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C Morand

Publications and source records attributed to C Morand.

At least 37 records · Page 2Linked to original sources

Opposite fluxes of glutamine and alanine in the splanchnic area are an efficient mechanism for nitrogen sparing in rats.

Glutamine release by the liver constitutes a process of nitrogen salvage through the recycling of a part of the nitrogen, which prevents irreversible nitrogen losses as urea. The aim of this work was to study the nitrogen cycling in the splanchnic bed under different nutritional conditions: fed state, postabsorptive state (16 h food deprivation) or prolonged starvation (24 or 40 h). Rats were adapted to a 15% casein diet for 15 d and then sampled. The digestive, hepatic and splanchnic balances of glucose, lactate, ketone bodies, urea and amino acids were determined. There was a net release of lactate and alanine by the digestive tract, due to the high rate of glycolysis and glutaminolysis. During prolonged starvation, ketone bodies became major energy fuel for the intestine. In fed rats, there was a net uptake of most amino acids by the liver, except for glutamine and glutamate. Urea, glutamine and glutamate released represented 33, 24 and 6% of total nitrogen taken up by the liver, respectively. In postabsorptive rats, compared with fed rats, there was a significant reduction of ureagenesis, and glutamine became the major form of nitrogen released by the liver. In fact, nitrogen cycling in the form of glutamine or glutamate in the liver may be interpreted as a nitrogen salvage process, rather than as an acid-base control process. In the splanchnic area, in parallel with a highly active cycling of glucose as lactate, there exists a nitrogen cycling involving opposite fluxes of glutamine and alanine.

Alanine↗

Plasma metabolites of quercetin and their antioxidant properties.

Quercetin is one of the most widely distributed flavonoids present in fruits and vegetables. The present experiments were performed on rats adapted for 3 wk to a semipurified diet supplemented with 0.2% quercetin. The major part of the circulating metabolites of quercetin (91.5%) are glucurono-sulfo conjugates of isorhamnetin (3'-O-methyl quercetin; 89.1 +/- 2.1 microM) and of quercetin (14.7 +/- 1.7 microM); the minor part (8.5%) is constituted by glucuronides of quercetin and its methoxylated forms (9.6 +/- 2.3 microM). Conjugated dienes formation, resulting from Cu2+-catalyzed oxidation of rat very low density lipoproteins + low density lipoproteins (LDL), was effectively inhibited in vitro by conjugated metabolites of quercetin. These metabolites appeared to be four times more potent than trolox in inhibiting LDL oxidation. Moreover, the plasma from rats adapted to a diet containing 0.2% quercetin exhibited a total antioxidant status markedly higher than that of control rats (+60%). This study shows that ubiquitous quercetin is conjugated in vivo, yielding metabolites that exhibit antioxidant properties. Thus the health benefits of flavonoids in foods can be due to the antioxidant properties of their metabolites.

Animals↗

Bioavailability of rutin and quercetin in rats.

Quercetin is a powerful antioxidant which is widely distributed in edible plants, mainly as glycosides such as rutin. It has been reported to be absorbed in mammals, but its metabolism needs further investigation to evaluate its possible physiological effects. We compared the evolution of the absorption of quercetin and rutin in rats fed with supplemented diets. Rutin was absorbed more slowly than quercetin because it must be hydrolysed by the cecal microflora, whereas quercetin was absorbed from the small intestine. Conjugated derivatives of quercetin, and its methylated forms isorhamnetin and tamarixetin, were recovered in plasma from rats receiving the two kinds of experimental diets after the first meal, but after 10 days, no traces of tamarixetin were detected anymore. The rate of elimination of quercetin metabolites seems very low, and high plasma concentrations are easily maintained with a regular supply of quercetin or rutin in the diet.

Adaptation, Physiological↗

Glutamine or glutamate release by the liver constitutes a major mechanism for nitrogen salvage.

