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A rapid and sensitive method for determination of covalent binding of benzo[a]pyrene to proteins.

A method is presented for the quantitative determination of covalent binding of metabolically activated benzo[a]pyrene to microsomal proteins. After incubation of radiolabelled benzo[a]pyrene with microsomes and NADPH, the mixture is applied to filter paper discs. These are immersed in ethanol to precipitate the proteins. Unbound radiolabel is removed by repeated washes of the filters in organic solvents before scintillation counting. The method is simple, rapid, sensitive and accurate, and works both with 14C- and 3H-labelled compounds. The method is suitable for measuring the incorporation of other radiolabelled xenobiotics to proteins of both microsomes and other subcellular fractions and for the analysis of binding to isolated proteins.

Animals↗

Excision of benzo[a]pyrene diol epoxide I adducts from nucleosomal DNA of confluent normal human fibroblasts.

The formation and removal of covalent adducts of racemic 7 beta, 8 alpha-dihydroxy-9 alpha,10 alpha-epoxy-7,8,9,10-tetrahydrobenzo[a]pyrene (BPDE I) was studied in nucleosomal DNA of confluent cultures of normal human fibroblasts (NF). For this purpose NF were prelabeled in their DNA with [14C]-thymidine and treated with [3H]BPDE I. The adducts were composed of 77% (7R)-N2-(7 beta, 8 alpha, 9 alpha-trihydroxy-7,8,9,10-tetrahydrobenzo[a]pyrene-10-yl)deoxyguanosine, 12% of the corresponding 7S-enantiomer and of minor amounts of adducts to cytosine and adenine. The adduct composition did not change significantly in 24-h post treatment incubation. Bulk mononucleosomes were prepared from micrococcal nuclease digested nuclei and their DNA analyzed by gel electrophoresis. The adduct concentrations were determined in 145 base pair (b.p.) nucleosomal core-DNA, 165 b.p. chromatosomal DNA and in total nuclear DNA. From these data the concentration in nucleosomal linker-DNA was calculated. The initial adduct distribution was non-random and 6.3 times higher in 47 b.p. linker-DNA relative to 145 b.p. core-DNA and 9.2 times higher in 27 b.p. linker-DNA relative to 165 b.p. chromatosomal DNA. Adduct removal was very rapid during the first 8 h and more efficient from linker-DNA than from core-DNA. After this early phase the adducts located in 145 b.p. core-DNA became refractory to further excision and represent a major fraction of the adducts persisting in DNA of NF over a prolonged period. In contrast, further adduct removal was observed from nucleosomal linker-DNA.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide↗

Time course of metabolism of benzo[e]pyrene by hamster embryo cells and the effect of chemical modifiers.

In cultures of hamster embryo cells, benzo[a]pyrene (B[a]P) is metabolized primarily in the bay region. In contrast, little or no bay region metabolism of the noncarcinogenic isomer benzo[e]pyrene (B[e]P) could be detected during 12--96-h incubations of hamster embryo cells with 4 microM [3H]B[e]P. The upper limit to 9,10-dihydro-9,10-dihydroxy-B[e]P formation is about 0.2% of the ethyl acetate-soluble metabolites (less than 0.1% of the total metabolites). The major identified metabolites of B[e]P were 4,5-dihydro-4,5-dihydroxy B[e]P and the glucuronide conjugates of 3-OH-B[e]P and 4,5-dihydro-4,5-dihydroxy B[e]P. Simultaneous treatment of cells with either B[a]P or 7,8-benzoflavone (BF) did not induce bay region metabolism of [3H]B[e]P.

Animals↗

Formation of benzo[a]pyrene-DNA adducts by microsomal enzymes: comparison of maternal and fetal liver, fetal hematopoietic cells and placenta.

