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Developmental aspects of xenobiotic transformation.

In most laboratory animals monooxygenases are apparently absent or barely detectable in fetal organs until just before birth. In this contribution hepatic cytochrome P-450-dependent reactions in the rat are considered only. The results are interpreted on basis of the reaction scheme of Estabrook. To avoid methodological pitfalls the basic kinetics for all reactions investigated have been investigated with liver preparations from newborn and adult rats. The low monooxygenase activity of rat liver during the perinatal period can be observed even under optimal conditions for the in vitro enzyme assay. There are different developmental patterns for various reactions O-demethylation of codeine, phenazone-hydroxylation, first and second steps on N-demethylation of amidopyrine, N-demethylation of ethylmorphine. There are marked differences not only in Vmax but also in the postnatal development of Km and the inductibility by phenobarbital. Thus the existence of a different cytochrome P-450 is evident also by this approach. The low monooxygenase activity of rat liver during the perinatal period is not due to a lack of NADPH or NADH, to an age-dependent NADPH cytochrome P-450 reductase activity or to an age-dependent NADH-cytochrome P-450 reduction. Moreover this low activity is not due to an insufficient mitochondria-endoplasmic reticulum interaction. It is accompanied by low delta Amax after addition of a typical type I substrate (hexobarbital) and by a small amount of metyrapone-binding centers: it can be explained by a smaller percentage of active cytochrome P-450 in comparison to adult rat liver.

Aminopyrine

Carbon tetrachloride-induced changes in mixed function oxidases and microsomal cytochromes in the rat lung.

The effects of a single exposure, by gastric intubation or inhalation, to carbon tetrachloride (CCL4) on rat lungs were assessed. By 1 to 7 days, focal areas of alveolar collapse, septal edema, and modification of type II pneumonocytes were observed. By 24 hours after exposure to the toxin, there were no identifiable changes in surfactant levels or distribution. Microsomes obtained from the lungs and prepared for analysis revealed marked decreases in cytochrome P-450 content and P-450-related N-demethylation of dimethylaniline. Only a transient reduction of cytochrome b5 occurred, with a rebound exceeding control values during the period of pulmonary healing. Whether the lung acted as an excretory route (following intubation) or as an absorption path (after inhalation) made little difference. Carbon tetrachloride had no effect on in vitro microsome composition and function unless supplemented with a reduced form of nicotinamide adenine dinucleotide phosphate (NADPH) generating system. Under these circumstances, there was a reduction in both cytochromes b5 and P-450. Our data indicate that a considerable chemical modification of the pulmonary tissues had taken place, with no accompanying easily recognized changes in cellular structure. Furthermore, evidence for the in vitro destruction of pulmonary microsomal cytochromes P-450 and b5, unrelated to peroxidation, is indicated by these findings.

Administration, Oral

[In vitro inhibition of oxidative N-demethylation with carbon disulfide].

Earlier findings have shown that in experimental animals (rat) and in man inhaled carbon disulphide (CS2) reversibly inhibits the non-specific oxidative drug metabolism caused by hepatic microsomal enzymes. Very little is known concerning the underlying mechanism. The present investigations were undertaken to throw light on this question. After addition of an NADPH-regenerating system to liver microsomes isolated from adult female Wistar rats, the oxidative N-demethylation of aminopyrine was measured under simultaneous exposure to CS2 by quantitatively determining the formaldehyde obtained; the resulting data were evaluated using enzyme-kinetic parameters according to Lineweaver-Burk: 1. Following acute exposure to low and medium-grade CS2 concentrations (20-400 ppm/8 h), the pattern of inhibition in rat liver microsomes is identical to that obtained in normal liver microsomes to which CS2 had been added. This finding seems to suggest that the inhibitory process under in vivo and in vitro conditions is based on one and the same molecular mechanism. 2. Upon addition of CS2 the in vitro pattern of inhibition corresponds to a strong mixed-type inhibition. 3. It is concluded from the enzyme-kinetic behaviour that CS2 attacks at two different sites of the enzyme molecule: Binding to the first site is followed by inhibition, as evidenced by the rise of Km; after saturation of this site, a second site is occupied resulting in a reactivation and, beyond this, an activation of enzyme output, as shown by the decrease of Km. CS2 exhibits a high affinity for the first site, and a low affinity for the second site. Binding at the first site is reversible. The possibility that the active centre in the enzyme molecule is the site where binding of the inhibitor occurs is ruled out. 4. A continuous decrease of Vmax at increasing inhibitor concentration is causally related with the formation of an enzyme/substrate inhibitor complex. 5. The CS2 added to the microsomes can be eliminated by helium gas; this is followed by the return of the original enzyme activity. It is concluded from this behaviour that under in vitro conditions CS2 itself (rather than its metabolites) acts as the inhibitor. 6. Oxygen treatment of the microsome-containing reaction mixture enhances the inhibition. In substrate-free control mixtures, addition of CS2 was followed by the dose-dependent formation of formaldehyde; a causal explanation is not readily available at this time.

