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H Kampffmeyer

Publications and source records attributed to H Kampffmeyer.

13 recordsLinked to original sources

Formation and disposition of nitrosochloramphenicol in rat liver.

It has been suggested that in the chloramphenicol-induced aplastic anemia nitrosochloramphenicol may be involved as a toxic intermediate. We found that aminochloramphenicol, which reportedly is formed from chloramphenicol by intestinal bacteria, is N-oxygenated by liver microsomes of untreated rats with apparent Km = 0.4 mM and Vmax = 0.28 nmole/min/mg protein. These values are in close agreement with those reported for aniline N-oxygenation. Reductive reactions, however, eliminate the N-oxygenation products at markedly higher rates. As judged from hemoglobin-free single-pass liver perfusion experiments, N-hydroxy-chloramphenicol is reduced at rates faster than 300 nmole/min/g liver wet, and nitrosochloramphenicol is eliminated at rates faster than 1.5 mumole/min/g liver. At least two NADPH- and two NADH-dependent cytosolic enzymes are responsible for nitrosochloramphenicol reduction. Determination of the kinetic parameters of these enzymes by stop-flow analysis revealed the contribution of enzymes, one of it being alcohol dehydrogenase, with Michaelis constants in the micromolar range. Despite this high reducing capacity, about 10% of nitrosochloramphenicol reacted with GSH under formation of glutathionesulfinamidochloramphenicol and GSSG released from the liver into bile and venous effluent. At high nitrosochloramphenicol load these reactions led to glutathione depletion of the liver, caused membrane damage, and impaired bile production. At low nitrosochloramphenicol load, i.e. below 0.5 mumole/min/g, no relevant nitrosochloramphenicol passed the liver. These data together with the previously reported reactions of nitrosochloramphenicol within human blood suggest that nitrosochloramphenicol, if formed at all in the intestine or liver, is rather unlikely to be transferred to the critical target.

Administration, Oral↗

Inhibition of glutathione excretion, bile flow, and alterations of the glutathione status by 4-nitrosophenetol during perfusion of rat livers.

(1) Hemoglobin-free single-pass perfusion of isolated rat livers was carried out with various concentrations of 4-nitrosophenetol (NOPt). (2) NOPt, up to 2 mumol/min/g liver wet wt., was reduced by the liver with formation of N-hydroxy-4-phenetidine (NHOHPt), 4-phenetidine (NH2Pt), phenacetin and polar metabolites. (3) Three per cent of NOPt was irreversibly bound to liver proteins after a load of 20 mumol/g liver wet wt. After 30 min perfusion, 0.2 mumol of liver glutathione was lost by 1 mumol NOPt infused. (4) Bile flow and glutathione release by the bile decreased rapidly during NOPt perfusion. (5) Glutathione release of the livers into venous effluent was diminished by NOPt and was stimulated only slightly by t-butylhydroperoxide (BOOH). Because BOOH reduction and glutathione peroxidase were not altered and intracellular glutathione disulfide (GSSG) levels were elevated, inhibition of the GSSG excretory mechanism is assumed.

Animals↗

[Drug interactions].

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Binding, Competitive↗

Biotransformation of nitrosobenzene, phenylhydroxylamine, and aniline in the isolated perfused rat liver.

1. Haemoglobin-free single-pass perfusion of isolated rat liver with [14C]aniline, [14C]phenylhydroxylamine, and [14C]nitrosobenzene was carried out. 2. Perfusion with aniline revealed apparent enzyme kinetics for 4-aminophenol formation with Km = 144 microM, Vmax = 51 nmol/min per g liver wet; for 2-aminophenol Km = 144 microM, Vmax = 16 nmol/min per g; for acetanilide Km = 33 microM, Vmax = 25 nmol/min per g. Formation of phenylhydroxylamine and nitrosobenzene was observed at a rate of 1.5 nmol/min per g provided that these metabolites had been trapped within red cells. 3. Perfusion with phenylhydroxylamine displayed a metabolic pattern similar to aniline with apparent phenylhydroxylamine reduction kinetics of Km = 260 microM and Vmax = 600 nmol/min per g. In addition an acid-labile phenylhydroxylamine glucuronide was formed. 4. Perfusion with nitrosobenzene showed very rapid reduction to phenylhydroxylamine and to the metabolites observed with phenylhydroxylamine. In postmicrosomal supernatant, enzymic reduction of nitrobenzene by NADH and NADPH showed Km = 12 microM nitrosobenzene and Vmax = 5000 nmol/min per g. 5. Three per cent of nitrosobenzene was irreversibly bound to liver proteins. After 20 min perfusion with nitrosobenzene, 0.95 mumol of liver glutathione was lost per 10 mumol nitrosobenzene infused; 0.16 mumol of glutathione was released with effusate and bile, 0.46 mumol of glutathionesulphinanilide was produced, the rest, 0.33 mumol, may have formed mixed disulphides.

Aniline Compounds↗