[Sexual and contraceptive behavior of adolescents].
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Biomedical subjects
Publications and source records attributed to H G Neumann.
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Covalent binding of benzidine and some congeners to hemoglobin was studied in female Wistar rats after oral administration. Hemoglobin adducts were hydrolyzed under alkaline conditions, and the arylamines extracted and analysed by HPLC with electrochemical detector. With benzidine, three cleavage products were observed, the major component being monoacetylbenzidine. This indicates that 4-nitroso-4'-N-acetylaminobiphenyl is the major reactive metabolite in erythrocytes. In addition benzidine and 4-aminobiphenyl were identified. The latter indicates a hitherto unknown metabolic pathway of benzidine. With 3,3'-dichlorobenzidine-dihydrochloride, 3,3'-dimethoxybenzidine and 3,3'-dimethylbenzidine two cleavage products were observed, the parent diamines being present in excess to or in amounts comparable to the monoacetyl derivative. With 3,3',5,5'-tetramethylbenzidine a hemoglobin adduct could not be found. When the azo dye direct red 28 was administered to the animals, the three cleavage products typical for benzidine were found, indicating that benzidine became bioavailable after reductive cleavage of the azo compound. In this case the fraction of 4-aminobiphenyl was greater than after benzidine. It is proposed to use the analysis of hemoglobin adducts in human blood to control the exposure of individuals to these carcinogenic chemicals in the course of biochemical effect monitoring.
4,4'-Methylenebis(2-chloroaniline) (MOCA) is used as a curing agent in the production of polyurethane. MOCA is carcinogenic in experimental animals. Haemoglobin adducts have been proposed as dosimeters of aromatic amines for biological monitoring. A quantitative method to determine the adduct has now been worked out in female Wistar rats dosed per os with 3.82, 14.2 and 16.2 mumol/kg 14C-ring labeled MOCA or 0.25 and 0.50 mmol/kg unlabeled MOCA. MOCA bound in decreasing amounts to DNA, RNA and proteins of the lung, liver and kidney. Fractions of 0.19% and 0.026% of the dose were bound to the blood proteins haemoglobin and albumin, respectively. MOCA released by hydrolysis from haemoglobin was determined by HPLC with electrochemical detection or by GC-MS. Albumin did not form any hydrolysable adducts with MOCA.
Tritium-labeled trans-4-dimethylaminostilbene (DAS) and trans-4-acetylaminostilbene (AAS) were administered orally to female Wistar rats. RNA and DNA were isolated from livers after 24 h and 28 days. Hydrolysates were analyzed by gel filtration and HPLC. Total binding to nucleic acids and elution profiles of hydrolysates were very similar for both aminostilbene derivatives. The large polar fraction eluting early in Sephadex LH20 chromatograms accounting for 60-80% of total DNA-bound radioactivity could not be assigned to individual base adducts and most likely is not due to incomplete hydrolysis but rather to cross-links between bases or proteins and bases. Of the total radioactivity bound to nucleic acids 6-7% in RNA and 3-5% in DNA could be tentatively identified as four isomeric, cyclic guanine adducts (predominantly (S,S)- and (R,R)-guanine-N2,beta-N3,alpha-N-acetylaminobibenzyl) by cochromatography with synthetic reference compounds. The most abundant single adduct accounting for 20-30% of RNA-bound radioactivity (fraction G in Sephadex LH20 chromatography) could not be identified. The long-term experiment revealed different persistence of DNA adducts: the polar material decreased to about 2/3, the cyclic guanine adducts (fraction d-B) to about 1/3 to 1/2 within 4 weeks, whereas one of the unidentified DNA-adducts (fraction d-E) persisted completely. AAS labeled in the acetyl group was administered in an additional experiment. The presence of the acetyl group could be demonstrated in most of the adducts, but non-acetylated adducts were found also. The ratio of non-acetylated:acetylated cyclic B-adducts in RNA was 1:2 from DAS and 1:13 from AAS, in DNA 1:3 and 1:10, respectively.