The aim of the present study was to investigate mechanisms of N salvage by the liver when a diet is protein deficient. For this purpose, rats were adapted to a slightly deficient (11% casein) or moderately surfeit (22% casein) dietary protein level. Animals were sampled during the postprandial or the postabsorptive period, and fluxes across the digestive tract and liver were determined. During the postabsorptive period there was a negative balance of glutamine across the digestive tract in both diet groups. During the postprandial period the digestive balance of glutamine was still negative, despite a substantial supply of dietary glutamine and glutamate, suggesting that glutamine utilization is maximal during this period. There was a net production of glutamate and glutamine by the liver in both diet groups, but glutamine release was 73% higher in rats fed the low-protein diet. In these animals, because of the relatively low capacity of ureagenesis, N utilization was shifted toward glutamine synthesis: overall uptake of amino acids by the liver was approximately 5.3 micromol/min, and net release of glutamine + glutamate was approximately 2.9 micromol/min (hence a 55% cycling, on a molar basis). This cycling was only 12% in rats adapted to the 22% casein diet. When liver ammonia uptake was taken into account, N cycling showed parallel changes: 64% or 15% in rats adapted to the 11% or 22% casein diet, respectively. Besides glutamine delivery, glutamate was also released by the liver, representing an N source for extrasplanchnic tissues. With protein-deficient diets, hepatic glutamine delivery mainly serves to fulfill substrate needs for intestinal metabolism, which represents a mechanism for N salvage. This shift of N metabolism from urea toward glutamine production may imply a glutamate transfer from periportal to glutamine-synthesizing perivenous hepatocytes.

Absorption↗

Effectiveness of resistant starch, compared to guar gum, in depressing plasma cholesterol and enhancing fecal steroid excretion.

Amylase-resistant starch (RS) represents a substrate that can be administered in substantial amounts in the diet, in contrast to gel-forming polysaccharides, such as guar gum (GG). The aim of this work was thus to compare the effects of GG and RS on cholesterol metabolism in rats adapted to 0.4% cholesterol diets, using dietary GG or RS levels (8 or 20%, respectively) that led to a similar development of fermentations, as assessed by the degree of enlargement of the cecum. The RS diet elicited a marked rise in the cecal pool of short-chain fatty acids, especially acetic and butyric acid, whereas the GG diet favored high-propionic acid fermentations. Both polysaccharides markedly altered the cholesterol excretion, from 50% of ingested cholesterol in controls, up to about 70% in rats adapted to the RS or GG diets. With these diets, the fecal excretion of bile acids was enhanced (67 and 144% with the RS and GG diets, respectively). RS and GG diets were effective in lowering plasma cholesterol (about -40%) and triglycerides (-36%). There was practically no effect of the diets on cholesterol in d > 1.040 lipoproteins (high density lipoproteins), whereas RS (and to a larger extent, GG) were very effective to depress cholesterol in d < 1.040 lipoproteins (especially in triglyceride-rich lipoproteins). Fermentable polysaccharides counteracted the accumulation of cholesterol in the liver, especially cholesterol esters. In parallel, liver acyl CoA:cholesterol acyltransferase was depressed in rats fed the RS or GG diets, whereas only the GG diet counteracted the downregulation of 3-hydroxy-3-methylglutaryl-CoA by cholesterol. These data suggest that RS may be practically as effective as a gel-forming gum, such as GG, on steroid excretion and on cholesterol metabolism.

Animals↗

Effect of propionate on fatty acid and cholesterol synthesis and on acetate metabolism in isolated rat hepatocytes.

In the present study the actual role of propionic acid in the control of fatty acid and cholesterol synthesis was investigated in isolated liver cells from fed rats maintained in the presence of near-physiological concentrations of glucose, glutamine and acetate. Using 3H2O for lipid labelling, propionate appears as an effective inhibitor of fatty acid synthesis and to a lesser extent of cholesterol synthesis, even at the lowest concentration used (0.6 mmol/l). Butyrate is a potent activator of both synthetic pathways, and the activating effect was not counteracted by propionate. Using 1-[14C]acetate, it was observed that propionate at a moderate concentration, or 1 mmol oleate/l, are both very effective inhibitors of 14C incorporation into fatty acid and cholesterol. This incorporation was drastically inhibited when propionate and oleate were present together in the incubation medium. The net utilization of acetate by rat hepatocytes was impaired by propionate, in contrast to oleate. 1-[14C]butyrate was utilized at a high rate for fatty acid synthesis, but to a lesser extent for cholesterol synthesis; both processes were unaffected by propionate. Intracellular citrate concentration was not markedly depressed by propionate, whereas it was strongly elevated by butyrate. In conclusion, propionate may represent an effective inhibitor of lipid synthesis when acetate is a major source of acetyl-CoA, a situation which is encountered with diets rich in readily-fermentable fibres. The present findings also suggest that propionate may be effective at concentrations close to values measured in vivo in the portal vein.

