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Metabolic interaction of secondary amines and tertiary amino propiophenones with monoamine oxidase systems.

The metabolic interaction of three secondary amines and three nitrogen-containing metabolites of safrole (tertiary amino propiophenones) with rat liver mitochondrial monoamine oxidase systems was studied in vitro employing [7-14C] benzylamine--HCl as a substrate. The two cyclic secondary amines, piperidine and pyrrolidine, showed hyperbolic competitive inhibition while pure competitive inhibition was observed in case of dimethylamine--HCl and three safrole metabolites. Inhibition characteristics for rat liver, kidney and brain mitochondrial monoamine oxidase with two cyclic secondary amines and tertiary amino with two cyclic secondary amines and tertiary amino propiophenones of safrole and elemicin were investigated manometrically using tyramine and serotonin as the substrates.

Animals

Acute metabolic interaction of ethanol and drugs.

Addition of ethanol in vitro was found to inhibit the microsomal metabolism of a variety of drugs such as meprobamate, aminopyrine, pentobarbital and zoxazolamine. In all cases, a mixed type of inhibition was obtained. When the concentration of alcohols of different chain lengths required to inhibit 50% of the metabolism of drugs was plotted against their corresponding octanol-water partition coefficients (Po/w) it was found that the inhibitory potency of alcohols is linearly related to the partition coefficients, with a slope of 0.98. In vivo acute administration of ethanol also resulted in decreased whole body metabolism of meprobamate, aminopyrine, pentobarbital, zoxazolamine and aniline. In vitro addition of pentobarbital, phenobarbital and meprobamate had no significant effect on ethanol metabolism by liver slices. Acute pretreatment with these drugs also had no effect on the rate of ethanol metabolism in vivo as measured in the whole body or as estimated from the rate of decrease of blood ethanol concentration. It appears therefore that acute metabolic interaction of ethanol and drugs is a one sided phenomenon, i.e. ethanol inhibits drug metabolism, whereas drugs do not inhibit ethanol metabolism. Ethanol inhibition of drug metabolism in vitro appears to result from a modification of the lipophilic milieu that surrounds the cytochrome P-450 in the microsomal membrane. Interference with the hydrophobic sites may either directly or indirectly affect the catalytic activities of the microsomal enzyme.

Animals

Health-associated key gut microbiota drives the variation in community metabolic interactions in non-human primates.

Gut microbiota often undergo metabolic cross-feeding and resource competition. However, our understanding of global variations in these interactions and their implications for host health remain elusive. By analyzing a microbial genome catalog from 841 fecal metagenomes across 53 primate species worldwide, we identified key microbiota assigned to two taxa, i.e., Bacillota_A and Pseudomonadota, which well predicted the trade-off of community-level interaction types between metabolic competition and cooperation. Specifically, Bacillota_A species were inherently competitive and amino acid auxotrophic and typically found in anaerobic habitats. In contrast, members of Pseudomonadota were inherently cooperative, siderophore producers, and more abundant in aerobic conditions. Random forest models successfully distinguished unhealthy gut samples from healthy samples through the key competitive and cooperative microbiota, suggesting potential links between community metabolic interactions and host health. Together, this study enhances our mechanistic understanding of microbial interaction dynamism within complex gut ecosystems, offering new targets for understanding host health.

Animals

Metabolic interactions of glucose, acetoacetate and adrenaline in rat submaxillary gland in vitro.

1. The metabolic interactions between glucose, acetoacetate and adrenaline were studied in submaxillary-gland slices. 2. Acetoacetate (2.5 mM) inhibited glucose removal by 22% and entry of glucose carbon into the tricarboxylic acid cycle by 54%. 3. Acetoacetate caused an increase in (glucose 6-phosphate) together with an increase in (citrate), a finding that suggests that the phosphofructokinase step might be inhibited by the elevated (citrate). Support for this suggestion was obtained in experiments in which fluoracetate was used to elevate (citrate). 4. A further site of action of acetoacetate at the pyruvate dehydrogenase step was suggested by an increase in the lactate+pyruvate pool, and the finding that pyruvate removal and (3-14C)pyruvate oxidation were inhibited by acetoacetate. 5. Adrenaline, a stimulator of secretion by this tissue, increased glucose removal by 25%. Adrenaline increased glucose removal to the same extent when acetoacetate was also present in the incubation medium. In both cases the increase was accompanied by a fall in (glucose 6-phosphate). 6. Adrenaline also overcame the inhibition of pyruvate removal caused by acetoacetate. 7. The tissue (ATP) decreased by about 50% on addition of adrenaline, and a similar fall was observed in vivo after adrenergic stimulation by isoproterenol. 8. Omission of Ca-2+ from the medium prevented the fall in (glucose 6-phosphate) and (ATP) caused by adrenaline, although adrenaline was still able to stimulate glucose removal. The inhibitory effect of acetoacetate on gluocse removal was reversed by adrenaline, but there was no stimulation above the control rates. Inhibition of pyruvate removal by acetoacetate was not overcome by adrenaline in the absence of Ca-2+. 9. Dibutyryl cyclic AMP had no effect on glucose removal or on (ATP). 10. Possible mechanisms by which adrenaline can bring about its metabolic effects are discussed.

