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H Kappus

Publications and source records attributed to H Kappus.

At least 37 records · Page 2Linked to original sources

Positive correlation between decreased cellular uptake, NADPH-glutathione reductase activity and adriamycin resistance in Ehrlich ascites tumor lines.

From a wild type strain of Ehrlich ascites tumor (EATWT) sublines resistant to daunorubicin (EATDNM), etoposide (EATETO), and cisplatinum (EATCIS) have been developed in vivo. Increase in survival and cure rate caused by adriamycin (doxorubicin) have been determined in female NMRI mice which were inoculated i.p. with EAT cells. Adriamycin concentrations causing 50% inhibition of 3H-thymidine (ICT) and 3H-uridine incorporation (ICU) and intracellular adriamycin steady-state concentrations (SSC) were measured in vitro. Adriamycin resistance increased and SSC decreased in the following sequence: EATWT - EATCIS - EATDNM - EATETO. When ICT and ICU were corrected for intracellular adriamycin concentrations in consideration of the different SSC (ICTc, ICUc), ICTc and ICUc still varied up to the 3.2 fold in EATCIS, EATDNM and EATETO in comparison to EATWT. Thus, in addition to different SSC other factors must be responsible for adriamycin resistance. Therefore, enzymes which may play a role in the cytotoxicity related to adriamycin metabolism (NADPH-cytochrome P-450 reductase, NADPH-glutathione reductase, NADP-glucose-6-phosphate dehydrogenase, NADP-isocitrate dehydrogenase) were measured. In contrast to the other parameters determined, NADPH-glutathione reductase was significantly (p less than 0.01) increased up to the 3.2 fold parallel to adriamycin resistance as determined by increase in life span, cure rate, ICTc, and ICUc, respectively. It is concluded that high activities of NADPH-glutathione reductase may contribute to an increase in adriamycin resistance of malignant tumors.

Animals↗

No evidence for lysophospholipid formation during peroxidation of phospholipids by NADPH-cytochrome P-450 reductase and iron ions.

Liposomes comprised of liver microsomal phospholipids and radioactive phosphatidylcholine or phosphatidylethanolamine as tracers were incubated with isolated liver microsomal NADPH-cytochrome P-450 reductase, NADPH and ADP-EDTA-chelated iron ions, a system which stimulates peroxidation of unsaturated fatty acids of phospholipids. Phospholipids and their reaction products were extracted and chromatographed on HPLC. Phosphatidylcholine and phosphatidylethanolamine considerably decreased after 30 min incubation, depending on the enzyme and NADPH as measured by UV absorbance and radioactivity. However, neither a lysophospholipid peak nor a lysophospholipid-like peak were detectable. We suggest that lysophospholipid formation during microsomal lipid peroxidation is exclusively due to phospholipase A2 and not due to peroxidative breakdown of the unsaturated fatty acid in the beta-position of glycerol.

Animals↗

Effect of four synthetic antioxidants on the formation of ethylene from methional in rat liver microsomes.

Four commonly used food antioxidants, butylated hydroxyanisole (BHA), butylated hydroxytoluene (BHT), propyl gallate and octyl gallate, were tested for their ability to inhibit the formation of ethylene from methional in NADPH-oxidizing rat liver microsomes. It is assumed that the action of the antioxidants on ethylene formation reflects their free radical scavenging activity. Only propyl gallate and octyl gallate are efficient inhibitors of ethylene formation. BHT is inhibitory only at very high concentrations, and BHA tends to increase ethylene formation. It is concluded that gallic acid ester antioxidants may possess a protective potential during chemical-induced microsomal oxidations.

Aldehydes↗

Liver nuclear NADPH-cytochrome P-450 reductase may be involved in redox cycling of bleomycin-Fe(III), oxy radical formation and DNA damage.

When NADPH-cytochrome P-450 reductase isolated from rat liver microsomes was aerobically incubated with bleomycin, FeCl3, NADPH and DNA parallel NADPH and oxygen were consumed and malondialdehyde was formed. A similar parallelism of NADPH- and oxygen-consumption and malondialdehyde formation was observed when cell nuclei isolated from rat liver were incubated under the same conditions. The formation of malondialdehyde which was identified by HPLC and which was most likely released from oxidative cleavage of deoxyribose of nuclear DNA required oxygen, bleomycin, FeCl3 and NADPH. This indicates that a nuclear NADPH-enzyme, presumably NADPH-cytochrome P-450 reductase, is able to redox cycle a bleomycin-iron-complex which in the reduced form can activate oxygen to a DNA-damaging reactive species. The data suggest that the activity of this enzyme in the cell nucleus could play an important role in the cytotoxicity of bleomycin in tumor cells.