The formation of benzo[a]pyrene (BP)-DNA adducts was studied in vitro in the presence of microsomes prepared from the isolated labyrinth zone of the rat placenta, the hematopoietic erythroblast cells of the fetal liver, the fetal liver, as well as the maternal liver. Pregnant rats received beta-naphthoflavone (beta NF; 15 mg/kg, i.p.) on day 17 gestation. One day later, placentae, fetal and maternal livers were obtained and hematopoietic erythroblast cells were separated from hepatocytes in the fetal livers. The respective microsomal fractions were incubated in the presence of calf thymus DNA, NADPH-regenerating system and [3H]BP (300 microCi) at 37 degrees C for 30 min. Following beta NF pretreatment, the levels of covalent binding (pmol/mg DNA/mg microsomal protein) for maternal liver, fetal liver, placenta and erythroblast cells were: 28.4, 2.4, 0.31 and 3.9, respectively, with the hematopoietic erythroblast cells being the most active among fetal tissue preparations. The extent of transplacental induction compared to control was greatest in the hematopoietic cells (18-fold) followed by fetal liver (16-fold) and labyrinth zone (5-fold). Further experiments characterized the BP-DNA adducts formed by induced microsomes. DNA was isolated, purified and digested sequentially with DNase I, snake venom phosphodiesterase type II and alkaline phosphatase type III. The deoxynucleoside-BP adducts were purified on a Sephadex LH-20 column and then separated on HPLC and the adducts were quantitated radiometrically. Seven distinct adducts were separated on HPLC and named A-G in order of elution. Adduct B was prominent in all preparations (22-55% total radioactivity). The adduct profile and retention time for peak B is similar to that reported for the adduct formed by microsomal activation of 9-hydroxy BP. Peak D constituted a major fraction (19%) in maternal liver profiles in comparison with the three fetal tissue preparations (8%). In subsequent experiments, peak D was shown to be derived from reaction of (+/-)7 beta,8 alpha-dihydroxy-9 alpha,10 alpha-epoxy-7,8,9,10-tetrahydrobenzo[a]pyrene (BPDE) with DNA. Peak C was unique to erythroblast cell and labyrinth profiles, while peak G was specific for maternal liver and fetal liver profiles. These results demonstrate that fetal liver and its hematopoietic cells are significant sites of BP bioactivation which may contribute to the fetal toxicity of polyaromatic hydrocarbons.

Animals↗

The influence of fluoranthene on the metabolism and DNA binding of benzo[a]pyrene in vivo in mouse skin.

The effect of the cocarcinogen fluoranthene on the DNA binding and metabolism of [3H]benzo[a]pyrene (B[a]P) in vivo in mouse skin has been investigated. In the presence of fluoranthene the level of B[a]]P-DNA binding was increased at each of the time intervals examined (4, 8, 24 and 48 h) with enhancements ranging from 76% at 4 h to 36% at 48 h. The ratio of anti-7,8,-dihydroxy-9,10-epoxy-7,8,9,10-tetrahydrobenzo[a]pyrene (anti-BPDE)-DNA adducts/syn-BPDE-DNA adducts was also increased in the presence of fluoranthene. This increase was greatest at 8 h (44%) but by 48 h the ratio was identical in the presence and absence of fluoranthene. The observed increase in anti-BPDE-DNA adducts/syn-BPDE-DNA adducts did not parallel increases in B[a]P-DNA binding suggesting that alteration of the anti-BPDE/syn-BPDE ratio is not a major contributing factor to the cocarcinogenic activity of fluoranthene. The influence of fluoranthene on the metabolism of B[a]P in vivo in mouse skin was also investigated. Fluoranthene was found to have little or no effect on the formation of ethyl acetate extractable metabolites of B[a]P in mouse skin. Specifically, there was no increase in the amount of B[a]P-7,8-diol in the presence of fluoranthene. Fluoranthene also had little or no effect on the levels of beta-glucuronide or sulfate conjugates of B[a]P metabolites formed in vivo in mouse skin. These studies suggest that the effect of fluoranthene is being expressed at some point after B[a]P has been activated to an ultimate carcinogen.