Air Pollutants

Interaction between NADPH-cytochrome P-450 reductase and hepatic microsomes.

Solubilized NADPH-cytochrome P-450 reductase has been purified from liver microsomes of phenobarbital-treated rats. When added to microsomes, the reductase enhances the monoxygenase, such as aryl hydrocarbon hydroxylase, ethoxycoumarin O-dealkylase, and benzphetamine N-demethylase, activities. The enhancement can be observed with microsomes prepared from phenobarbital- or 3-methylcholanthrene-treated, or non-treated rats. The added reductase is believed to be incorporated into the microsomal membrane, and the rate of the incorporation can be assayed by measuring the enhancement in ethoxycoumarin dealkylase activity. It requires a 30 min incubation at 37 degrees C for maximal incorporation and the process is much slower at lower temperatures. The temperature affects the rate but not the extent of the incorporation. After the incorporation, the enriched microsomes can be separated from the unbound reductase by gel filtration with a Sepharose 4B column. The relationship among the reductase added, reductase bound and the enhancement in hydroxylase activity has been examined. The relationship between the reductase level and the aryl hydrocarbon hydroxylase activity has also been studied with trypsin-treated microsomes. The trypsin treatment removes the reductase from the microsomes, and the decrease in reductase activity is accompanied by a parallel decrease in aryl hydrocarbon hydroxylase activity. When purified reductase is added, the treated microsomes are able to gain aryl hydrocarbon hydroxylase activity to a level comparable to that which can be obtained with normal microsomes. The present study demonstrates that purified NADPH-cytochrome P-450 reductase can be incorporated into the microsomal membrane and the incorporated reductase can interact with the cytochrome P-450 molecules in the membrane, possibly in the same mode as the endogenous reductase molecules. The result is consistent with a non-rigid model for the organization of cytochrome P-450 and NADPH-cytochrome P-450 reductase in the microsomal membrane.

Animals

The effects of the continuous administration of N,N-dimethyl-4-phenylazoaniline (DAB) on the activities and the inducibilities of some drug-metabolizing enzymes in rat liver.

(1) The effect of feeding a relatively low-protein diet containing 0.06% DAB for 29 weeks on the activity of DAB-azoreductase, nitroreductase (p-nitrobenzoic acid), N-oxidase (N,N-dimethylaniline), N-demethylase (DAB), cytochrome P-450, NADPH-cytochrome c reductase, beta-glucuronidase and arylsulphatase A were studied. Rapid decreases occurred in the activities of the first six enzymes, reaching minimal values at between 4 and 8 weeks. Activities then increased in all cases to control or nearly control levels. This rate of increase was least for cytochrome P-450. At 4 weeks azoreductase activity with the chemotherapeutic agent CB10-252 (I) as substrate was significantly higher than in control rats. Early increases occurred in the activities of beta-glucuronidase and arylsulphatase A and the activity of the latter never dropped below the control level. (2) An investigation was made of the differential effects of dye feeding on some of the enzyme activities in the two major liver lobes and differences were found. (3) The effect of phenobarbital (PB) pretreatment on the DAB-fed rats was studied at 4-week intervals. The activities of DAB-azoreductase and of nitroreductase increased throughout the whole period, while the activities of the lysosomal enzymes were decreased. (4) After feeding DAB for 4 weeks the effect of PB and 3-methylcholanthrene (MC) on the activities of DAB-azoreductase, CB10-252-azoreductase and components of the azoreductases-cytochrome P-450, NADPH-cytochrome c reductase, the CO-CB10-252-azoreductase was not induced by PB or MC, and CO did not inhibit its reduction. Its reduction depended only slightly on NADH. CO caused a greater relative decrease in the activity of DAB-azoreductase in dye-fed animals and also in animals following PB and MC pretreatment, implying a greater role of cytochrome P-450 in dye-fed animals.

