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L R Schwarz

Publications and source records attributed to L R Schwarz.

At least 19 recordsLinked to original sources

Inhibition of transforming growth factor-beta1 and UV light-induced apoptosis by prostanoids in primary cultures of rat hepatocytes.

Treatment of rat hepatocytes cultured in collagen gel with transforming growth factor-beta1 (TGFbeta1) or with UV light strongly increased the frequency of apoptotic nuclei within 24 h; at doses of 0.5 ng/ml TGFbeta1 or 90 J/m2 UV light about 17 and 22% apoptotic nuclei were determined, respectively. DNA of the treated cells showed internucleosomal DNA fragmentation. Already the presence of the cytokine for only 1 h significantly induced apoptosis. The prostanoids PGI2, PGD2, and PGE1 decreased the frequency of apoptotic nuclei in a dose-dependent manner by up to 70 to 80% and suppressed internucleosomal DNA fragmentation. In contrast, PGE2 and PGF2alpha elicited a smaller protective effect and arachidonic acid had none. In the case of PGE1 it was shown that the prostaglandin was most effective when added together with TGFbeta1 or within 2 h before or after treatment with this cytokine. An early increase of the tumor suppressor gene product p53 is thought to play a decisive role in UV light-induced apoptosis. However, this increase in p53 was not affected by the strong cytoprotective prostacyclin PGI2. Our findings show a marked antiapoptotic activity of the prostanoids PGE1, PGI2, and PGD2 and raise the question of whether these prostanoids may influence apoptosis in pathological processes in the liver.

Animals

Formation of DNA adducts by cyproterone acetate and some structural analogues in primary cultures of human hepatocytes.

Recently, we have shown that the therapeutically-used progestin and antiandrogen cyproterone acetate (CPA) causes the formation of high levels of DNA adducts in rat hepatocytes and rat liver [J. Topinka, U. Andrae, L.R. Schwarz, T. Wolff, Cyproterone acetate generates DNA adducts in rat liver and in primary rat hepatocyte cultures, Carcinogenesis 14 (1993) 423-427: J. Topinka, B. Binkova, L.R. Schwarz, T. Wolff, Cyproterone acetate is an integral part of hepatic DNA adducts induced by this steroidal drug, Carcinogenesis 17 (1996) 167-169; S. Werner, J. Topinka, T. Wolff, L.R. Schwarz, Accumulation and persistence of DNA adducts of the synthetic steroid cyproterone acetate in rat liver, Carcinogenesis 16 (1995) 2369-2372; J. Topinka, B. Binkova, H.K. Zhu, U. Andrae, I. Neumann, L.R. Schwarz, S. Werner, T. Wolff, DNA damaging activity of the cyproterone acetate analogues chlormadinone acetate and megestrol acetate in rat liver, Carcinogenesis 16 (1995) 1483-1487]. Its structural analogues, chlormadinone acetate (CMA) and megestrol acetate (MGA) were much less active in this respect [J. Topinka, B. Binkova, H.K. Zhu, U. Andrae, I. Neumann, L.R. Schwarz, S. Werner, T. Wolff, DNA damaging activity of the cyproterone acetate analogues chlormadinone acetate and megestrol acetate in rat liver, Carcinogenesis 16 (1995) 1483-1487]. In the present study we addressed the question whether these compounds and two further analogues, medroxyprogesterone acetate (MPA) and progesterone, induce the formation of DNA adducts in primary cultures of human hepatocytes. Incubation of CPA with human hepatocytes from two male and four female donors induced the formation of significant levels of CPA-DNA adducts detectable by 32P-postlabeling. The by far most prevalent DNA adduct is most likely identical with adduct A formed in CPA-treated rats. DNA binding was found even at 0.03 microM CPA, the lowest concentration used. The maximum effect occurred at about 10 microM in 5 of the 6 cell preparations. At this concentration 480 and 2690 adducts x 10(-9) nucleotides were detected in hepatocytes of the two male donors and 1072, 816, 613 and 659 adducts x 10(-9) nucleotides in the hepatocytes of the four female donors after an exposure of 6 h with CPA. Extending the incubation time to 20 h resulted in a roughly three-fold higher binding. CMA and MGA were assayed in two of the liver cell preparations from the female donors. At a concentration of 20 microM and an incubation time of 6 h, DNA adduct levels for CMA were 21 and 43% and for MGA 31 and 65% of the levels observed with 20 microM CPA. In contrast, DNA binding of MPA amounted to less than 1% of that observed with CPA and DNA binding of the natural occurring progestin progesterone was below the level of detection. The results point to a genotoxic risk associated with the therapeutic use of CPA and possibly of CMA and MGA. Furthermore, the findings suggest that the significant genotoxicity observed with CPA, MGA and CMA is associated with the presence of the double bond in position 6-7 of the steroid, which is absent in MPA and progesterone.