Animals↗

Southern flounder hepatic and intestinal metabolism and DNA binding of benzo[a]pyrene (BaP) metabolites following dietary administration of low doses of BaP, BaP-7,8-dihydrodiol or a BaP metabolite mixture.

Certain finfish species living in chemically polluted environments exhibit a high incidence of gastrointestinal tract tumors. Carnivorous fish in such environments are likely to consume invertebrates which contain chemical procarcinogens and the invertebrate biotransformation products of these compounds. The retention in tissues, extent of DNA adduct formation in liver and intestine, and metabolite composition of bile was investigated in southern flounder following gavage with pure [3H]- or [14C]benzo[a]pyrene (BaP), pure [14C]benzo[a]pyrene-7,8-dihydrodiol (BaP-7,8D), or hepatopancreas from spiny lobsters previously dosed with [3H]- or [14C]BaP (Metab.HP). Metab.HP contained mainly polar conjugates of BaP diols, triols and tetraols. BaP-7,8D was retained in fish tissues and bile at 24 h to a greater extent (33.6% of the dose), than either BaP (19.00%) or Metab.HP (6.6%). Hepatic and intestinal DNA isolated from all dosed fish contained covalently bound radioactivity, but exposure to BaP-7,8D or BaP resulted in significantly higher binding in both tissues than exposure to Metab.HP. Hepatic DNA from BaP and BaP-7,8D-dosed flounder contained 0.24 +/- 0.07 and 0.33 +/- 0.06 pmol BaP equivalents/mg DNA respectively (mean +/- S.E.), while hepatic DNA isolated from Metab.HP-dosed flounder contained 0.006 +/- 0.002 pmol BaP equivalents/mg DNA. Binding of radioactivity to intestinal DNA was significantly higher than to hepatic DNA for flounder dosed with Metab.HP (0.026 +/- 0.003) or with BaP (0.76 +/- 0.27) but not for flounder dosed with BaP-7,8D (0.44 +/- 0.09). These studies show that dietary BaP, and metabolites likely to be present in invertebrates, can be absorbed by the southern flounder and form DNA adducts in target organs.

Animals↗

Benzo[a]pyrene inhibits protein kinase C activity in subcultured rat aortic smooth muscle cells.

Recent studies in this laboratory have shown that benzo[a]pyrene (BaP) interferes with protein kinase C (PKC)-mediated phosphorylation of aortic smooth muscle cell (SMC) proteins in vivo. To evaluate the biochemical basis of this response, the present studies have been conducted to examine the time- and concentration-dependent effects of BaP on PKC activity in vitro. Growth-arrested subcultures of rat aortic SMCs were exposed to 0.3, 3, or 30 microM BaP in the presence of fetal bovine serum for various times and then processed for measurements of exogenous histone Type III-S phosphorylation under PKC-activating conditions. Challenge of SMCs with BaP for 8 h was associated with a concentration-dependent inhibition of PKC activity in both cytosolic and particulate fractions. While no changes of enzymatic activity were observed in either fraction following exposure of SMCs to 0.3 microM BaP, higher concentrations of BaP inhibited PKC in both cytosolic and particulate fractions. A 49% and 68% reduction of cytosolic PKC activity was observed in SMCs treated with 3 and 30 microM BaP, respectively. The inhibitory response elicited by BaP was more pronounced in the particulate fraction where 61% and 89% decreases in PKC activity were observed in cultures treated with 3 and 30 microM BaP, respectively. Time course studies revealed that inhibition of PKC activity by 30 microM BaP occurred as early as 30 min and was sustained for up to 24 h in both fractions. Benzo[a]pyrene (30 microM) did not interfere with the ability of phorbol-12-myristate-13-acetate to induce PKC translocation from the cytosolic to particulate compartment since maximal translocation occurred by 5 min and lasted for up to 60 min in both control and BaP-treated cultures. The inhibitory effects of BaP were independent of new protein or RNA synthesis, but appear to involve oxidative metabolism of the parent compound since 3-hydroxy-BaP, the major P450-derived BaP metabolite in SMCs, also inhibited cytosolic and particulate PKC activity. Collectively, these data demonstrate that BaP and its 3-hydroxy metabolite inhibit PKC activity in rat aortic SMCs and raise the possibility that interference with PKC-mediated protein phosphorylation participates in the deregulation of SMC growth and differentiation induced by BaP.