Acetates↗

Quercetin metabolites in plasma of rats fed diets containing rutin or quercetin.

We studied the bioavailability and the plasma transport of flavonols in rats fed quercetin or rutin diets. Wistar rats were fed one of the following purified diets for 10 d: control; 16.4 or 8.2 mmol rutin/kg diet; or 16.4, 8.2 or 4.1 mmol quercetin/kg diet. Flavonol concentrations were determined in plasma, ileal and cecal contents, and feces. In rats fed diets containing 16.4 mmol quercetin or rutin/kg, the concentration of circulating flavonols was approximately 115 mumol/L. Quercetin or rutin administration resulted in similar concentrations of quercetin in cecal contents. By HPLC analysis and beta-glucuronidase/sulfatase treatment, plasma flavonols have been identified as conjugated quercetin itself, or a conjugated form (4.5-fold as abundant) of an aglycone less polar than quercetin. Rats fed quercetin or rutin diets had a green/yellow-colored plasma that exhibited a peak absorbance at 411 nm, vs. 363 or 375 nm for pure rutin or quercetin solutions, respectively. This shift of band I absorption was obtained when pure quercetin was in the presence of albumin or added to a plasma fraction. The bathochromic properties of flavonoids in the presence of albumin are highly dependent on the presence of the C-2/C-3 double bond on the C-ring and are influenced by the degree of B-ring hydroxylation. The existence of intermolecular bonds between albumin and quercetin is supported by in vitro absorbance and fluorescence studies. With human albumin, the fluorescence intensity and the shift of quercetin absorbance increased in parallel to the albumin/quercetin molar ratio. Conjugated diene formation, resulting from Cu(2+)-catalyzed oxidation of human LDL or rat VLDL+LDL was effectively inhibited in vitro by 0.5 mumol/L quercetin. These results show that dietary flavonols are recovered in rat plasma as conjugated metabolites in non-negligible concentrations, and that these flavonols may be interesting antioxidant micronutrients with a variety of biological effects.

Albumins↗

Importance of the modulation of glycolysis in the control of lactate metabolism by fatty acids in isolated hepatocytes from fed rats.

In liver cells from fed rats, lactate utilization depends on its extracellular concentration and the threshold concentration at which lactate uptake equilibrates release is about 3 mM. Even-chain fatty acids (butyrate, octanoate, or oleate) played a crucial role (i) to depress the lactate release, from 40% (butyrate or oleate) to 72% (octanoate), and (ii) to lower the threshold concentration for lactate utilization (down to 1 mM with octanoate). The effects of fatty acids were connected to their inhibition of hepatic glycolysis, estimated by the detritiation of [6-3H]glucose (about -30% with butyrate or oleate and -45% with octanoate). Fatty acids depressed the cellular concentration of pyruvate which, at physiological concentration of lactate, favors its utilization. The rise in ketone bodies concentration in response to fatty acids reflected an enhanced acetyl CoA production, resulting in an accumulation of citrate. In parallel there was a drop of the cellular concentration of fructose 2,6-biphosphate. As a result, there was an inhibition of the flux through 6-phosphofructo-1 kinase (50, 75, or 40% inhibition with butyrate, octanoate, or oleate, respectively). The other regulatory glycolysis steps, catalyzed by glucokinase and pyruvate kinase, were not affected by fatty acids. Inhibition of hepatic glycolysis by fatty acids seems connected to acetyl-CoA generation since octanoate, readily metabolized to acetyl-CoA and ketone bodies by hepatocytes, had a more potent stimulatory effect on the hepatic uptake of lactate than butyrate or oleate. Propionate, which yields practically no acetyl CoA, slightly stimulated lactate release and elevated the threshold of lactate utilization. The present data suggest thus that, in hepatocytes from fed rats, fatty acids effectively inhibit glycolysis and switch liver cell metabolism toward gluconeogenic conditions, which promotes lactate utilization.

Acetyl Coenzyme A↗

Control of lactate utilization by extracellular pH in isolated rat liver cells.