Adult

Steroidal drug cyproterone acetate is activated to DNA-binding metabolites by sulfonation.

The antiandrogenic and gestagenic steroid cyproterone acetate (CPA) has been widely used in human therapy. There is currently a debate about the safety of CPA, since it proved to be genotoxic in rat liver and human hepatocytes [I. Neumann et al., Carcinogenesis (Lond.), 13: 373-378, 1992, J. Topinka et al., Carcinogenesis (Lond.), 14: 423-427, 1993, L. R. Schwarz et al., Biological Reactive Intermediates: V. Basic Mechanistic Research in Toxicology and Human Risk Assessment. pp. 243-251, 1996; A. Martelli et al., Carcinogenesis (Lond.), 16: 1265-1269, 1995]. Little is known about the metabolic pathways of activation of CPA to genotoxic metabolites. Using rat hepatocytes and subcellular fractions of female rat liver, we have examined whether sulfoconjugation plays an essential role in the activation of CPA to DNA-binding metabolites which are detectable with 32P-postlabeling. Incubation of hepatocyte cultures with 30 microM CPA for 6 h caused the formation of several DNA adducts; the total adduct level amounted to about 12,400 adducts/10(9) nucleotides. When the cells were incubated in sulfate-free medium to prevent the synthesis of the cosubstrate of sulfonation, 3'-phosphoadenosine-5'-phosphosulfate (PAPS), formation of all CPA-DNA adducts was greatly reduced, amounting to only 5% of that determined in the presence of sulfate (810 microM). Activation of CPA is likely to be catalyzed by hydroxysteroid sulfotransferase(s), because the specific substrate dehydroepiandrosterone almost completely inhibited DNA-binding of CPA. Our assumption that sulfonation plays a decisive role in the bioactivation of CPA is further supported by the results obtained with an in vitro system consisting of calf thymus DNA, various subcellular liver fractions, and the cofactor PAPS, NADPH, or NADH. Significant DNA binding only occurred when cytosol and both PAPS and the reduced pyridine nucleotides were present. The DNA adduct spot obtained was chromatographically identical to the adduct spot A detected in isolated liver cells, suggesting that the CPA-DNA adduct formed in vivo and in vitro is identical. Cytosol is known to contain not only sulfotransferases but also reductases. Thus, the requirement for NADPH or NADH suggests that in addition to sulfotransferase(s), reductases are involved in the activation of CPA. We propose that bioactivation of CPA involves reduction of the keto group at C-3 followed by sulfonation of the hydroxysteroid. The resulting sulfoconjugate is most likely unstable and supposed to generate a reactive carbonium ion.

Animals

Suppression of agonist induced Ca2+ oscillations in cultured hepatocytes by nafenopin: possible involvement of protein kinase C.

The alpha 1-agonist phenylephrine (5 microM) induces an increase in the free cytosolic Ca2+ concentration, followed by repetitive transients of the cytoplasmic Ca2+ concentration, in single Fura-2 loaded hepatocytes. The tumor promoting, hypolipidemic drug nafenopin suppressed the cellular Ca2+ response to phenylephrine. The effect of nafenopin on the Ca2+ increase and Ca2+ oscillations was largely prevented by the specific protein kinase C inhibitor Gö 6976. This finding suggests involvement of protein kinase C in the action of nafenopin on phenylephrine induced Ca2+ mobilization.

Animals

Phenobarbital transiently stimulates uptake of 2-aminoisobutyric acid in hepatocytes.

