Letter: Simple test for chyle in the urine.
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Publications and source records attributed to S Amin.
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Previous studies have shown that maternal doses of 1 microg/kg or less of 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) in late gestation can demasculinize and feminize reproductive behavior in male rats. However, it was not known whether coplanar polychlorinated biphenyls (PCBs) had similar effects, or whether non-reproductive sexually dimorphic behaviors such as saccharin preference behavior were also altered. We determined the effects of TCDD or coplanar PCBs on saccharin consumption and saccharin preference in male and female rats. Sprague-Dawley rats were dosed with 3,3',4, 4'-tetrachlorobiphenyl (PCB 77; 2 or 8 mg/kg/day), 3,3',4,4', 5-pentachlorobiphenyl (PCB 126; 0.25 or 1.0 microg/kg/day), TCDD (0. 025 or 0.10 microg/kg/day), or corn oil vehicle on days 10-16 of gestation. Maternal exposure to TCDD or coplanar PCBs did not change saccharin consumption or saccharin preference in male rats. However, TCDD and coplanar PCB-exposed females showed decreased saccharin consumption and saccharin preference. The results indicate that saccharin consumption is masculinized in female rats exposed to TCDD or coplanar PCBs during perinatal development. This effect could be related to the anti-estrogenic actions of these chemicals.
Recently we reported that in utero and lactational exposure to 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) or coplanar polychlorinated biphenyls (PCBs) resulted in a reduction of errors on a radial arm maze (RAM) working memory task. The effect was more pronounced in males than in females. In this study, we further investigated the effects of in utero and lactational exposure to TCDD on learning and memory by testing male and female TCDD-exposed rats on three different spatial learning and memory tasks: the RAM, the Morris water maze (MWM), and spatial discrimination-reversal learning (RL), as well as on a nonspatial learning task, visual RL. Time-mated Sprague-Dawley rats were gavaged with either TCDD (0.1 microg/kg/day) or corn oil vehicle on gestation days 10-16. Litters were culled to eight on day 2 and weaned on day 21. Beginning on day 80, one male and one female from each litter were tested on the same RAM working memory task used in the previous study. Again, the TCDD-exposed male rats displayed a pronounced decrease in errors relative to control males. Following the RAM testing, the same animals were tested on the MWM, but no differences between the exposed and control rats were observed. Another male and female from each litter were tested on spatial RL on a T-maze. There were no differences between the exposed and control rats on this task. Following spatial RL, the same rats were tested on visual RL on the same maze. The exposed animals did not differ from controls on original learning, but took more trials to reach criterion on the first and second reversals. These results demonstrate a reliable, but task-specific, facilitation of spatial learning and memory in male rats exposed to TCDD during gestation and lactation. In contrast, both male and female TCDD-exposed rats showed a deficit in learning on the visual RL task. This pattern is consistent with that seen in earlier monkey studies. Perinatally TCDD-exposed monkeys were facilitated on certain spatial tasks, but impaired on visual RL tasks.
Previous studies have shown that 5-methylchrysene (5-MeC) is more carcinogenic on mouse skin than the other methylchrysenes and that the structural requirements favoring tumorigenicity of methylated polynuclear aromatic hydrocarbons are the presence of a bay region methyl group and free peri position, both adjacent to an unsubstituted angular ring. The purpose of this study was to extend these structure-activity relationships to dimethylchrysenes. The following dimethylchrysenes were synthesized: 1,5-dimethylchrysene (1,5-diMeC), 5,6-diMeC, 5,7-diMeC, 5,12-diMeC, 1,6-diMeC, 6,7-diMeC, and 6,12-diMeC. Bioassays of these compounds for tumor-initiating activity on mouse skin demonstrated that all were significantly less tumorigenic than 5-MeC; only 5,6-diMeC had significant tumorigenic activity. Since the relatively low activities of 5,7-diMeC and 5,6-diMeC were unexpected on the basis of the structural requirements stated above, anti-1,2-dihydroxy-3,4-epoxy-1,2,3,4-tetrahydro-5,7-dimethylchrysene+ ++ (anti-5,7-diMeC-1,2-diol-3,4-epoxide) was synthesized. Its mutagenicity in Salmonella typhimurium and reactivity with calf thymus DNA were compared to those of the major ultimate carcinogen of 5-MeC, anti-5-MeC-1,2-diol-3,4-epoxide. It was strongly mutagenic (2500 revertants/nmol), although less active than anti-5-MeC-1,2-diol-3,4-epoxide (7200 revertants/nmol). Its reactivity with calf thymus DNA was similar to that of anti-5-MeC-1,2-diol-3,4-epoxide. The results of this study demonstrate that the structural requirements which favor tumorigenicity of monomethylchrysenes are not sufficient for high tumorigenicity of dimethylchrysenes.
trans-3'-Hydroxycotinine is a major urinary metabolite of nicotine in smokers, but no straightforward method is available for its synthesis. A simple method was developed for preparation of trans-3'-hydroxycotinine from cotinine in two steps by using NaN[(CH3)3Si]2 and dibenzyl peroxydicarbonate, followed by base-catalyzed hydrolysis.