Hemoglobin adducts of aromatic amines released from pesticides were investigated. Female Wistar rats were dosed orally with pesticides up to 1 mmol/kg body weight. Blood was obtained after 24 h, hemoglobin isolated and hydrolyzed in 1 NaOH. The amines were extracted and quantified by gas chromatography with nitrogen-specific or mass-selective detection. The following binding indices [HBI, hemoglobin binding index = binding (mmol/mol Hb) per dose (mmol/kg)] were obtained: pesticide (arylamine): linuron, diuron (3,4-dichloroaniline) 0.8 and 4.5 respectively; monuron, monolinuron (4-chloroaniline) 39 and 55 respectively; chlorpropham (3-chloroaniline) 2.9; chlordimeform (4-chloro-o-toluidine) 2.4; propham (aniline) 2.4. With vinclozoline and iprodione (3,5-dichloroaniline) and quintozene (pentachloroaniline) no adducts could be found. The results demonstrate the possible use of arylamine-hemoglobin adducts for measuring the bioavailability of potentially hazardous components of pesticides and the extent to which they are formed and metabolically activated.
The aromatic amides 2-acetylaminofluorene (2-AAF), its isomer 4-acetylaminofluorene, 2-acetylaminophenanthrene (AAP), trans-4-acetylaminostilbene (AAS) and the corresponding amines differ in their carcinogenic effects in the rat. Only 2-AAF and 2-aminofluorene (2-AF) are tumor promoters in rat liver. We have determined the competitive binding affinities of these compounds to the rat hepatic cytosolic aromatic hydrocarbon (Ah) receptor, which has been associated with tumor promotion. Binding affinity was determined by displacement of labelled 2,3,7,8-tetrachloro-dibenzo-p-dioxin (TCDD) or 3-methylcholanthrene. The rank order of affinities and the apparent inhibitor constants measured with the sucrose density gradient centrifugation technique were: AAF (2.3 microM) greater than AAP (2.7 microM) greater than 2-AF (7.0 microM) greater than trans-4-aminostilbene (7.7 microM) greater than 2-aminophen-anthrene (10.4 microM). 4-Acetylaminofluorene, 4-aminofluorene and AAS did not displace TCDD from the receptor protein. A number of other fluorene derivatives did not bind, except 2-nitrofluorene (apparent inhibitor constant (1.4 microM). The in vivo biological potency of the aromatic amines was monitored by measuring the induction of ethoxy-resorufin-O-deethylase (EROD) and aromatic hydrocarbon hydroxylase activities. In vitro binding to the Ah receptor correlates roughly with the induction of EROD activity. The effect of 2-AAF was dose dependent, supporting a receptor-mediated mechanism. The correlation between Ah receptor affinity and tumor-promoting properties of the tested aromatic amines is only limited, but the results are not at variance with the concept of a receptor-mediated process in 2-AAF tumor promotion.
It has been demonstrated in several model systems that tumors arise in a multistage process. Carcinogenic aromatic amines are complete carcinogens, which usually produce tumors in typical target tissues without any additional treatment. The tissue specificity, however, cannot readily be explained by genotoxic effects, and the role of secondary effects is not well understood. Promotional pressure on initiated cells can be produced by endogenous factors but also by the chemical itself. Comparison of the effects on rat liver of 2-acetylaminofluorene (AAF) and trans-4-acetylaminostilbene (AAS) provides some evidence that initiating and promoting properties of these chemicals can be separated. AAS is a strong initiator in rat liver but seems to lack promoting activity; AAF is a less efficient initiator but has tumor promoting properties. The results obtained so far indicate that promoting pressure is not produced by the acute, cytotoxic effects of AAF. It is therefore concluded that nongenotoxic, possibly receptor-mediated effects are involved.
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The frequency of Pap III-V findings in cytological screening examinations in Rostock-City was estimated for the age groups 16-20, 21-25 and 26-30 years. Two 3-year periods (1972-1974 and 1981-1983) were compared. A significant 9-fold increase of cytological results of Pap groups III-V was found during this time. Possible causes of this changing pattern, especially papillomavirus infections were discussed. In the age group 26-30 years there was the highest progression rate with almost 10%, in contrast to 1% in the age group 16-20 years. In the three investigated age groups a regression rate of 46% and a persistence rate of 38% were found. The results underline the increasing importance of gynecocytological screening examinations in young women.