Phenobarbital (PB) is a classical inducer of drug metabolizing enzymes and known to stimulate liver growth transiently in rodents. Previous studies have shown that regenerative liver growth after a partial hepatectomy is accompanied by the induction of the amino acid transport system A. In the present study we investigated whether amino acid transport is also increased by treatment of rats with PB. Na(+) -dependent hepatic uptake of the non-metabolizable amino acid 2-aminoisobutyric acid (AIB), which proceeds largely via transport system A, was studied in isolated hepatocytes from PB treated and untreated rats. Uptake of AIB (100 microM) was maximally induced (2.5-fold) 8 h after the beginning of PB treatment. Within 4 days, transport rates decreased to values similar to those determined in hepatocytes from untreated animals, despite the continuation of PB treatment. In contrast, induction of the PB-inducible cytochromes P450 2B1/2 was markedly increased during the entire experiment, as determined with the isoenzyme-selective substrate pentoxyresorufin. Kinetic analysis of AIB uptake revealed a "high" and a "low" affinity transport system. It is most likely that the high affinity system represents amino acid transport system A. Treatment with PB increased the V(max) value but did not affect the apparent Km value of the high affinity system. The present data suggest that the hepatic mitogen PB transiently induces amino acid transport system A.

Aminoisobutyric Acids

Cyproterone acetate is an integral part of hepatic DNA adducts induced by this steroidal drug.

We have recently shown that cyproterone acetate (CPA), an active component of some antiandrogenic drugs, induces the formation of DNA adducts detectable by the 32P-DNA postlabelling technique in rat liver. The postlabelling technique, however, does not provide evidence for the chemical nature of the adducts observed. To ascertain whether the CPA-induced adducts do contain CPA, we have incubated tritiated CPA with cultured hepatocytes from female rats, digested the DNA to 3'-monophosphonucleosides, extracted the DNA adducts formed into butanol and phosphorylated the adducts in the extract with unlabelled ATP. One major and one minor 3H-labelled adduct spot were detectable on the TLC chromatograms. The spots appeared at positions identical to those observed in the 32P-postlabelling experiments with unlabelled CPA. Furthermore, the ratio of 3H activity for the major versus the minor adduct spot was 11.9 +/- 1.8, which agreed with the corresponding ratio for the 32P activities, which was 13.2 +/- 3.5. These findings indicate that the CPA-induced DNA adducts, which we have previously detected by 32P-postlabelling do contain CPA or CPA metabolites.

Androgen Antagonists

Phase II metabolism of benzene.

The hepatic metabolism of benzene is thought to be a prerequisite for its bony marrow toxicity. However, the complete pattern of benzene metabolites formed in the liver and their role in bone marrow toxicity are not fully understood. Therefore, benzene metabolism was studied in isolated rodent hepatocytes. Rat hepatocytes released benzene-1,2-dihydrodiol, hydroquinone (HQ), catechol (CT), phenol (PH), trans-trans-muconic acid, and a number of phase II metabolites such as PH sulfate and PH glucuronide. Pretreatment of animals with 3-methylcholantrene (3-MC) markedly increased PH glucuronide formation while PH sulfate formation was decreased. Likewise, V79 cells transfected with the 3-MC-inducible rat UGT1.6 cDNA showed a considerable rate of PH and HQ glucuronidation. In addition to inducing glucuronidation of phenols, 3-MC treatment (reported to protect rats from the myelotoxicity of benzene) resulted in a decrease of hepatic CYP2E1. In contrast, pretreatment of rats with the CYP2E1-inducer isopropanol strongly enhanced benzene metabolism and the formation of phenolic metabolites. Mouse hepatocytes formed much higher amounts of HQ than rat hepatocytes and considerable amounts of 1,2,4-trihydroxybenzene (THB) sulfate and HQ sulfate. In conclusion, the protective effect of 3-MC in rats is probably due to a shift from the labile PH sulfate to the more stable PH glucuronide, and to a decrease in hepatic CYP2E1. The higher susceptibility of mice toward benzene may be related to the high rate of formation of the myelotoxic metabolite HQ and the semistable phase II metabolites HQ sulfate and THB sulfate.

Animals

Accumulation and persistence of DNA adducts of the synthetic steroid cyproterone acetate in rat liver.