This study reports the influence of external pH on lactate balance in hepatocytes isolated from fed and 24-hour-starved rats. The effects of changes in extracellular pH on the utilization of lactate by liver cells has been studied in conditions simulating metabolic acidosis (pH 7.15, 10 mmol/L bicarbonate). The addition of lactate to a suspension of liver cells from fed rats shifted the lactate balance from net release to net utilization; the threshold of this shift was about 3 mmol/L in the presence of 10 mmol/L glucose. In these cells, acidic external pH (7.15) played a crucial role in stimulating the lactate utilization as shown by (1) a diminished release of lactate in the absence of lactate addition (-60%); (2) a marked decrease of the threshold of lactate utilization down to 1.2 mmol/L; and (3) a net stimulation of the lactate utilization for concentrations in the physiologic range (2 to 3 mmol/L). The effect of acidosis was mediated by an inhibition of glycolysis (-40%). Besides that, at pH 7.45, the addition of 100 mumol/L AICA-riboside 5-amino-4-imidazolecarboxamide riboside, (an inhibitor of hepatic glycolysis) mimicked the effect of acidosis. Moreover, differences in lactate fluxes between the two pH conditions were decreased in the absence of glucose. In liver cells from starved rats, regardless of the concentration of added lactate, the lactate balance was always directed toward net utilization. Accordingly, a change in external pH from 7.45 to 7.15 had a lesser effect on lactate metabolism than in liver cells from fed rats.(ABSTRACT TRUNCATED AT 250 WORDS)

Aminoimidazole Carboxamide↗

Role of dietary propionic acid and bile acid excretion in the hypocholesterolemic effects of oligosaccharides in rats.

The aim of this study was to evaluate the influence of dietary propionic acid and bile acid excretion on the hypocholesterolemic effect of fibers. For this purpose, rats were adapted to a diet containing 10 g inulin, 10 g beta-cyclodextrin, or 2.5 g calcium propionate per 100 g diet. Both the inulin and beta-cyclodextrin diets elicited high propionic acid fermentations in the cecum (approximately 45% of total short-chain fatty acids) with relatively low molar proportions of acetic and butyric acids. In rats fed the three experimental diets, 5-7 mumol/min of propionic acid was absorbed in the portal vein, and propionic acid was entirely metabolized by the liver. Plasma cholesterol was more effectively depressed by the beta-cyclodextrin diet than by the inulin diet; the propionic acid-supplemented diet was ineffective in this respect. The inulin diet slightly increased fecal bile acid excretion, compared with the control diet, whereas beta-cyclodextrin markedly enhanced (1.8-fold) bile acid excretion. Microsomal hydroxymethylglutaryl-CoA (HMG-CoA) reductase activity was slightly depressed in rats fed the propionic acid-supplemented diet, whereas it was enhanced by the beta-cyclodextrin diet in parallel to the activity of cholesterol 7 alpha-hydroxylase. The present data suggest that absorption and further hepatic metabolism of large amounts of propionic acid are not sufficient to counteract the induction of HMG-CoA reductase resulting from bile acid fecal losses. The rise of these losses plays a major role in the hypocholesterolemic effect of beta-cyclodextrin.

Absorption↗

Fatty acids are potent modulators of lactate utilization in isolated hepatocytes from fed rats.

This work reports the roles of the concentration of lactate and of fatty acids on lactate uptake by liver cells isolated from fed or 24-h starved rats. Hepatocytes isolated from fed rats released lactate and pyruvate. The addition of lactate shifted the lactate balance from net release to net utilization, with a threshold at approximately 2 mM. Lactate favored its own utilization by 1) increasing the lactate-to-pyruvate ratio (L/P) and 2) inhibiting hepatic glycolysis. The addition of oleate to the cells elicited 1) a net reduction of the release of lactate and pyruvate in basal conditions, 2) a marked decrease in the threshold of lactate utilization, down to values close to 0.5 mM, and 3) an important stimulation of the utilization of lactate, at physiological concentrations of 2-3 mM. These changes in lactate utilization induced by oleate were accompanied by a parallel increase of the L/P. Oleate acted by decreasing the cellular concentrations of pyruvate. Such an effect was mediated by 1) an inhibition of glycolysis and 2) a rise in pyruvate utilization toward glucose. Moreover, it seems that the capacity of various fatty acids to stimulate lactate utilization depends on their rate of oxidation by the liver. In liver cells isolated from 24-h starved rats, in keeping with the activation of gluconeogenesis, lactate was utilized by hepatocytes even at low concentrations. Because of the low glycolysis and of the high utilization of pyruvate in these cells, the presence of oleate only induced a moderate increase of lactate utilization (+32%).(ABSTRACT TRUNCATED AT 250 WORDS)

Acetates↗