Acetoacetates

Behavioral and metabolic interaction between gossypol and ethanol.

The effects of gossypol on ethanol-elicited responses pertaining to liver ethanol, acetaldehyde-metabolizing enzymes and alcohol preference were studied in rodents. Intraperitoneal injection of a single dose of gossypol, 100 mg/kg, inhibited hepatic alcohol dehydrogenase for 50 h in mice from both sexes. The acute gossypol treatment produced earlier inhibition of mouse liver cytoplasmic aldehyde dehydrogenase in male than female mice. Acute gossypol administration initially inhibited mouse liver subcellular mitochondrial aldehyde dehydrogenase in both sexes which was not evident 50 h later. Administration of gossypol, 10 mg/kg i.p., to male rats with preference for ethanol caused aversion for ethanol drinking. The enzymatic determinations indicate gender sensitivity of subcellular mouse liver aldehyde dehydrogenase to gossypol. The behavioral study suggests adverse metabolic interaction between gossypol and alcohol which may underlie the rat aversion to voluntary ethanol drinking.

Alcohol Dehydrogenase

[The metabolic interactions between Paramecium bursaria Ehrbg. and Chlorella spec. in the Paramecium bursaria-symbiosis. I. The nitrogen and the carbon metabolism (author's transl)].

Symbiotic Chlorellae have been isolated from Paramecium bursaria Ehrbg. and cultivated under conditions of nitrogen deficiency. Reinfection of Chlorella-free Paramecium bursaria with these nitrogen-deficient algae resulted in a complete regeneration and multiplication of the algae within the host cells. The endosymbiotic algal cells of the Paramecium bursaria-symbiosis can be supplied by their host with nitrogen. The inhibition of photosynthesis by 3-(3,4-Dichlorophenyl)-1,1-dimethylurea (DCMU) leads in green Paramecium bursaria to a breakdown of the symbiotic steady state-system resulting in a loss of algal cells. Obviously the endosymbiotic algae cannot be fed heterotrophically by their host to such an extent that a stable symbiosis is maintained. The application of 3-(3,4-Dichlorophenyl)-1,1-dimethylurea (DCMU) can be used as a new method for culturing Chlorella-free Paramecium bursaria.

Chlorella

[The metabolic interaction of cobalt and silver in the body during their combined action].

Mixtures of cobalt and silver in ratio (0.2:0.4), (0.2:0.2) and (0.2:0.1) mg/kg were once administrated intraperitoneally and intratracheally to white rats. Metabolism of the metals was studied. Combined exposure to metals appeared to influence greatly on their toxicokinetics. The co-action between metals appears during their absorption into the blood--the elevated peritoneal absorption of cobalt depresses that of silver. The reverse relationship is demonstrated during the intratracheal insertion. Such peculiarities of co-action exist during the further stages of metabolism.

Absorption

Metabolic interaction of recombinant interferon-beta and zidovudine in AIDS patients.

Zidovudine (AZT), the only currently approved drug for treatment of human immunodeficiency virus (HIV) in AIDS, is known to be metabolized by mammalian systems to a variety of metabolites including 3'-azido-3'-deoxy-5'-O-glucuronide (GAZT). Interferons (IFNs) are known to alter the microsomal enzyme system responsible for the metabolism of some compounds. The aim of the present study was to investigate the effect of combination therapy of recombinant (r) IFN-beta and AZT on the rates of metabolism of AZT in AIDS patients. AZT was given orally (200 mg every 4 h) for 8 weeks prior to initiation of rIFN-beta therapy (45 X 10(6) U/day, s.c.). Serum samples from 8 patients were obtained prior to and at days 3 and 15 following initiation of rIFN-beta therapy. Serum was analyzed by high-performance liquid chromatography (HPLC) for both AZT and GAZT. The serum data were analyzed by a computer-assisted pharmacokinetics program that calculates rates of AZT metabolism. The half life for AZT was increased approximately two-fold by day 15. The rate of metabolism of AZT was diminished from 1.43 h-1 prior to IFN-beta therapy, to 0.4 h-1 and 0.05 h-1 at days 3 and 15, respectively. The volume of distribution of AZT was 2 l/kg at day 0 and increased to 3.2 and 3.5 l/kg on days 3 and 15, respectively. In conclusion, the results indicate that rIFN-beta inhibits the rate of AZT metabolism in AIDS patients.