Cyproterone acetate (CPA) is a synthetic steroid which is widely used in antiandrogenic and gestagenic drugs. We have recently shown that CPA induces DNA adducts in cultured rat hepatocytes and in rat liver (1). In the present investigation, we studied the persistence and accumulation of CPA-derived DNA adducts in the liver of rats using the 32P-postlabeling technique. To study the persistence of CPA-DNA adducts, rats were treated with a single oral dose of 10 (female rats) or 100 mg CPA/kg body wt (male rats). Four DNA adducts were detected in the liver of both gender. In female rats, maximal total DNA adduct levels of 3.40 +/- 0.04 adducts/10(6) nucleotides were observed after 1 week. Eleven weeks later, 40% of the adducts determined after 1 week were still detectable. In male rats, maximal hepatic DNA adduct levels of approximately 98 +/- 3/10(9) nucleotides were attained after 2 weeks. The adduct level decreased during the following 4 weeks to approximately 40% of the earlier observed maximal level. To study the accumulation of the CPA-DNA adducts, rats were treated daily with a low oral dose of 50 micrograms CPA/kg body wt for 42 days. During this treatment period, the level of the four adducts increased continuously from approximately 10 to approximately 380 adducts/10(9) nucleotides in the liver of female rats. DNA adducts were formed at much lower levels in male rats; only one type of DNA adduct was detectable, the level of which increased to approximately 6 adducts/10(9) nucleotides after 42 days. In conclusion, CPA induces DNA adducts in rat liver; binding of the steroid is much higher in female compared to male rats. The CPA-DNA adducts show a high persistence and as a consequence of their long half life, CPA-DNA adducts accumulate significantly in the liver of rats.

Androgen Antagonists

DNA-damaging activity of the cyproterone acetate analogues chlormadinone acetate and megestrol acetate in rat liver.

The synthetic progestin cyproterone acetate (CPA) has been recently shown to elicit DNA repair synthesis in cultured rat hepatocytes and to form adducts with rat hepatocyte DNA in vitro and in vivo. In the present study we have examined the genotoxic potential of the structural analogues of CPA, chlormadinone acetate (CMA) and megestrol acetate (MGA) in rat liver cells. CPA strongly induced DNA repair synthesis in hepatocyte cultures from females but not from males. In contrast, CMA and MGA (2-50 microM) did not detectably increase repair synthesis in cultured hepatocytes from either gender. CMA and MGA, however, caused the formation of DNA adducts detectable by the 32P-postlabelling technique. At a concentration of 30 microM, between 30 and 50 adducts/10(9) nucleotides were found with MGA and CMA in cultured hepatocytes of female rats, and between 5 and 20 adducts/10(9) nucleotides were found in hepatocytes of males. By comparison, 30 microM CPA has been found to produce 1670 adducts/10(9) nucleotides in hepatocytes from female rats. CMA and MGA also induced low levels of DNA adducts in vivo. When female rats were treated with 100 mg/kg of CMA or MGA per os, the adduct levels were 2 and 19 adducts/10(9) nucleotides respectively. The results indicate that both CMA and MGA show some genotoxicity in rat liver cells, which is, however, much lower than that for CPA. Our findings further suggest that the high genotoxicity of CPA is associated with the presence of the 1,2 alpha-methylene group, which is absent in CMA and MGA.

Animals

Gender bender.

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Animals

Benzene metabolism in rodent hepatocytes: role of sulphate conjugation.

1. Hepatocytes isolated from the adult male NMRI mouse or Wistar rat were incubated for 1 h with 0.5 mM 14C-benzene, the supernatant was separated from the cells, and analysed for benzene metabolites. Separately, formation of sulphate conjugates during benzene metabolism was studied in hepatocytes in the presence of 35S-sulphate. In addition sulphate conjugation of the benzene metabolites hydroquinone and 1,2,4-trihydroxybenzene was investigated in mouse liver cytosol supplemented with 3'-phosphoadenosine-5'-phospho-35S-sulphate. 2. Two novel metabolites, not detectable in rat hepatocyte incubations, were found in mouse hepatocytes, and were identified as 1,2,4-trihydroxybenzene sulphate and hydroquinone sulphate. Formation of the 35S-labelled conjugates could be demonstrated in incubations of mouse liver cytosol with hydroquinone or 1,2,4-trihydroxybenzene supplemented with 3'-phosphoadenosine-5'-phospho-35S-sulphate, and in mouse hepatocytes incubated with benzene and 35S-sulphate. 3. In comparison with hepatocytes from the Wistar rat, hepatocytes from the NMRI mouse were almost three times more effective in metabolizing benzene. The higher formation of hydroquinone, and the formation of trihydroxybenzene sulphate and hydroquinone sulphate, mainly contributed to the higher rate of benzene metabolism. 4. In conclusion, qualitative and quantitative differences in benzene metabolism may contribute to the higher susceptibility of mouse towards the myelotoxic and leucaemogenic action of benzene.

