darstellt. Da der Uracilmetabolismus ein wichtiges Target in der Chemotherapie ist, lag es nahe, das zur Verfügung stehende ung-knockout-Modell der MEFs zur Untersuchung mit Fluorpyrimidinen, die als Zytostatika verwendet werden, einzusetzen. Da bisher die Ursachen der beobachteten Apoptose der Tumorzellen und aller anderen metabolisch hochaktiven Zellen eines behandelten Organismus noch nicht vollständig verstanden ist, wurden diese Zellen mit verschiedenen Fluorpyrimidinen behandelt, die als Thymidylatsynthasehemmer die de novo Synthese von Thymidin unterbinden. Es konnte gezeigt werden, dass ung-/- Mausfibroblasten, im Gegensatz zu ung+/+ Mausfibroblasten, verstärkt Uracil in der DNA akkumulieren. Obwohl die ung+/+ Mausfibroblasten keine erhöhten Uracil-Spiegel in der DNA aufwiesen, zeigten sie bei Inkubation mit einem der beiden Thymidylatsynthasehemmern, 5-Fluoruracil (5-FU), die gleiche Sensitivität in einem nachfolgenden Proliferationsversuch wie die ung-/- Mausfibroblasten. Dies lässt darauf schließen, dass weder Reparatur noch Einbau von Uracil in die DNA für die beobachtete Toxizität dieser Zytostatika notwendig sind. Ein weiterer Schwerpunkt dieser Arbeit war die Untersuchung des DNA-schädigenden Potenzials endogener ROS, die aus dem Fremdstoffmetabolismus stammen. Dazu wurden V79-Zellen verwendet, die mit dem humanen Enzym Cytochrom 2E1 (CYP2E1) transfiziert wurden (V79 CYP2E1) sowie Zellen, die ebenfalls durch Transfektion das humane Enzym Cytochromreduktase (auch Oxidoreduktase genannt) überexprimieren (V79 hOR). Beide Enzyme sind zusammen an der Hydroxylierung von Fremdstoffen beteiligt, bei der die Reduktion von molekularem Sauerstoff durch Übertragung von zwei Elektronen notwendig ist. Wird anstatt zweier Elektronen in Folge nur eines auf den Sauerstoff übertragen, so führt dieser von der Substratoxygenierung enkoppelte Vorgang zur Bildung von Superoxid. Daher galt es zu klären, ob das so erzeugte Superoxid und daraus gebildete ROS in der Lage sind, die DNA zu schädigen. Es konnte gezeigt werden, dass die Überexpression von CYP2E1 nicht zu einem erhöhten basalen Gleichgewichtsspiegel oxidativer DNA-Schäden führt und die Metabolisierung von Ethanol durch dieses Enzym ebenfalls keine DNA-Modifikationen verursacht. Die Überexpression der Cytochromreduktase hingegen führte gegenüber dem Wildtyp zu einem erhöhten basalen Gleichgewichtsspiegel oxidativer Basenmodifikationen nach Depletion von Glutathion, einem wichtigen zellulären Antioxidans. Im Mikrokerntest, der gentoxische Ereignisse wie Chromosomenbrüche in Zellen aufzeigt, zeigte sich schon ohne Glutathion-Depletion eine doppelt so hohe Mikrokernrate im Vergleich zum Wildtyp. In weiteren Versuchen wurden die V79-hOR-Zellen mit dem chinoiden Redoxcycler Durochinon inkubiert, um zu untersuchen, ob das vermutlich durch die Reduktase vermittelte Redoxcycling über Generierung von ROS in der Lage ist, einen oxidativen DNA-Schaden und Toxizität zu verursachen. Hier zeigte sich, dass die Überexpression der Reduktase Voraussetzung für Toxizität und den beobachteten DNA-Schaden ist. Die Wildtyp-Zellen zeigten weder einen DNA-Schaden noch Zytotoxizität, auch eine zusätzliche Glutathion-Depletion änderte nichts an dem Befund. Die V79-hOR-Zellen hingegen reagierten auf die Inkubation mit Durochinon mit einer konzentrationsabhängigen Zunahme der Einzelstrangbrüche und oxidativen Basenmodifikationen, wobei sich der DNA-Schaden durch vorherige Glutathion-Depletion verdoppeln ließ.