Acquired Immunodeficiency Syndrome

Metabolic interaction and disposition of methyl ethyl ketone and m-xylene in rats at single and repeated inhalation exposures.

1. Rats were exposed to m-xylene (300 ppm) and methyl ethyl ketone (MEK, 600 ppm) vapour, separately and in combination. 2. Repeated exposures to m-xylene enhanced liver drug-metabolizing capacity, whereas MEK showed no effects. After mixed exposure the cytochrome P-450-dependent monooxygenase activities were additively or synergistically induced. 3. In the presence of MEK the overall metabolism of xylene was strongly inhibited both after single and repeated exposures, an effect accompanied by elevation of xylene concentration in blood (18-29%) and fat (25-32%). 4. The 24-h excretion of the urine metabolites of m-xylene was decreased by 22-24% in mixed exposures: the excretion of methylhippuric acid was decreased (29%), but that of 2,4-dimethylphenol increased (9-35%). 5. After repeated inhalation exposures the excretion of xylene metabolites in urine was consistently higher, whereas the concentrations of xylene in fat (but not the concentration of MEK) were lower than after a single treatment, conceivably due to accelerated metabolic clearance of xylene. 6. Thioether excretion in urine was enhanced in xylene-treated rats (7-13-fold), but was not influenced by the induced changes in the metabolism of xylene. Xylene inhalation caused liver GSH to decrease slightly (10%), as did inhalation of MEK, but the latter did not enhance the excretion of thioethers. 7. MEK is a potent inhibitor of the side-chain oxidation of m-xylene producing methylhippuric acid, but not of its ring oxidation to 2,4-dimethylphenol, and exhibits a synergistic inducing effect on liver enzymes responsible for the oxidation of m-xylene. The increased ring oxidation of m-xylene was not associated with increased production of reactive metabolites indicated by GSH-depletion or thioether formation.

Administration, Inhalation

Alcohols-histones metabolic interactions in intact human erythrocytes.

Alcohols have a stimulating effect on the intracellular peroxidatic reactions of intact human erythrocytes. This effect depends directly on the molecular weight of alcohol and the H2O2 concentration. The human leukocyte nuclear histones, flavin-adenine-dinucleotide (FAD) and nicotinamide-adenine-dinucleotide (NAD) inhibit the peroxidatic reactions during the metabolism of alcohols in intact human erythrocytes. The participation of erythrocyte catalase, the possible metabolic pathway and the inhibitory effect of human leukocyte nuclear histones, FAD and NAD on the intracellular metabolism of alcohols is discussed.

Alcohols

Intracellular pH regulation and metabolic interactions in hepatic tissues.

Intracellular pH (pHi) regulation in the vertebrate liver relies heavily on ionic transport mechanisms. Liver, in common with many tissues, has plasma membrane Na(+)-H+ and Cl(-)-HCO3- electroneutral exchangers which work in opposition to tightly control pHi. Mammalian livers also possess electrogenic Na(+)-HCO3- exchangers, capable of base uptake, which, when coupled to pHi-mediated changes in membrane potential, probably confer an additional measure of pHi control, compared to fish livers, where the transporter appears to be functionally absent. It is suggested that this may be a fundamental difference between aquatic and aerial breathing. pHi regulation has barely been examined in invertebrate hepatic tissues, but already some interesting differences are apparent. Notably, an electrogenic 2Na(+)-1H+ acid-extrusion system is present in apical membranes of crustacean hepatopancreas. Despite these ionic control systems, complex acid-base disturbances (e.g., "metabolic" acidosis) have been known for some time to influence hepatic metabolism in vertebrates, but few studies have carefully examined the independent effects of the acid-base variables involved. Thus mechanistic explanations for the effects of acid-base disturbances are scarce. Ureogenesis in mammals has been well studied, and several pH-related mechanisms are evident. In contrast, the pH-insensitivity of ureogenesis in fish liver may represent a second difference between aquatic and terrestrial species. In summary, by virtue of its metabolic diversity, liver represents a potentially important organ in acid-base balance, and an interesting study tissue for interrelationships between metabolism and acid-base balance.