Animals↗

Biotransformation of benzo[a]pyrene and other polycyclic aromatic hydrocarbons and heterocyclic analogs by several green algae and other algal species under gold and white light.

This laboratory has shown that the metabolism of benzo[a]pyrene (BaP), a carcinogenic polycyclic aromatic hydrocarbon (PAH), by a freshwater green alga, Selenastrum capricornutum, under gold light proceeds through a dioxygenase pathway with subsequent conjugation and excretion. This study was undertaken to determine: (1) the effects of different light sources on the enzymatic or photochemical processes involved in the biotransformation of BaP over a dose range of 5-1200 mg/l; (2) the phototoxicity of carcinogenic PAHs and mutagenic quinones to a green alga; (3) the ability of other algal systems to metabolize BaP. Cultures were exposed to different doses of BaP for 2 days at 23 degrees C under gold, white or UV-A fluorescent light on a diurnal cycle of 16 h light, 8 h dark. Under gold light, metabolites of BaP produced by Selenastrum capricornutum were the dihydrodiols of which the 11,12-dihydrodiol was the major metabolite. Under white light, at low doses, the major metabolite was the 9,10-dihydrodiol. With increasing dose, the ratio of dihydrodiols to quinones decreased to less than two. With increasing light energy output, from gold to white to UV-A in the PAH absorbing region, BaP quinone production increased. Of other carcinogenic PAHs studied, only 7H-dibenz[c,g]carbazole was as phototoxic as BaP while 7,12-dimethylbenz[a]anthracene, dibenz[a,j]acridine and non-carcinogenic PAHs, anthracene and pyrene, were not phototoxic. The 3,6-quinone of BaP was found to be highly phototoxic while quinones that included menadione, danthron, phenanthrene-quinone and hydroquinone were not. The data suggest that the phototoxicity of BaP is due to photochemical production of quinones; the 3,6-quinone of BaP is phototoxic and is probably the result of the production of short lived cyclic reactive intermediates by the interaction of light with the quinone. Lastly, only the green algae, Selenastrum capricornutum, Scenedesmus acutus and Ankistrodesmus braunii almost completely metabolized BaP to dihydrodiols. The green alga Chlamydomonas reinhardtii, the yellow alga Ochromonas malhamensis, the blue green algae Anabaena flosaquae and euglenoid Euglena gracilis did not metabolize BaP to any extent. The data indicate that algae are important in their ability to degrade PAHs but the degradation is dependent on the dose of light energy emitted and absorbed, the dose of PAHs to which the algae are exposed, the phototoxicity of PAHs and their metabolite(s) and the species and strain of algae involved. All of these factors will be important in assessing the degradation and detoxification pathways of recalcitrant PAHs by algae.

Anabaena↗

Pyrene-labeled lipids: versatile probes of membrane dynamics in vitro and in living cells.

Pyrene-labeled analogs of fatty acids have been studied as probes of lipid metabolism in vitro and in cultured cells. Procedures for the synthesis of complex pyrenyl lipids and the analytical methods for their separation and quantification are described. Pyrenyl-lipids have been used to quantify the relationship between lipid structure and the rates of spontaneous lipid transfer. Modifications of these methods have also been used to monitor protein-mediated lipid transfer, lipolysis and lipid translocation across bilayer membranes. According to several criteria, pyrene dodecanoic acid has been identified as a good analog of some naturally occurring fatty acids. Digital imaging microscopy has been used to monitor the rate of accumulation of pyrenyl lipids in living cells.