The syntheses of potentially important metabolites of benzo[b]naphtho[2,1-d]thiophene ([2,1]BNT)--trans-1,2-dihydroxy-1,2-dihydrobenzo[b]naphtho[2,1- d]thiophene ([2,1]BNT-1,2-diol) and trans-3,4-dihydroxy-3,4-dihydrobenzo[b]naphtho[2,1-d]thiophene ([2,1]BNT-3,4-diol)--are described. The syntheses involved preparation of the appropriate 1-(3-benzo[b]-thiopheneyl)-2-(methoxyphenyl)ethylenes followed by photocyclization to methoxy-[2,1]BNTs, hydrolysis to hydroxy-[2,1]BNTs, oxidation to [2,1]BNT-diones, and NaBH4 reduction. The dihydrodiols were tested for mutagenicity in Salmonella typhimurium TA 100 with activation; [2,1]BNT-3,4-diol, which can form a bay region diol epoxide, was as mutagenic as [2,1]BNT whereas [2,1]BNT-1,2-diol was inactive. These results suggest that the metabolic activation of [2,1]BNT proceeds partially via formation of a bay region diol epoxide.
4-Carboxyl-substituted analogues of trans-3'-hydroxycotinine were synthesized to be covalently linked to macromolecules for antibody production. 3-Pyridyl-N-methylnitrone was condensed with dimethyl fumarate to give two isomeric isoxazolidines. Hydrogenolysis of the major product [2RS-(2 alpha,3 alpha,3 beta)]-3-carbomethoxy-3- [[(benzyloxy)carbonyl]oxy]-1-methyl-5-oxo-2-(3-pyridinyl)pyrrolidine with Pd/C followed by hydrolysis gave [2RS-(2 alpha,3 beta,4 beta)]-4-hydroxy-1-methyl-5-oxo-2-(3-pyridinyl)-3- pyrrolidinecarboxylic acid. The same compound was also prepared in two steps in high yield starting with dibenzyl fumarate and 3-pyridyl-N-methylnitrone.
In previous studies, we have observed unexpected structure-tumorigenicity relationships among the dimethylchrysenes. Thus, 5,6-dimethylchrysene and 5,7-dimethylchrysene were only weakly tumorigenic and were significantly less active than 5-methylchrysene. These results were surprising in view of the known route of metabolic activation of 5-methylchrysene via its 1,2-diol 3,4-epoxide. In this paper, we extended our studies of structure-tumorigenicity relationships among the dimethylchrysenes. We synthesized 5,7-, 5,8-, 5,9-, and 5,10-dimethylchrysene via photochemical ring closure reactions. The tumor-initiating activities of these dimethylchrysenes on mouse skin were compared with those of 5-methylchrysene and 5,6-dimethylchrysene. 5-Methylchrysene and 5,9-dimethylchrysene were highly tumorigenic and were significantly more active than 5,6-, 5,7-, 5,8-, and 5,10-dimethylchrysene. The results of these studies, taken together with those reported in the subsequent two papers, suggest that the molecular shapes of dimethylchrysenes influence the balance between metabolic activation and detoxification pathways.