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Analyses of low density lipoprotein receptor-related protein 1 (LRP1) mutant mouse embryonic fibroblasts (MEFs) generated from LRP1 knock-in mice revealed that inefficient maturation and premature proteasomal degradation of immature LRP1 is causing early embryonic lethality in NPxY1 and NPxY1+2 mutant mice. In MEFs, NPxY2 mutant LRP1 showed efficient maturation but, as expected, decreased endocytosis. The single proximal NPxY1 and the double mutant NPxY1+2 were unable to reach the cell surface as an endocytic receptor due to premature degradation. In conclusion, the proximal NPxY1 motif is essential for early sorting steps in the biosynthesis of mature LRP1.rnThe viable NPxY2 mouse was used to provide genetic evidence for LRP1-mediated amyloid-β (Aβ) transport across the blood-brain barrier (BBB). Here, we show that primary mouse brain capillary endothelial cells (pMBCECs) express functionally active LRP1. Moreover, demonstrate that LRP1 mediates [125I]-Aβ1-40 transcytosis across pMBCECs in both directions, whereas no role for LRP1-mediated Aβ degradation was detected. Aβ transport across pMBCECs generated from NPxY2 knock-in mice revealed a reduced Aβ clearance in both directions compared to WT derived pMBCECs. Finally, we conclude that LRP1 is a bona-fide receptor involved in bidirectional transcytosis of Aβ across the BBB.rn

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Mutations in OPA1 gene have been identified in the majority of patients with Dominant Optic Atrophy (DOA), a blinding disease, and the syndromic form DOA-plus. OPA1 protein is a mitochondrial GTPase involved in various mitochondrial functions, present in humans in eight isoforms, resulting from alternative splicing and proteolytic processing. In this study we have investigated the specific role of each isoform through expression in OPA-/- MEFs, by evaluating their ability to improve the defective mitochondrial phenotypes. All isoforms were able to rescue the energetic efficiency, mitochondrial DNA (mtDNA) content and cristae integrity, but only the presence of both long and short forms could recover the mitochondrial morphology. In order to identify the OPA1 protein domains crucial for its functions, we selected and modified the isoform 1, shown to be one of the most efficient in preserving mitochondrial phenotype, to express three specific OPA1 variants, namely: one with a different N-terminus portion, one unable to generate short form owing to deletion of S1 cleavage site and one with a defective GTPase domain. We demonstrated that the simultaneous presence of the N- and C-terminus of OPA1 was essential for the mtDNA maintenance; a cleavable isoform generating s-forms was necessary to completely rescue the energetic competence and the presence of the C-terminus was sufficient to partially recover the cristae ultrastructure. Lastly, several pathogenic OPA1 mutations were inserted in MEF clones and the biochemical features investigated, to correlate the defective phenotypes with the clinical severity of patients. Our results clearly indicate that this cell model reflects very well the clinical characteristics of the patients, and therefore can be proposed as an useful tool to shed light on the pathomechanism underlying DOA.

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PURPOSE: Activation of the double-stranded RNA-activated protein kinase (PKR) leads to the induction of various pathways including the down-regulation of translation through phosphorylation of the eukaryotic translation initiation factor 2alpha (eIF-2alpha). There have been no reports to date about the role of PKR in radiation sensitivity. EXPERIMENTAL DESIGN: A clonogenic survival assay was used to investigate the sensitivity of PKR mouse embryo fibroblasts (MEF) to radiation therapy. 2-Aminopurine (2-AP), a chemical inhibitor of PKR, was used to inhibit PKR activation. Nuclear factor-kappaB (NF-kappaB) activation was assessed by electrophoretic mobility shift assay (EMSA). Expression of PKR and downstream targets was examined by Western blot analysis and immunofluorescence. RESULTS: Ionizing radiation leads to dose- and time-dependent increases in PKR expression and function that contributes to increased cellular radiation resistance as shown by clonogenic survival and terminal nucleotidyl transferase-mediated nick end labeling (TUNEL) apoptosis assays. Specific inhibition of PKR with the chemical inhibitor 2-AP restores radiation sensitivity. Plasmid transfection of the PKR wild-type (wt) gene into PKR(-/-) MEFs leads to increased radiation resistance. The protective effect of PKR to radiation may be mediated in part through NF-kappaB and Akt because both NF-kappaB and Akt are activated after ionizing radiation in PKR+/+ but not PKR-/- cells. CONCLUSIONS: We suggest a novel role for PKR as a mediator of radiation resistance modulated in part through the protective effects of NF-kappaB and Akt activation. The modification of PKR activity may be a novel strategy in the future to overcome radiation resistance.