The model ultimate carcinogen, trans-4-N-acetoxy-N-acetylaminostilbene (N-acetoxy-AAS), was reacted with guanosine (Guo) and deoxyguanosine (d-Guo) and the resulting adducts were purified by Sephadex LH-20 chromatography and HPLC for structure identification. A number of new adducts was identified by mass and 1H-NMR spectroscopy. The generation of all known adducts can now be explained by a common mechanism. The electrophile formed from the hydroxamic acid ester at C-beta reacts in a first step predominantly with N2 of guanine (Gua). The resulting quinone-imide intermediate reacts in a second step with either one of three nucleophiles: (1) predominantly with N3 of Gua to yield the previously described angular cyclic adducts ((5R,6R)/(5S,6S)-9-oxo-5,6,7,9-tetrahydro-imidazo(2,1-b)purines); (2) with N1 of Gua to yield linear cyclic adducts ((6R,7R)/(6S,7S)-9-oxo-5,6,7,9-tetrahydro-imidazo(1,2-a)purines); (3) with water to yield the open ring (1R,2R)/(1S,2S)-2-(N2'-guanyl)-1-hydroxyethanes. To some minor extent (1:8-1:9) the electrophile reacts first with N1 or N3 of guanine which leads to the formation of two pairs of the corresponding regioisomeric cyclic adducts. This reaction mechanism may also explain the formation of cross-links between different bases.
Sexuality in older age group persons, important for human self reliance, is often underestimated or ignored. But the possibility to be orgastic can maintain up to the postmenopausal lifetime of a woman, depending on a fulfilled partnership. Somatic troubles, connected with the estrogen deficiency-syndrome, can be treated with oral or local estrogens.
The suitability of certain mouse strains for carcinogenicity testing has been questioned. Some chemicals increase the incidence of liver tumors above a relatively high background, an effect not seen in rats. This raises the question whether species and tissue specific effects are involved which are reflected in the DNA binding of metabolites. DNA binding indices in mouse liver have been determined in only a few instances. They are comparable to those found for rat liver DNA with aniline, benzo(a)-pyrene, butadiene, dimethylnitrosamine, methylnitrosourea and they are lower in the mouse with aflatoxin B1, trans-4-acetylaminostilbene and 2-aminofluorene derivatives. The available data on DNA binding in mouse liver suggest that the same adducts are formed as in rats but that metabolism and repair are variables which can modify the extent of DNA damage. However, the extent of DNA binding does not always correlate with the susceptibility of this tissue to carcinogenesis. But mouse liver is no exception in this respect. It is concluded that the formation of mouse liver tumors in long term studies with genotoxic chemicals indicates tumor initiating potential. In contrast, there are other chemicals such as chlorinated hydrocarbon insecticides which do not bind to DNA to any extent and which are not genotoxic in common short term tests and yet give rise to liver tumors in mice but not in rats. Positive results in long term studies are suggested to indicate promoting properties of such compounds.
The model ultimate carcinogen trans-4-N-acetoxy-N-acetylaminostilbene was reacted with guanosine, deoxyguanosine, RNA and DNA using differently labeled reactants. The nucleoside as well as the deoxynucleoside yielded predominantly four cyclic guanine adducts: (S,S)- and (R,R)-guanine-N2,beta-N3,alpha-N-acetyl-aminobibenzyl and the regioisomers with the N2,alpha-N3,beta-attachment in a ratio of 9:9:1:1. The same adducts predominate in RNA and DNA which demonstrates that guanine reacts most avidly among the bases. The stability of the N-glycosidic bond is quite different between ribosides and deoxyribosides. Under neutral conditions, the riboside derivatives are stable, whereas deoxyribose is cleaved off rather readily. As a consequence DNA depurinizes to some extent during the in vitro reaction and during enzymatic digestion. On the other hand, N2,N3-attachment of the acetylaminostilbene moiety to guanine appears to impair the activity of nucleases for steric reasons. This could explain the incomplete enzymatic hydrolysis of modified nucleic acids. The results provide an important basis for further investigations to identify the nucleic acid adducts generated in vivo.
trans-4-Acetylaminostilbene (trans-AAS) is acutely toxic in rats and lesions are produced specifically in the glandular stomach. Toxicity is slightly increased by pretreating the animals with phenobarbital (PB) and is completely prevented by pretreatment with methylcholanthrene (MC). The prostaglandin inhibitors, indomethacin and acetyl salicylic acid, do not reduce toxicity. The high efficiency of MC suggested that toxicity is caused by reactive metabolites. trans-[3H]-AAS was administered orally to untreated and to PB- or MC-pretreated female Wistar rats and target doses in different tissues were measured by means of covalent binding to proteins, RNA and DNA. Macromolecular binding in the target tissue of poisoned animals was significantly lower than in liver and kidney and comparable to other non-target tissues. Pretreatment with MC lowered macromolecular binding in all extrahepatic tissues but not in liver. These findings are not in line with tissue specific metabolic activation. The only unique property of the target tissue, glandular stomach, that we observed was a particular affinity for the systemically available parent compound. In the early phase of poisoning, tissue concentrations were exceedingly high and the stomach function was impaired.