Animals↗

Factors affecting plasma benzo[a]pyrene levels in environmental studies.

Benzo[a]pyrene (BaP) is a useful indicator of exposure to polycyclic aromatic hydrocarbons (PAHs), airborne carcinogenic compounds. Radioimmunoassay was used to test for plasma BaP differences in 61 subjects divided into three groups based on geographic-demographic locale: urban-industrial, urban-residential, and outer suburban. The results showed that the urban-industrial area participants had a significantly higher mean plasma BaP level than did the outer suburban subjects. The urban-residential subjects did not have a significantly different mean plasma benzo[a]pyrene level from either of the other two groups. Obesity, as measured by Quetelet's index, was found to have a significant correlation with BaP levels. These results indicate that radioimmunoassay of plasma for BaP may be used successfully to judge environmental exposure to PAHs, provided physiological considerations such as obesity are taken into account.

Adult↗

Oxygen consumption rates of grunion (Leuresthes tenuis) embryos exposed to the petroleum hydrocarbon, benzo[a]pyrene.

Bioconcentration of [14C]benzo[a]pyrene and effects of unlabeled benzo[a]pyrene (BaP) accumulation on the routine oxygen consumption of embryonic grunion (Leuresthes tenuis) were studied. At Day 15, bioconcentration factors over dissolved BaP levels ranged from 249 to 466. Weight-specific respiration rates at Days 14-15 were significantly increased (P less than or equal to 0.05) at a mean BaP body burden of 0.51 ppm wet wt. Oxygen consumption rates of embryos containing 0.70 to 12.80 ppm BaP were not significantly different from control rates. Because in a previous study embryos containing 0.51 ppm BaP exhibited hatching and developmental rates similar to those of controls, their metabolic response to low-level hydrocarbon exposure may be an example of hormesis, an overcompensating metabolic regulation to inhibitory challenges.

Animals↗

Origins of stereospecificity in DNA damage by anti-benzo[a]pyrene diol-epoxides. A molecular modelling study.

A general computational procedure for the modelling of intercalated DNA-ligand complexes has been developed, and is used here to model intercalated complexes of the (+)-anti and (-)-anti enantiomers of benzo[a]pyrene diol-epoxide (BPDE) with cytosine-3',5'-guanosine double-stranded DNA sequences (dCpG). Results are presented indicating differences between the behaviours of the two enantiomers which have implications for the understanding of the stereospecificity of DNA strand breakage by benzo[a]pyrene diol-epoxides.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide↗

Effect of ellagic and caffeic acids on covalent binding of benzo[a]pyrene to epidermal DNA of mouse skin in organ culture.

The covalent binding of the anti-diol epoxide of benzo[a]pyrene to cellular DNA of mouse skin in organ culture is affected by the presence of ellagic acid in the culture medium. At 10(-4) M, BaPDE /DNA formation is 40% less than that observed when no ellagic acid is present. Caffeic acid, a similar plant phenolic compound, demonstrates no inhibitory effect on BaPDE /formation. The plant phenolic acids do not drastically interfere with the metabolism of benzo[a]pyrene as shown by the BaP-metabolite profiles of the skin or of the culture medium.

Animals↗

Menadione inhibition of benzo(a)pyrene metabolism in whole cells, microsomes and reconstituted systems.

Menadione is known to decrease the mixed function oxidase mediated metabolism of a number of substrates in microsomal systems. The present study examines the effect of menadione on benzo(a)pyrene metabolism in whole cells, microsomes and a semi-purified reconstituted mixed function oxidase system. Menadione has a high affinity for the NADPH dependent cytochrome P-450 reductase and acts as a competitive inhibitor of cytochrome P-450 reductase in the metabolism of benzo(a)pyrene. This is the mechanism of inhibition of aryl hydrocarbon hydroxylase by menadione in reconstituted systems. In a whole cell system and at low concentrations of menadione, depletion of reduced pyridine nucleotides is the initial inhibitory event.

