525 resultados para Hyperosmotic extender
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Gestión del conocimiento
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Gestión del conocimiento
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Gestión del conocimiento
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Gestión del conocimiento
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Gestión del conocimiento
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Gestión del conocimiento
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Servicios registrales
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The adapted metabolic response of commercial wine yeast under prolonged exposure to concentrated solutes present in Icewine juice is not fully understood. Presently, there is no information regarding the transcriptomic changes in gene expression associated with the adaptive stress response ofwine yeast during Icewine fermentation compared to table wine fermentation. To understand how and why wine yeast respond differently at the genomic level and ultimately at the metabolic level during Icewine fermentation, the focus ofthis project was to identify and compare these differences in the wine yeast Saccharomyces cerevisiae KI-Vll16 using cDNA microarray technology during the first five days of fermentation. Significant differences in yeast gene expression patterns between fermentation conditions were correlated to differences in nutrient utilization and metabolite production. Sugar consumption, nitrogen usage and metabolite levels were measured using enzyme assays and HPLC. Also, a small subset of differentially expressed genes was verified using Northern analysis. The high osmotic stress experienced by wine yeast throughout Icewine fermentation elicited changes in cell growth and metabolism correlating to several fermentation difficulties, including reduced biomass accumulation and fermentation rate. Genes associated with carbohydrate and nitrogen transport and metabolism were expressed at lower levels in Icewine juice fermenting cells compared to dilute juice fermenting cells. Osmotic stress, not nutrient availability during Icewine fermentation appears to impede sugar and nitrogen utilization. Previous studies have established that glycerol and acetic acid production are increased in yeast during Icewine fermentation. A gene encoding for a glycerollW symporter (STL1) was found to be highly expressed up to 25-fold in the i Icewine juice condition using microarray and Northern analysis. Active glycerol transport by yeast under hyperosmotic conditions to increase cytosolic glycerol concentration may contribute to reduced cell growth observed in the Icewine juice condition. Additionally, genes encoding for two acetyl CoA synthetase isoforms (ACSl and ACS2) were found to be highly expressed, 19- and II-fold respectively, in dilute juice fermenting cells relative to the Icewine juice condition. Therefore, decreased conversion of acetate to acetyl-CoA may contribute to increased acetic acid production during Icewine fermentation. These results further help to explain the response of wine yeast as they adapt to Icewine juice fermentation. ii
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The high sugar concentration in Icewine juice exerts hyperosmotic stress in the wine yeast causing water loss and cell shrinkage. To counteract the dehydration, yeast synthesize and accumulate glycerol as an internal osmolyte. In a laboratory strain of S. cerevisiae, STLl encodes for Stllp, an H+ /glycerol symporter that is glucose inactivated, but induced upon hyperosmotic stress. STLl, was found to be a highly upregulated gene in Icewine fermenting cells and its expression was 25-fold greater than in yeast cells fermenting diluted Icewine juice, making it one of the most differentially expressed genes between the two fermentation conditions. In addition, Icewine fermenting cells showed a two-fold higher glycerol production in the wine compared to yeast fermenting diluted Icewine juice. We proposed that Stllp is (1) active during Icewine fermentation and is not glucose inactivated and (2) its activity contributes to the limited cell growth observed during Icewine fermentation as a result of the dissipation of the plasma membrane proton gradient. To measure the contribution ofStl1p in active glycerol transport (energy dependent) during Icewine fermentation, we first developed an Stllp-dependent (14C]glycerol uptake assay using a laboratory strain of S. cerevisiae (BY 4742 and LiSTLl) that was dependent on the plasma membrane proton gradient and therefore energy-dependent. Wine yeast K1-Vll16 was also shown to have this energy dependent glycerol uptake induced under salt stress. The expression of STLl and Stllp activity were compared between yeast cells harvested from Icewine and diluted Icewine fermentations. Northern blot analysis revealed that STLl was expressed in cells fermenting Icewine juice but not expressed under the diluted juice conditions. Glycerol uptake by cells fermenting Icewine juice was not significantly different than cells fermenting diluted Icewine juice on day 4 and day 7 of Vidal and Riesling fermentations respectively, despite encountering greater hyperosmotic stress. Furthermore, energy- dependent glycerol uptake was not detected under either fermentation conditions. Because our findings show that active glycerol uptake was not detected in yeast cells harvested from Icewine fermentation, it is likely that Stllp was glucose inactivated despite the hyperosmotic stress induced by the Icewine juice and therefore did not play a role in active glycerol uptake during Icewine fermentation.