Animals↗

Inverse relationship of ethane or n-pentane and malondialdehyde formed during lipid peroxidation in rat liver microsomes with different oxygen concentrations.

When we incubated rat liver microsomes with ferrous ions and an NADPH-regenerating system, ethane and n-pentane formation increased correspondingly with decreasing concentrations of oxygen in the atmosphere above the incubation, whereas malondialdehyde increased with increasing oxygen concentrations up to a plateau. At very low oxygen concentrations - 100% helium as atmosphere, but presumably traces of oxygen were present in the microsomes - ethane and n-pentane formation were maximal and dependent on the concentrations of ferrous ions, in the case of ethane, a peak being reached at about 20 microM Fe2+, whereas n-pentane continuously increased with increasing concentrations of Fe2+. It is suggested that the inverse relationship of ethane or n-pentane and malondialdehyde is due to two different reaction sequences of microsomal lipid peroxidation with different oxygen sensitivities.

Animals↗

Oxy radical formation during redox cycling of the bleomycin-iron (III) complex by NADPH-cytochrome P-450 reductase.

Bleomycin was aerobically incubated with FeCl3, NADPH, isolated rat-liver microsomal cytochrome P-450 reductase and methional. The conversion of methional to ethene, which indicates oxy radicals, was determined. Ethene formation depended on oxygen, NADPH, FeCl3 and the enzyme. About equimolar concentrations of bleomycin and FeCl3 resulted in optimal ethene formation. Dimethyl sulfoxide, mannitol, glycerol, glutathione and glutathione disulfide inhibited ethene formation. These results indicate that oxy radicals are formed after reduction of the bleomycin-Fe-complex by NADPH-cytochrome P-450 reductase.

Aldehydes↗

Covalent protein binding of vinyl chloride metabolites during co-incubation of freshly isolated hepatocytes and hepatic sinusoidal cells of rats.

Proteins of isolated rat hepatic sinusoidal cells incubated with 14C-vinyl chloride, rat liver microsomes and an NADPH-regenerating system were alkylated by vinyl chloride metabolites formed by microsomes. This suggests that reactive vinyl chloride metabolites can penetrate sinusoidal cells. Protein alkylation in isolated hepatic sinusoidal cells was higher when these were co-incubated with isolated hepatocytes, indicating that reactive vinyl chloride metabolites formed by hepatocytes are stable enough to diffuse out of hepatocytes into sinusoidal cells. Glutathione added to the incubation medium inhibited the covalent protein binding of vinyl chloride metabolites in sinusoidal cells as well as in hepatocytes incubated separately and deleted the increased protein binding in sinusoidal cells co-incubated with hepatocytes. The data indicate that glutathione present in the incubation medium traps reactive vinyl chloride metabolites formed by hepatocytes which otherwise would react with cell constituents of sinusoidal cells. If similar conditions exist in vivo, the alkylation of DNA of liver endothelial cells by vinyl chloride metabolites formed in hepatocytes is possible. This would explain the induction of hemangioendotheliomas of the liver by vinyl chloride.

Alkylation↗

Quantitative evaluation of ethane and n-pentane as indicators of lipid peroxidation in vivo.

The use of exhalation of ethane and n-pentane in experimental animals as parameters of lipid peroxidation led to an examination of pharmacokinetics of both compounds in rats. When rats were exposed, in a closed desiccator jar chamber, to a wide range of ethane concentrations, linear elimination pharmacokinetics were observed. n-Pentane, when concentrations higher than 100 ppm were applied, displayed saturation kinetics. These were formally explained by action of two competing metabolizing pathways or enzymes. Application of preexisting models could describe exhalation of both ethane and n-pentane by untreated control rats. Stimulation of lipid peroxidation by ferrous ions or by carbon tetrachloride resulted in dissimilar quantitative behaviours of ethane and n-pentane. Ethane production rates were enhanced after application of both compounds. Because of relatively slow metabolic eliminations this led to markedly elevated concentrations of ethane in the gas phase of the system. Pentane production rates were simultaneously enhanced. However, difficulties in interpretation arise because of rapid metabolic elimination of n-pentane. Compounds that diminish pentane metabolism are shown to evoke higher pentane concentrations in the system than compounds which only enhance the pentane production rate. Determinations of ethane exhalation should provide a more favourable parameter of lipid peroxidation than exhalation of pentane.