Animals↗

Mechanism for the differential induction of mutation by S9 activated benzo[a]pyrene employing either a glucose-6-phosphate-dependent NADPH-regenerating system or an isocitrate-dependent system.

A significant difference in mutation frequency has been observed in CHO cells exposed to benzo[a]pyrene with alternative activation systems. Each system employed rat-liver S9 homogenate with one using isocitrate dehydrogenase to provide reduced NADP, while the other method uses glucose-6-phosphate dehydrogenase. Total aryl hydrocarbon hydroxylase (AHH) activity was greater for the isocitrate dependent system, however, this yielded a lower level of HGPRT mutants. It was ascertained that this reduced mutation frequency may result from sequestering of B[a]P substrate by crystals in the medium, possibly calcium phosphate, which decreased the effective substrate concentration. This sequestration enhances B[a]P internalization, which would explain the dichotomy between the AHH values and the mutation frequency data. The production of specific B[a]P metabolites was also examined by reverse phase HPLC quantitation of extracts of solutions in which the two activation systems were used. The levels of 7,8 dihydroxybenzo[a]pyrene produced by the glucose-6-phosphate protocol were consistently greater than with isocitrate. This may also be a contributing mechanism for elevating the mutation frequency with this procedure. These results demonstrate several interactions between test compound, cells, and metabolizing system which must be considered with in vitro activation systems.

Animals↗

Metabolic activation of benzo[a]pyrene, aflatoxin B1, and dimethylnitrosamine by a human hepatoma cell line.

The metabolism of chemical carcinogens by a human hepatoma cell line, huH-1, was studied. The huH-1 line has been derived from a hepatoma of a 57-year-old HBs-antigen carrier and cultivated for several years. The hepatoma cells metabolized about 90% of 5 microM benzo[a]pyrene into water-soluble products within 24 h. Aryl hydrocarbon hydroxylase activity in huH-1 cells was induced to 24 times higher than the basal level by treatment with 13 microM benz[a]anthracene for 24 h. Metabolic activation of benzo[a]pyrene, dimethylnitrosamine and aflatoxin B1 by huH-1 cells was observed by cell-mediated sister-chromatid exchange assay. Sister-chromatid exchanges in human diploid fibroblasts were observed in the cultures mixed with or without huH-1 cells. All 3 chemicals induced sister-chromatid exchanges in human fibroblasts far more efficiently in the cultures mixed with huH-1 cells than in those without huH-1 cells. Some characteristics of huH-1 cells as a human cell-mediated metabolic activation system for carcinogens are discussed.

Aflatoxin B1↗

Inhibitory effects of the phorbolester TPA and cigarette smoke condensate on the mutagenicity of benzo[a]pyrene in a co-cultivation system.

The transport of reactive intermediates was studied in a co-cultivation system of primary chick embryo hepatocytes and V79 Chinese hamster cells. Two test systems with different genetic endpoints--sister-chromatid exchange (SCE) and gene mutation at the hypoxanthine-guanine phosphoribosyl transferase (HGPRT) locus--were used. Benzo[a]pyrene (B[a]P) was positive in both test systems. When the V79 cells were co-cultivated with the hepatocytes at a distance of 1 mm, only a slight increase in the number of SCEs was observed after exposure to benzo[a]pyrene. When the two cell types were in direct contact, addition of the phorbolester TPA or cigarette smoke condensate inhibited the mutagenic effects of B[a]P in both assays by 50%. No influence of TPA on the number of SCEs induced by B[a]P was observed in a preincubation assay using Aroclor-1254-induced rat liver homogenate. The results indicate that metabolic co-operation may play a role in the transport of reactive intermediates in this co-cultivation system. The mutagenic potential of compounds may be underestimated in systems using intact cells for metabolic activation if the compounds or their metabolites are capable of inhibiting metabolic co-operation.

Animals↗