Animals

Solubilization, partial purification and properties of N-methylglutamate dehydrogenase from Pseudomonas aminovorans.

1. Extracts of amine-grown Pseudomonas aminovorans contained a particle-bound N-methylglutamate dehydrogenase (EC 1.5.99.5). The enzyme was not present in succinate-grown cells, and activity appeared before growth began in succinate-grown cells which had been transferred to methylamine growth medium. 2. Membrane-containing preparations from methylamine-grown cells catalysed an N-methylglutamate-dependent uptake of O2 or reduction of cytochrome c, which was sensitive to inhibitors of the electron-transport chain. 3. N-Methylglutamate dehydrogenase activity with phenazine methosulphate or 2,6-dichlorophenol-indophenol as electron acceptor could be solubilized with 1% (w/v) Triton X-100. The solubilized enzyme was much less active with cytochrome c as electron acceptor and did not sediment in 1 h at 150000g. Solubilization was accompanied by a change in the pH optimum for activity. 4. The solubilized enzyme was partially purified by Sepharose 4B and hydroxyapatite chromatograpy to yield a preparation 22-fold increased in specific activity over the crude extract. 5. The partially-purified enzyme was active with sarcosine, N-methylalanine and N-methylaspartate as well as with N-methylglutamate. Evidence suggesting activity with N-methyl D-amino acids as well as with the L-forms was obtained. 6. The enzyme was inhibited by p-chloromercuribenzoate, iodoacetamide and by both ionic and non-ionic detergents. 2-Oxoglutarate and formaldehyde were also inhibitors. 7. Kinetic analysis confirmed previous workers' observations of a group transfer (Ping Pong) mechanism. 8. Spectral observations suggested that the partially purified preparation contained flavoprotein and a b-type cytochrome. 9. The role of the enzyme in the oxidation of methylamine is discussed.

2,6-Dichloroindophenol

The detection of enzyme induction by rat liver microsomes prepared by isoelectric precipitation.

A comparison was made of various indices of the hepatic drug-metabolizing apparatus associated with the postmitochondrial superntant, microsomes harvested by differential centrifugation, and microsomes harvested by isoelectric precipitation from control, phenobarbitone-pretreated and 3-methylcholanthrene-pretreated rats. The metabolic capabilities and distinctions between control and induced rats for each of the three liver preparations compared favourably as determined by the concentration of cytochrome b5 and P-450 and by the activity of NADPH-cytochrome c reductase, 4-dimethylaminoantipyrine N-demethylase and aryl hydrocarbon (benzo[a]pyrene) hydroxylase. The results suggest that the relatively simple isoelectric precipitation technique is a useful alternative to the conventional method of differential centrifugation for the preparation of hepatic microsomes.

Animals

Cause of decrease of ethylmorphine N-demethylase activity of lipid peroxidation in microsomes from the rat, guinea pig and rabbit.

There were marked differences among animal species between NADPH-dependent and ascorbic acid-Fe++-dependent lipid peroxidation. In NADPH-dependent lipid peroxidation, this activity occurred to the greatest extent in rats followed by guinea pigs and rabbits and such was much lower in rabbits than in guinea pigs. On the other hand, rabbit microsomes exhibited higher lipid peroxidation activity than guinea pigs in ascorbic acid plus Fe++ or Fe++-dependent lipid peroxidation although the activity was still lower than in rats. The ascorbic acid plus Fe++-stimulated lipid peroxidation produced a decrease in ethylmorphine N-demethylase activity which was closely related to ethylmorphine-enhanced NADPH-cytochrome P-450 reductase activity but was not related to the change of the apparent content of cytochrome P-450 in all animal species. These results indicate that decrease of NADPH-cytochrome P-450 reductase activity induces a decrease in ethylmorphine N-demethylase activity by lipid peroxidation.