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Colorectal cancer is a complex disease that is thought to arise when cells accumulate mutations that allow for uncontrolled growth. There are several recognized mechanisms for generating such mutations in sporadic colon cancer; one of which is chromosomal instability (CIN). One hypothesized driver of CIN in cancer is the improper repair of dysfunctional telomeres. Telomeres comprise the linear ends of chromosomes and play a dual role in cancer. Its length is maintained by the ribonucleoprotein, telomerase, which is not a normally expressed in somatic cells and as cells divide, telomeres continuously shorten. Critically shortened telomeres are considered dysfunctional as they are recognized as sites of DNA damage and cells respond by entering into replicative senescence or apoptosis, a process that is p53-dependent and the mechanism for telomere-induced tumor suppression. Loss of this checkpoint and improper repair of dysfunctional telomeres can initiate a cycle of fusion, bridge and breakage that can lead to chromosomal changes and genomic instability, a process that can lead to transformation of normal cells to cancer cells. Mouse models of telomere dysfunction are currently based on knocking out the telomerase protein or RNA component; however, the naturally long telomeres of mice require multiple generational crosses of telomerase null mice to achieve critically short telomeres. Shelterin is a complex of six core proteins that bind to telomeres specifically. Pot1a is a highly conserved member of this complex that specifically binds to the telomeric single-stranded 3’ G-rich overhang. Previous work in our lab has shown that Pot1a is essential for chromosomal end protection as deletion of Pot1a in murine embryonic fibroblasts (MEFs) leads to open telomere ends that initiate a DNA damage response mediated by ATR, resulting in p53-dependent cellular senescence. Loss of Pot1a in the background of p53 deficiency results in increased aberrant homologous recombination at telomeres and elevated genomic instability, which allows Pot1a-/-, p53-/- MEFs to form tumors when injected into SCID mice. These phenotypes are similar to those seen in cells with critically shortened telomeres. In this work, we created a mouse model of telomere ysfunction in the gastrointestinal tract through the conditional deletion of Pot1a that recapitulates the microscopic features seen in severe telomere attrition. Combined intestinal loss of Pot1a and p53 lead to formation of invasive adenocarcinomas in the small and large intestines. The tumors formed with long latency, low multiplicity and had complex genomes due to chromosomal instability, features similar to those seen in sporadic human colorectal cancers. Taken together, we have developed a novel mouse model of intestinal tumorigenesis based on genomic instability driven by telomere dysfunction.

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FUS/TLS (fused in sarcoma/translocated in liposarcoma) protein, a ubiquitously expressed RNA-binding protein, has been linked to a variety of cellular processes, such as RNA metabolism, microRNA biogenesis and DNA repair. However, the precise role of FUS protein remains unclear. Recently, FUS has been linked to Amyotrophic Lateral Sclerosis (ALS), a neurodegenerative disorder characterized by the dysfunction and death of motor neurons. Based on the observation that some mutations in the FUS gene induce cytoplasmic accumulation of FUS aggregates, we decided to explore a loss-of-function situation (i.e. inhibition of FUS’ nuclear function) to unravel the role of this protein. To this purpose, we have generated a SH-SY5Y human neuroblastoma cell line which expresses a doxycycline induced shRNA targeting FUS and that specifically depletes the protein. In order to characterize this cell line, we have performed a whole transcriptome analysis by RNA deep sequencing. Preliminary results show that FUS depletion affects both expression and alternative splicing levels of several RNAs. When FUS is depleted we observed 330 downregulated and 81 upregulated genes. We also found that 395 splicing isoforms were downregulated, while 426 were upregulated. Currently, we are focusing our attention on the pathways which are mostly affected by FUS depletion. In addition, to further characterize the FUS-depleted cell line we have performed growth proliferation and survival assays. From these experiments emerge that FUS-depleted cells display growth proliferation alteration. In order to explain this observation, we have tested different hypothesis (e.g. apoptosis, senescence or slow-down growth). We observed that FUS-depleted cells growth slower than controls. Currently, we are looking for putative candidate targets causing this phenotype. Finally, since MEFs and B-lymphocytes derived from FUS knockdown mice display major sensitivity to ionizing radiation and chromosomal aberrations [1,2], we are exploring the effects of DNA damage in FUS-depleted cells by monitoring important components of DNA Damage Response (DDR). Taken together, these studies may contribute to our knowledge of the role of FUS in these cellular processes and will allow us to draw a clearer picture of mechanisms of neurodegenerative diseases.