5,6-Dimethylchrysene (5,6-diMeC) is a weaker tumor initiator on mouse skin than 5-methylchrysene (5-MeC). To investigate the reasons for the unexpectedly low activity of 5,6-diMeC, we have studied its metabolism and DNA binding in mouse skin, particularly with respect to metabolic activation via its anti-1,2-diol 3,4-epoxide. The metabolism of 5,6-diMeC was first examined with liver 9000g supernatant from Aroclor 1254 pretreated rats. Three major metabolites were identified as 1- or 7-hydroxy-5-(hydroxymethyl)-6-MeC, 1,2-dihydroxy-1,2-dihydro-5,6-diMeC (5,6-diMeC-1,2-diol), and 1-hydroxy-5,6-diMeC. The formation of 5,6-diMeC-1,2-diol was then assessed in mouse epidermis, following topical application of [3H]5,6-diMeC. Levels of 5,6-diMeC-1,2-diol in epidermis exceeded those of 5-MeC-1,2-diol formed from 5-MeC under similar conditions. The binding of [3H]5,6-diMeC and that of [3H]5-MeC to mouse epidermal DNA were then compared. 5,6-DiMeC-deoxyribonucleoside adducts were prepared as markers by reaction of anti- and syn-5,6-diMeC-1,2-diol 3,4-epoxide with calf thymus DNA. HPLC analysis of enzymatic hydrolysates of mouse epidermal DNA, isolated 18 h after topical treatment with [3H]5,6-diMeC or [3H]5-MeC, demonstrated the formation from [3H]5,6-diMeC of two major adducts produced by reaction of its anti-1,2-diol 3,4-epoxide with deoxyguanosine and deoxyadenosine, respectively, while the major adduct formed from [3H]5-MeC resulted from reaction with deoxyguanosine, in agreement with previous results. Total DNA binding of [3H]5-MeC as well as formation of deoxyguanosine adducts exceeded that of [3H]5,6-diMeC by 3-4-fold.(ABSTRACT TRUNCATED AT 250 WORDS)
In contrast to 5-methylchrysene and 5,9-dimethylchrysene, 5,6-dimethylchrysene and 5,7-dimethylchrysene are weak tumor initiators on mouse skin. In order to investigate the basis for this, we have evaluated the mutagenic activities toward Salmonella typhimurium TA 100 and reactivity with DNA of (+/-)-anti-1,2-dihydroxy-3,4-epoxy-1,2,3,4-tetrahydro-5,6-dimethyl-ch rys ene (anti-5,6-diMeC-1,2-diol 3,4-epoxide) and anti-5,7- and anti-5,9-diMeC-1,2-diol 3,4-epoxide. The tumorigenic activities of anti-5,6- and anti-5,7-diMeC-1,2-diol 3,4-epoxides in newborn mice were also investigated. anti-5,9-diMeC-1,2-diol 3,4-epoxide was the most mutagenic of the three diol epoxides. anti-5,6-diMeC-1,2-diol 3,4-epoxide was highly tumorigenic in newborn mouse lung, with activity significantly greater than that of either anti-5-MeC- or anti-5,7-diMeC-1,2-diol 3,4-epoxide. Although the amounts of total binding of the diol epoxides to calf thymus DNA were similar, anti-5,6-diMeC-1,2-diol 3,4-epoxide bound extensively to deoxyadenosine residues. High binding to deoxyadenosine is related to the presence of a sterically hindered bay or fjord region as present in 5,6-diMeC, 7,12-dimethylbenz[a]anthracene, benzo-[g]chrysene, and benzo[c]phenanthrene. The conformations of the anti- and syn-diol epoxides of 5,6-diMeC and benzo[c]phenanthrene were similar, with both having pseudodiequatorial hydroxyl groups, in contrast to less sterically crowded diol epoxides. The high tumorigenicity of anti-5,6-diMeC-1,2-diol 3,4-epoxide in newborn mice is of interest with respect to its high deoxyadenosine binding.(ABSTRACT TRUNCATED AT 250 WORDS)
Thioarenes, sulfur-containing polycyclic aromatic hydrocarbons, have been detected in a number of environmental sources. The metabolism of one thioarene, benzo[b]naphtho[2,1,d]thiophene ([2,1]BNT), by F344 rat liver 9000g supernatant (S-9) was studied. [2,1]BNT which is structurally analogous and has similar carcinogenic potency to chrysene, was metabolized to six ethyl acetate-extractable metabolites when incubated with S-9 from Aroclor 1254-treated F344 rats. Each metabolite was collected from reverse-phase HPLC, and their identities were determined by analysis of MS and NMR data. In order of elution from HPLC they are as follows: (1) trans-1,2-dihydroxy-1,2-dihydrobenzo[b]naphtho[2,1-d]thiophene, (2) benzo[b]naphtho[2,1-d]-thiophene sulfone, (3) benzo[b]naphtho[2,1-d]thiophene sulfoxide, (4) trans-3,4-dihydroxy-3,4-dihydrobenzo[b]naphtho[2,1-d]thiophene, (5) 8- or 9-hydroxybenzo[b]naphtho[2,1-d]thiophene, and (6) 7-hydroxybenzo[b]naphtho[2,1-d]thiophene. In addition, the identities of metabolites 1, 2, 3, and 4 were confirmed by comparison to standards. The syntheses of the sulfone and sulfoxide of [2,1]BNT are reported here. The syntheses of the dihydrodiols were reported previously. Metabolite 5, a hydroxy[2,1]BNT, was the major metabolite formed by liver S-9 from untreated F344 rats. Microsomal preparations from these rats also produced significant amounts of the dihydrodiols, 1 and 4, and the sulfoxide, 3. Microsomes prepared from Wistar rats produced dihydrodiols and the sulfone and sulfoxide of [2,1]BNT. Therefore, [2,1]BNT is metabolized by both ring oxidation and sulfur oxidation in these two strains of rats.