Animals

Species and phenobarbitone-induced differences in the kinetic constants of liver microsomal harmine O-demethylation.

1. The apparent kinetic constants for the O-demethylation of harmine to harmol by 10 000 g supernatant fractions from livers of mice, rats, guinea-pigs, rabbits, cats and cows have been determined. The Km values were 10-39 muM and Vmax 0-25 and 1-65 nmol/mg protein/min. 2. Optimal conditions of incubation time and NADP requirements differed between species. In all species except cat and cow the rate of O-demethylation of harmine was linear for 5 min, but in the latter species was linear for 15 min. Maximum stimulation of O-demethylation occurred at NADP concn. of between 50 and 375 muM. 3. Phenobarbitone pre-treatment of weanling, young adult and mature adult mice increased the Vmax for O-demethylation by 2.9- to 4.6-fold but did not change Km. Increased Vmax values were greatest in young and least in old mice and these changes were directly correlated with a decrease of hexobarbitone sleeping time.

Animals

Hepatic microsomal N-hydroxylation of p-chloroaniline and p-chloro-N-methylaniline in red-winged blackbird compared with rat.

1. N-Hydroxylation of p-chloroaniline (PCA) and p-chloro-N-methylaniline (PCMA) was measured in red-winged blackbird (Agelaius phoeniceus) and rat (Rattus norvegicus) hepatic microsomes. 2. Redwing hepatic microsomes N-hydroxylated PCA slower than rat microsomes. Furthermore, redwing hepatic microsomes had marginal or no ability to N-hydroxylate PCMA, whereas rat hepatic microsomes N-hydroxylated PCMA at a higher rate than PCA. 3. The bird hepatic microsomes had only low or marginal N-demethylase activity with PCMA, whereas the rat hepatic microsomes could N-demethylate PCMA at a higher rate than they could N-hydroxylate it.

Aniline Compounds

Correlation of the critical micelle concentrations of surfactants with their effects on a bacterial demethylase.

The activity of a sarcosine dehydrogenase isolated from a strain of Pseudomonas is enhanced by the addition of Triton X-100, Brij 35, and Tween 80, and is inhibited by deoxycholate and Sarkosyl NL-97. 2,6-Dichlorophenolindophenol, which is used as the oxidant in the dehydrogenase assay, has also been employed as an indicator in the spectrophotometric determination of the critical micelle concentrations (CMC) of both the nonionic and anionic detergents under conditions optimal for the enzyme analyses. A correlation between the activation or inhibitory activities of the surfactants and their CMC values has been established.

2,6-Dichloroindophenol

Drug biotransformation in microsomes from the fetal stumptailed macaque, Macaca arctoides: hepatic N-demethylation.

The kinetics of the N-demethylation of benzphetamine, ethylmorphine, meperidine, and methadone have been studied in microsomes isolated from livers of the fetal stumptailed macaque (Macaca arctoides) during the last third of gestation. The apparent KM for each substrate did not change during this time period. Values were similar to those from livers of adult African green monkeys. The Vmax for each substrate, when expressed per mg of microsomal protein, did not change during the last third of gestation. N-demethylase activity (Vmax) per g of liver increased during the last third of gestation, as did the content of microsomal protein, cytochrome P-450 concentration, and liver weight. The amount of cytochrome P-450 per g of liver was greater in whole homogenates of the left physiological lobe than in those of the right physiological lobe of fetal liver obtained near term; no differences occurred in whole homogenates of the separate lobes of adult liver. This observation suggests that a differential capacity for drug (and possibly steroid) metabolism may exist between the two physiological lobes of fetal liver.

Aging