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FUS/TLS (fused in sarcoma/translocated in liposarcoma) protein, a ubiquitously expressed and highly conserved RNA binding protein, has been linked to a variety of cellular processes from mRNA processing to DNA repair. However, the precise function of FUS is not well understood. Recently, mutations in the FUS gene have been identified in familial and sporadic patients of Amyotrophic Lateral Sclerosis, a fatal neurodegenerative disorder characterized by dysfunction and death of motor neurons. Based on the observation that some mutations in the FUS gene induce cytoplasmic accumulation of FUS aggregates, we decided to explore a loss-of-function situation (i.e. inhibition of FUS’ nuclear function) to unravel the role of this protein. To this purpose, we have generated a SH-SY5Y human neuroblastoma cell line which expresses a doxycycline induced shRNA targeting FUS that efficiently depletes the protein. In order to characterize this cell line, we have characterized the poly(A) fraction by RNA deep sequencing. Preliminary results show that FUS depletion affects both mRNA expression and alternative splicing. Upon FUS depletion 330 genes are downregulated and 81 are upregulated. We also found that 395 splicing isoforms were downregulated, while 426 were upregulated. Currently, we are focusing our attention on the pathways which are mostly affected by FUS depletion. In addition, we are currently characterizing how FUS depletion affects cell proliferation and survival. We find that the lack of FUS impairs cell proliferation but does not induce apoptosis. Finally, since MEFs and B-lymphocytes derived from FUS knockdown mice display major sensitivity to ionizing radiation and chromosomal aberrations [1,2], we are exploring the effects of DNA damage in FUS-depleted cells by monitoring important components of DNA Damage Response (DDR). Taken together, these studies may contribute to our knowledge of the role of FUS in these cellular processes and will allow us to draw a clearer picture of mechanisms of neurodegenerative diseases.

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Memo is a conserved protein that was identified as an essential mediator of tumor cell motility induced by receptor tyrosine kinase activation. Here we show that Memo null mouse embryonic fibroblasts (MEFs) are impaired in PDGF-induced migration and this is due to a defect in sphingosine-1-phosphate (S1P) signaling. S1P is a bioactive phospholipid produced in response to multiple stimuli, which regulates many cellular processes. S1P is secreted to the extracellular milieu where it exerts its function by binding a family of G-protein coupled receptors (S1PRs), causing their activation in an autocrine or paracrine manner. The process, termed cell-autonomous S1PR signaling, plays a role in survival and migration. Indeed, PDGF uses cell-autonomous S1PR signaling to promote cell migration; we show here that this S1P pathway requires Memo. Using vascular endothelial cells (HUVECs) with Memo knock-down we show that their survival in conditions of serum-starvation is impaired. Furthermore, Memo loss in HUVECs causes a reduction of junctional VE-cadherin and an increase in sprout formation. Each of these phenotypes is rescued by S1P or S1P agonist addition, showing that Memo also plays an important role in cell-autonomous S1PR signaling in endothelial cells. We also produced conventional and endothelial cell-specific conditional Memo knock-out mouse strains and show that Memo is essential for embryonic development. Starting at E13.5 embryos of both strains display bleeding and other vascular problems, some of the phenotypes that have been described in mouse strains lacking S1PRs. The essential role of Memo in embryonic vascular development may be due in part to alterations in S1P signaling. Taken together our results show that Memo has a novel role in the S1P pathway and that Memo is needed to promote cell-autonomous S1PR activation.

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FUS/TLS (fused in sarcoma/translocated in liposarcoma), a ubiquitously expressed RNA-binding protein, has been linked to a variety of cellular processes, including RNA metabolism, microRNA biogenesis and DNA repair. However, the precise cellular function of FUS remains unclear. Recently, mutations in the FUS gene have been found in ∼5% of familial Amyotrophic Lateral Sclerosis, a neurodegenerative disorder characterized by the dysfunction and death of motor neurons. Since MEFs and B-lymphocytes derived from FUS knockdown mice display major sensitivity to ionizing radiation and chromosomal aberrations [1,2], we are investigating the effects of DNA damage both in the presence or in the absence of FUS. To this purpose, we have generated a SH-SY5Y human neuroblastoma cell line expressing a doxycycline-induced shRNA targeting FUS, which specifically depletes the protein. We have found that FUS depletion induces an activation of the DNA damage response (DDR). However, treatment with genotoxic agents did not induce any strong changes in ATM (Ataxia Telangiectasia Mutated)-mediated DDR signaling. Interestingly, genotoxic treatment results in changes in the subcellular localization of FUS in normal cells. We are currently exploring on one hand the mechanism by which FUS depletion leads to DNA damage, and on the other the functional significance of FUS relocalization after genotoxic stress.