Animals↗

Ferrous ion-stimulated alkane expiration in rats treated with carbon tetrachloride.

Rats which were treated intraperitoneally (i.p.) with FeCl2 X 4H2O expired ethane which increased with increasing doses of iron. The same amount of ethane was expired by animals exposed to 20% or 100% oxygen. The mobilization by FeCl2 of stored ethane from the body was excluded. Propane expiration was also stimulated by FeCl2 treatment, whereas n-pentane expiration could not be detected. Rats which were treated i.p. with 500 mg CCl4/kg expired ethane, propane, and n-pentane, the amounts being higher in the presence of 20% than in the presence of 100% oxygen. The treatment of rats with FeCl2 30 min after giving CCl4 resulted in a 2-5-fold increase in ethane, propane and n-pentane expiration, the total amounts depending on the oxygen concentration in the respired air (higher under 20% and lower under 100% oxygen). This increase was due to a minor extent to FeCl2-initiated alkane formation. Therefore, we suggest that in vivo Fe2+, besides its ability to initiate lipid peroxidation, influences the CCl4-induced lipid peroxidation process. The possible relevance for CCl4 toxicity is discussed.

Alkanes↗

Lipid peroxidation in isolated rat hepatocytes measured by ethane and n-pentane formation.

Isolated rat hepatocytes (1 X 10(7) cells/ml) were aerobically incubated in Eagle's Minimum Essential Medium which contained 2.0% albumin. As potential parameters of lipid peroxidation ethane and n-pentane formed were measured in samples obtained from the gas phase above the incubation mixture. 15-30 nmol ethane or n-pentane were produced by 10(7) hepatocytes within 90 min. Carbon tetrachloride (CCl4) or ADP-complexed ferrous ions stimulated ethane and n-pentane formation considerably, depending on the concentrations of the compounds. With CCl4 10(7) cells formed max 180 nmol ethane and 140 nmol n-pentane within 90 min incubation, whereas with Fe(II) max 130 nmol ethane and 220 nmol n-pentane could be detected. When n-pentane was added to the gas phase above the incubation mixture containing either medium or medium plus hepatocytes its amount decreased by 30% within the first 5 min of incubation. However, afterwards only minor amounts of n-pentane disappeared, even in the presence of hepatocytes. This indicates that n-pentane equilibrates with the cells suspension under the conditions used. Cell viability, as determined by the release of lactate dehydrogenase into the medium and by the uptake of trypan blue by the cells, and the recovery of the cells decreased only in presence of relatively high concentrations of CCl4, or Fe(II) respectively. However, a maximal effect on ethane and n-pentane formation was reached already with lower concentration.

Adenosine Diphosphate↗

Minor role of lipid peroxidation in acute bleomycin toxicity in rats.

Bleomycin was injected i.p. in rats, and the amount of expired ethane which indicates lipid peroxidation was followed up for 78 h. Compared to controls neither 1 x 30 mg/kg and 2 x 30 mg/kg nor 1 x 70 mg/kg bleomycin led to increased ethane expiration, although body weight loss indicated toxicity. That pulmonary toxicity had been developed due to the acute bleomycin treatment could be demonstrated by histological examinations of lungs of the animals of the highest dosage group. The combined treatment of rats with bleomycin and ferrous ions neither resulted in an increase of ethane expired compared to that of the ferrous ion-treated animals. Rather a decrease was observed. Our results indicate that acute bleomycin toxicity is not associated with increased lipid peroxidation. Furthermore, our data suggest that the bleomycin-ferrous-complex does not initiate lipid peroxidation in vivo.

Animals↗

Covalent protein binding of reactive adriamycin metabolites in rat liver and rat heart microsomes.

Covalent binding of 3H-labeled adriamycin metabolites to bovine serum albumin and microsomal protein is demonstrated in an aerobic incubation system with rat liver and rat heart microsomes, respectively, using exhaustive organic solvent extraction and gel chromatography. Covalent protein binding was dependent on active microsomes, NADPH, and oxygen and was inhibited by reduced glutathione and other sulfhydryl compounds. The anthracycline moiety was spectrophotometrically evidenced in the adriamycin metabolite(s) covalently bound to protein. Thus, enzymatic activation of adriamycin in the heart with consecutive covalent protein binding of reactive adriamycin semiquinone radicals may contribute to adriamycin cardiotoxicity.

Animals↗