7 resultados para Glucòlisi


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La incorporació del Moodle com a eina de docència, i l’augment de hores no presencials a les diverses assignatures fa que calgui incorporar les noves tecnologies perquè els alumnes disposin de més material docent al seu abast. Però l’acumulació de material fa que només sigui útil aquell material que es guanyi a l’alumne. En aquest sentit, creiem que les animacions i les eines interactives poden ser materials atractius pels alumnes. En aquest projecte hem creat una eina d’animació interactiva perquè l’estudiant de Bioquímica practiqui i aprengui una de les rutes metabòliques principals: la glucòlisi. Aquesta eina consta d’una pantalla separada en 3 zones: 1) una zona lateral que inclou la ruta metabòlica completa, i en la que l’alumne pot prémer sobre cada un dels passos que estructuren la ruta (finestra del metabolisme); 2) una zona inferior que presenta la reacció individual de la ruta metabòlica, en la que s’observa l’estructura química de les molècules i informació de l’enzim implicat en la reacció (finestra de l’enzim); i 3) una zona central en la que a través d’una animació amb Macromedia Flash MX, l’alumne observa el mecanisme químic de la reacció (finestra del mecanisme químic). Les tres zones són interactives i en prémer sobre elles donen informació, respectivament sobre la ruta completa, l’enzim de cada pas en particular i el mecanisme d’acció. A més, la finestra del mecanisme químic permet aturar en qualsevol moment la animació, tornar enrere i veure els intermediaris. Durant el segon semestre del curs 2006-2007 hem avaluat l’eina amb alumnes de Bioquímica de la Llicenciatura de Química, incorporant-la als dossier electrònics. Creiem que hem assolit els objectius que es proposaven: aprendre una ruta metabòlica, de manera divertida; aprendre el mecanisme de cada un dels passos de la ruta i aprendre l’estructura química dels metabòlits intermediaris de la ruta.

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La incorporació del Moodle com a eina de docència, i l’augment de hores no presencials a les diverses assignatures fa que calgui incorporar les noves tecnologies perquè els alumnes disposin de més material docent al seu abast. Però l’acumulació de material fa que només sigui útil aquell material que es guanyi a l’alumne. En aquest sentit, creiem que les animacions i les eines interactives poden ser materials atractius pels alumnes. En aquest projecte hem creat una eina d’animació interactiva perquè l’estudiant de Bioquímica practiqui i aprengui dues rutes principals del metabolisme de hidrats de carboni: la glucòlisi i la gluconeogènesi. Aquesta eina consta d’una pantalla separada en 3 zones: 1) una zona lateral que inclou la ruta metabòlica completa, i en la que l’alumne pot prémer sobre cada un dels passos que estructuren la ruta (finestra del metabolisme); 2) una zona inferior que presenta la reacció individual de la ruta metabòlica, en la que s’observa l’estructura química de les molècules i informació de l’enzim implicat en la reacció (finestra de l’enzim); i 3) una zona central en la que a través d’una animació amb Macromedia Flash MX, l’alumne observa el mecanisme químic de la reacció (finestra del mecanisme químic). Les tres zones són interactives i en prémer sobre elles donen informació, respectivament sobre la ruta completa, l’enzim de cada pas en particular i el mecanisme d’acció. A més, la finestra del mecanisme químic permet aturar en qualsevol moment la animació, tornar enrere i veure els intermediaris. Durant el segon semestre del curs 2007-2008 hem avaluat l’eina amb alumnes de Bioquímica de la Llicenciatura de Química, incorporant-la als dossier electrònics i al Moodle. Creiem que hem assolit els objectius que es proposaven: que l’alumne aprengui les dues rutes metabòliques, de manera divertida; el mecanisme de cada un dels passos de les rutes i l’estructura química dels metabòlits intermediaris de les rutes.

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Background: Glycogen-depleting exercise can lead to supercompensation of muscle glycogen stores, but the biochemical mechanisms of this phenomenon are still not completely understood. Methods: Using chronic low-frequency stimulation (CLFS) as an exercise model, the tibialis anterior muscle of rabbits was stimulated for either 1 or 24 hours, inducing a reduction in glycogen of 90% and 50% respectively. Glycogen recovery was subsequently monitored during 24 hours of rest. Results: In muscles stimulated for 1 hour, glycogen recovered basal levels during the rest period. However, in those stimulated for 24 hours, glycogen was supercompensated and its levels remained 50% higher than basal levels after 6 hours of rest, although the newly synthesized glycogen had fewer branches. This increase in glycogen correlated with an increase in hexokinase-2 expression and activity, a reduction in the glycogen phosphorylase activity ratio and an increase in the glycogen synthase activity ratio, due to dephosphorylation of site 3a, even in the presence of elevated glycogen stores. During supercompensation there was also an increase in 59-AMP-activated protein kinase phosphorylation, correlating with a stable reduction in ATP and total purine nucleotide levels. Conclusions: Glycogen supercompensation requires a coordinated chain of events at two levels in the context of decreased cell energy balance: First, an increase in the glucose phosphorylation capacity of the muscle and secondly, control of the enzymes directly involved in the synthesis and degradation of the glycogen molecule. However, supercompensated glycogen has fewer branches.