Animals

Inhibition of intercellular communication of rat hepatocytes by nafenopin: involvement of protein kinase C.

Peroxisome proliferators (PPs) have been shown to cause tumours in rodent liver. The mechanism of action of these chemicals is only poorly understood. Current evidence, however, suggests that they may cause tumours through a tumour promoting activity. In the present study we therefore evaluated the effect of three peroxisome proliferators on gap junctional intercellular communication (IC) of cultured hepatocytes. Interference with IC is thought to be one of the mechanisms involved in tumour promotion. IC was detected by dye coupling of hepatocytes using microinjection of Lucifer Yellow CH. Five hours after plating, coupling of the cells amounted to approximately 90%. Incubation of hepatocytes with the PPs mono(2-ethylhexyl)phthalate (MEHP), nafenopin and [4-chloro-6-(2,3- xylidino)-2-pyrimidylthio]acetic acid (Wy-14,643) decreased dye coupling of the hepatocytes. Half maximal effects were obtained at approximately 50 microM nafenopin, 150 microM Wy-14,643 and 200 microM MEHP. Addition of the specific inhibitor of Ca(2+)-dependent protein kinase C isoenzymes, Gö 6976 (2 microM), prevented inhibition of IC by nafenopin, but not by the two other peroxisome proliferators. Further studies suggest significant differences in the mechanisms underlying inhibition of dye coupling between hepatocytes by nafenopin and by phenobarbital, a known tumour promoter in the liver. The results show that the PPs nafenopin, MEHP and Wy-14,643 decrease IC between cultured hepatocytes. Inhibition of IC by nafenopin, but not by MEHP and Wy-14,643, is most likely mediated by Ca(2+)-dependent protein kinase C isoenzymes.

Animals

Carcinogen-induced diploid hepatocytes: sensitive target cells for transformation by mutated c-Ha-ras oncogene.

Sequential treatment of partially (two-thirds) hepatectomized rats with diethylnitrosamine and 2-acetylaminofluorene induces the emergence of diploid hepatocytes in rat liver. These carcinogen-induced diploid cell populations are thought to contain the progenitors of hepatocellular carcinoma (HCC), i.e., initiated, cells. In the study presented here, we addressed the question of whether putative mutations in carcinogen-induced diploid hepatocytes can cooperate with activated oncogenes in the process of transformation in vitro. Both carcinogenesis in vivo and transformation in vitro have been shown to be multistep processes requiring at least two independent transforming events. Diploid and polyploid rat hepatocytes were isolated by centrifugal elutriation. The purity of the elutriated fractions was 88 +/- 3% in the diploid fraction and 84 +/- 3% in the polyploid fraction. Hepatocytes from both the elutriated cell fractions and, for comparison, hepatocytes from untreated rats were transfected by electroporation with oncogene expression vectors containing the mutated human T24 c-Ha-ras gene and of the N-myc gene. Transient expression of transfected DNA was similar in both hepatocyte populations. No cell lines could be established by using the N-myc vector. In contrast, the carcinogen-induced diploid hepatocytes, but not polyploid hepatocytes, could be converted by transfection with the ras vector into permanent anchorage-independent growing cell lines with hepatocyte-like morphology and differentiation. These cell lines expressed the myc proto-oncogene and transforming growth factor-alpha constitutively. Thus, carcinogen-induced diploid hepatocytes are sensitive to transformation by the ras oncogene, suggesting cooperation between putative preexisting mutations in the diploid cells and the ras oncogene product in hepatocellular transformation.

2-Acetylaminofluorene