Acid-Base Equilibrium

Metabolic interactions of dichloroacetate and insulin in experimental diabetic ketoacidosis.

1. The infusion of sodium dichloroacetate into rats with severe diabetic ketoacidosis over 4h caused a 2mM decrease in blood glucose, and small falls in blood lactate and pyruvate concentrations. Similar findings had been reported in normal rats (Blackshear et al., 1974). In contrast there was a marked decrease in blood ketone-body concentration in the diabetic ketoacidotic rats after dichloroacetate treatment. 2. The infusion of insulin alone rapidly decreased blood glucose and ketone bodies, but caused an increase in blood lactate and pyruvate. 3. Dichloroacetate did not affect the response to insulin of blood glucose and ketone bodies, but abolished the increase of lactate and pyruvate seen after insulin infusion. 4. Neither insulin nor dichloroacetate stimulated glucose disappearance after functional hepatectomy, but both agents decreased the accumulation in blood of lactate, pyruvate and alanine. 5. Dichloroacetate inhibited 3-hydroxybutyrate uptake by the extra-splachnic tissues; insulin reversed this effect. Ketone-body production must have decreased, as hepatic ketone-body content was unchanged by dicholoracetate yet blood concentrations decreased. 6. It was concluded that: (a) dichloroacetate had qualitatively similar effects on glucose metabolism in severely ketotic rats to those observed in non-diabetic starved animals; (b) insulin and dichloroacetate both separately and together, decreased the net release of lactate, pyruvate and alanine from the extra-splachnic tissues, possibly through a similar mechanism; (c) insulin reversed the inhibition of 3-hydroxybutyrate uptake caused by dichloroacetate; (d) dichloroacetate inhibited ketone-body production in severe ketoacidosis.

Acetates

[The metabolic interactions between Paramecium bursaria Ehrbg. and Chlorella spec. in the Paramecium bursaria-symbiosis. II. Symbiosis-specific properties of the physiology and the cytology of the symbiotic unit and their regulation (author's transl)].

The endosymbiotic association of Paramecium bursaria Ehrbg. with Chlorella spec. (green Paramecium) was studied both physiologically and cytologically. Comparison of the properties of the symbiotic unit with those of the symbiotic partners which had been isolated from it revealed the following features and differences: 1. Up to 6000 lux the photosynthetic capacity of the symbiotic unit is higher than that of the isolated symbiotic algae grown independently in mass culture under defined conditions. Alga-free Paramecium bursaria (colourless Paramecium) show a very low rate of CO2-fixation. 2. The green Paramecium has a higher compensationpoint of photosynthesis (4000-5000 lux) than the isolated alga (200-400 lux). 3. Green paramecia consume less oxygen in darkness than colourless organisms but more than the isolated algae. 4. The uptake of carbohydrates from the culture medium by green parpmecia is lower than the uptake by alga-free P. bursaria but higher than the one of the isolated algae. 5. Symbiotic algae within the intact symbiotic unit show tightly packed photosynthetic membranes and an intense disposition of starch. In the presence of 3-(3,4-Dichlorophenyl)-1,1-dimethylurea (DCMU) or in darkness the arrangement of thylakoids is less compact and the deposition of starch is reduced. The growth and the number of the symbiotic algae in situ is regulated by a complex mechanism to which the intracellular level of carbohydrates belongs. The results are discussed in connection with ecological aspects of the Paramecium bursaria-endosymbiosis.

Animals

Metabolic interactions of xylitol and ethanol in healthy males.

The effects of oral administration of xylitol on the rate of ethanol elimination and on the ethanol-induced changes in blood concentrations of lactate and pyruvate were studied in seven healthy male subjects. Xylitol (1.0 g/kg body weight) was administered orally and ethanol (0.8 g/kg body weight) intravenously. In the control experiments glucose was given instead of xylitol. Xylitol had no significant effect on the rate of ethanol elimination or on the ethanol-induced increase in the blood lactate concentration. The ethanol-induced changes in the lactate/pyruvate ratio were not affected by xylitol. It is suggested that the ineffectiveness of xylitol is due to its low concentration in the liver after oral administration. Ethanol induced a 5--10 fold increase in the blood concentration of xylitol. This is most probably due to inhibition of xylitol oxidation in the liver by the ethanol-induced reduction in the hepatic redox state. The clinical significance of this finding is unknown.

Adolescent