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The effects of diet composition and ration size on the activities of key enzymes involved in intermediary metabolism were studied in the liver of gilthead sea bream (Sparus aurata). Highcarbohydrate, low-protein diets stimulated 6-phosphofructo 1-kinase (EC 2.7.1.11), pyruvate kinase (EC 2.7.1.40), glucose-6-phosphate dehydrogenase (EC 1.1.1.49) and 6-phosphogluconate dehydrogenase (EC 1.1.1.44) enzyme activities, while they decreased alanine aminotransferase (EC 2.6.1.2) activity. A high degree of correlation was found between food ration size and the activity of the enzymes 6-phosphofructo 1-kinase, pyruvate kinase, glucose-6-phosphate dehydrogenase (positive correlations) and fructose-1,6-bisphosphatase (EC 3.1.3.11) (negative correlation). These correlations matched well with the high correlation also found between ration size and growth rate in starved fish refed for 22 d. Limited feeding (5 g/kg body weight) for 22 d decreased the activities of the key enzymes for glycolysis and lipogenesis, and alanine aminotransferase activity. The findings presented here indicate a high level of metabolic adaptation to both diet type and ration size. In particular, adaptation of enzyme activities to the consumption of a diet with a high carbohydrate level suggests that a carnivorous fish like Sparus aurata can tolerate partial replacement of protein by carbohydrate in the commercial diets supplied in culture. The relationship between enzyme activities, ration size and fish growth indicates that the enzymes quickly respond to dietary manipulations of cultured fish.

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The effects of diet composition and ration size on the activities of key enzymes involved in intermediary metabolism were studied in the liver of gilthead sea bream (Sparus aurata). Highcarbohydrate, low-protein diets stimulated 6-phosphofructo 1-kinase (EC 2.7.1.11), pyruvate kinase (EC 2.7.1.40), glucose-6-phosphate dehydrogenase (EC 1.1.1.49) and 6-phosphogluconate dehydrogenase (EC 1.1.1.44) enzyme activities, while they decreased alanine aminotransferase (EC 2.6.1.2) activity. A high degree of correlation was found between food ration size and the activity of the enzymes 6-phosphofructo 1-kinase, pyruvate kinase, glucose-6-phosphate dehydrogenase (positive correlations) and fructose-1,6-bisphosphatase (EC 3.1.3.11) (negative correlation). These correlations matched well with the high correlation also found between ration size and growth rate in starved fish refed for 22 d. Limited feeding (5 g/kg body weight) for 22 d decreased the activities of the key enzymes for glycolysis and lipogenesis, and alanine aminotransferase activity. The findings presented here indicate a high level of metabolic adaptation to both diet type and ration size. In particular, adaptation of enzyme activities to the consumption of a diet with a high carbohydrate level suggests that a carnivorous fish like Sparus aurata can tolerate partial replacement of protein by carbohydrate in the commercial diets supplied in culture. The relationship between enzyme activities, ration size and fish growth indicates that the enzymes quickly respond to dietary manipulations of cultured fish.

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Cyclin-dependent kinases CDK4 and CDK6 are essential for the control of the cell cycle through the G1 phase. Aberrant expression of CDK4 and CDK6 is a hall- mark of cancer, which would suggest that CDK4 and CDK6 are attractive targets for cancer therapy. Herein, we report that calcein AM is a potent specific inhibitor of CDK4 and CDK6 in HCT116 human colon adenocarcinoma cells, inhibiting retinoblastoma protein (pRb) phosphorylation and inducing cell cycle arrest in the G1 phase. The metabolic effects of calcein AM (the calcein acetoxymethyl-ester) on HCT116 cells were also evaluated and the flux between the oxidative and non-oxidative branches of the pentose phos-phate pathway was significantly altered. To elucidate whe-ther these metabolic changes were due to the inhibition of CDK4 and CDK6, we also characterized the metabolic profile of a CDK4, CDK6 and CDK2 triple knockout of mouse embryonic fibroblasts. The results show that the metabolic profile associated with the depletion of CDK4, CDK6 and CDK2 coincides with the metabolic changes induced by calcein AM on HCT116 cells, thus confirming that the inhibition of CDK4 and CDK6 disrupts the balance between the oxidative and non-oxidative branches of the pentose phosphate pathway. Taken together, these results indicate that low doses of calcein can halt cell division and kill tumor cells. Thus, selective inhibition of CDK4 and CDK6 may be of greater pharmacological interest, since inhibitors of these kinases affect both cell cycle progression and the robust metabolic profile of tumors.

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The effects of pre-incubation with mercury (Hg2+) and cadmium (Cd2+) on the activities of individual glycolytic enzymes, on the flux and on internal metabolite concentrations of the upper part of glycolysis were investigated in mouse muscle extracts. In the range of metal concentrations analysed we found that only hexokinase and phosphofructokinase, the enzymes that shared the control of the flux, were inhibited by Hg2+ and Cd2+. The concentrations of the internal metabolites glucose-6-phosphate and fructose-6-phosphate did not change significantly when Hg2+ and Cd2+ were added. A mathematical model was constructed to explore the mechanisms of inhibition of Hg2+ and Cd2+ on hexokinase and phosphofructokinase. Equations derived from detailed mechanistic models for each inhibition were fitted to the experimental data. In a concentration-dependent manner these equations describe the observed inhibition of enzyme activity. Under the conditions analysed, the integral model showed that the simultaneous inhibition of hexokinase and phosphofructokinase explains the observation that the concentrations of glucose-6-phosphate and fructose-6-phosphate did not change as the heavy metals decreased the glycolytic flux.