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The purpose of this study was to examine the effect of hyper-osmotic stress on protein turnover in skeletal muscle tissue using an established in-vitro model. Rat EDL muscles were incubated in either hyper-osmotic (400 ± 10 Osm) or isoosmotic (290 ± 10 Osm) custom-modified media (Gibco). L-[14C]-U-phenylalanine (n=8) and cycloheximide (n=8) were used to quantify protein synthesis and degradation, respectively. Western blotting analyses was performed to determine the activation of protein synthesis and degradation pathways. During hyperosmotic stress, protein degradation increased (p<0.05), while protein synthesis was decreased (p<0.05) as compared to the iso-osmotic condition. The decline in protein synthesis was accompanied by a decrease (p<0.05) in p70s6 kinase phosphorylation, while the increase in protein degradation was associated with an increase (p<0.05) in autolyzed calpain. Therefore, hyper-osmotic extracellular stress results in an intracellular catabolic environment in mammalian skeletal muscle tissue.
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Please consult the paper edition of this thesis to read. It is available on the 5th Floor of the Library at Call Number: Z 9999.5 B63 P54 2007
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Acute alterations in cell volume can substantively modulate subsequent metabolism of substrates. However, how such alterations in skeletal muscle modulate protein metabolism is limited. The purpose of this study was to determine the time dependent influence of extracellular osmotic stress on protein turnover in skeletal muscle cells. L6 cells were incubated in hyperosmotic (HYPER; 425.3 ± 1.8mmol/kg), hypo-osmotic (HYPO; 235.4 ± 1.0mmol/kg) or control (CON; 333.5 ± 1.4mmol/kg) media for 4, 8, 12, or 24hrs. During the final 4hrs, incorporation of L-[ring-3,5-3H]-tyrosine was measured to estimate protein synthesis. Western blotting measured markers of protein synthesis and degradation. No differences were observed in any outcomes except p70S6K phosphorylation whereby HYPO was lower (p<0.05) than CON and HYPER; which remained similar except for a large increase at 8hrs for HYPER. These findings suggest that regardless of duration, extracellular osmotic stress does not significantly affect protein metabolism in L6 cells.
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Le lait écrémé est utilisé depuis plus d’un demi-siècle comme diluant protecteur des spermatozoïdes de mammifères. Depuis quelques années, il existe une demande grandissante pour des diluants exempts de produits d’origine animale. Toutefois, le mécanisme par lequel le lait protège les spermatozoïdes n’est pas connu, ce qui rend difficile de lui trouver un substitut. Les protéines majeures du plasma séminal de taureau, les protéines « Binder of SPerm » (BSP), sont néfastes lors de la conservation de la semence. Les spermatozoïdes sont en contact avec une grande concentration de protéines BSP qui stimulent une extraction continuelle de cholestérol/phospholipides de leur membrane plasmique. Les lipoprotéines de faible densité (LDL) du jaune d’oeuf, un autre composé utilisé dans les diluants, empêcheraient les protéines BSP de se lier à la membrane des spermatozoïdes de taureaux et de stimuler un efflux des lipides membranaires, ce qui les protégerait durant la conservation. Notre hypothèse était que les protéines du lait protègent les spermatozoïdes durant la conservation en séquestrant les protéines BSP. Premièrement, nous avons démontré par filtration sur gel qu’il y a une interaction entre les protéines BSP bovines et les protéines du lait. Le lait écrémé a été fractionné en trois fractions : F1 (alpha-lactalbumine, bêta-lactoglobuline et caséine kappa), F2 (toutes les protéines du lait) et F3 (sels, sucres et petits peptides). Les protéines BSP1 et BSP5 ont une affinité plus grande pour F1 que BSP3, tandis que toutes les protéines BSP ont une affinité pour F2. Le titrage calorimétrique isotherme a permis de confirmer l’interaction entre les protéines BSP et les protéines du lait. L’association entre la protéine BSP1 bovine et les micelles de caséines est caractérisée par une constante d’affinité (Ka) de 3.5 × 10^5 M-1 et un paramètre stoichiométrique (n) de 4,5 BSP1 pour une caséine. L’association entre la protéine BSP1 bovine et l’alpha-lactalbumine (une protéine du sérum principale), est caractérisée par un Ka de 2.4 × 10^5 M-1 et une valeur “n” de 0,8. Ces résultats indiquent que le lait protège les spermatozoïdes bovins en séquestrant les protéines BSP grâce à une interaction protéine : protéine, tandis que le jaune d’oeuf les protège grâce à une interaction protéine : lipoprotéine. Deuxièmement, nous avons démontré par filtration sur gel que les protéines homologues aux BSP bovines retrouvées dans le plasma séminal de porc, d’étalon et de bélier ont une affinité avec les protéines du lait, ce qui suggère que le mécanisme de protection des spermatozoïdes par le lait pourrait être le même chez ces espèces. Troisièmement, nous avons caractérisé l’interaction entre BSP1 bovine et les LDL du jaune d’oeuf qui a un Ka de 3.4 ± 0.4 × 10^6 M-1 et une valeur de « n » de 104 BSP1 pour une particule de LDL, indiquant qu’il existe des différences entre le mécanisme de protection des spermatozoïdes par le lait et le jaune d’oeuf. Nous croyons que les résultats présentés dans cette thèse aideront à créer de nouveaux diluants ne contenant pas de produits d’origine animale afin de cryoconserver les spermatozoïdes des mammifères.