4-Ipomeanol (IPO) is an investigational chemotherapeutic drug with specific toxicity toward the lung. It is metabolically activated to reactive intermediates by cytochrome P450 enzymes present in Clara cells. 4-(Methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK) is a highly carcinogenic tobacco-specific nitrosamine with organo-specificity for the lung. Like IPO, which it resembles structurally, it is metabolically activated by cytochrome P450 enzymes of rat Clara cells. We synthesized nontoxic analogues of IPO and tested their activities as inhibitors of the metabolism and tumorigenicity of NNK. The IPO analogues synthesized were 4-hydroxy-1-phenyl-1-pentanone (HPP), 7-hydroxy-1-phenyl-1-octanone (HPO), 4-hydroxy-1-(2-thienyl)-1-pentanone (HTP), and 4-hydroxy-1-(3-pyridyl)-1-pentanone (HPYP). When added to A/J mouse lung microsomal incubations, all compounds significantly inhibited the oxidative pathways of NNK metabolism--alpha-hydroxylation and pyridine N-oxidation--to varying extents. Inhibition of carbonyl reduction of NNK was generally less effective. Inhibition of alpha-hydroxylation by IPO, HPP, and HTP was more pronounced in incubations with lung microsomes than with liver microsomes. None of the IPO analogues showed significant toxicity when given to A/J mice at a dose of 25 mumol; IPO itself was lethal at this dose. HPP and HPO, at doses of 25 mumol, significantly inhibited lung tumor multiplicity in mice treated with NNK; the other analogues and IPO itself were ineffective. The results of this study provide new leads for development of inhibitors of NNK metabolism and chemical probes for the active site of P450 enzymes in Clara cells.
Proton NMR spectra, obtained in MeOH-d4, of the major DNA adduct of 5,7-dimethylchrysene-1,2-diol 3,4-epoxide, identified as 1(R),2(S),3(S)-trihydroxy-4(S)-(N2-deoxyguanosyl)-1, 2,3,4-tetrahydro-5,7-dimethylchrysene, showed the presence of two distinct conformers. One conformer, similar to those observed previously in spectra of peracetates of related DNA adducts of anti-diol epoxides of polynuclear aromatic hydrocarbons, had a chair-like conformation of the tetrahydrobenzo ring. The other conformer, which has not been previously observed, had a boat-like conformation of the tetrahydrobenzo ring. This conformer was converted to the chair-like conformer upon addition of D2O or trifluoroacetic acid to the MeOH-d4 solutions of the adduct. The new conformers were also observed in proton NMR spectra of major DNA adducts of 5-methylchrysene- and 5,6-dimethylchrysene-1,2-diol 3,4-epoxides.
Adducts derived from the covalent binding of two positional monomethyl-substituted isomers of a bay region chrysene diol epoxide to supercoiled pIBI30 DNA (2926 base pairs/genome) were prepared, and their characteristics were investigated by a combination of gel electrophoresis and flow linear dichroism techniques. The 5- and 6-methyl derivatives of trans-1,2-dihydroxy-anti-3,4-epoxy-1,2,3,4-tetrahydrochrysene [(+)-5- and (+)-6-MeCDE, respectively], both with 1R,2S,3S,4R stereochemistry, are characterized by significant differences in their biological activities [Melikian et al. (1988) Cancer Res. 48, 1781-1787]. When covalently bound to plasmid DNA, these two molecules give rise to striking differences in the gel electrophoretic and flow hydrodynamic characteristics of the modified supercoiled DNA. The hydrodynamic flow linear dichroism of linearized DNA molecules (obtained by EcoRI enzyme digestion of covalently closed supercoiled pIBI30 DNA), modified covalently with the highly tumorigenic and mutagenic (+)-5-MeCDE derivative, indicates that flexible joints, bends, or kinks are formed at the site of binding of (+)-5-MeCDE. Slab gel data, as well as ethidium bromide-titration tube agarose gel electrophoresis data, indicate that the formation of (+)-5-MeCDE-DNA lesions causes the removal of superhelical turns with an unwinding angle of 13 +/- 3 degrees per covalently bound polycyclic aromatic residue. In contrast, the biological inactive (+)-6-MeCDE does not significantly alter the characteristics of supercoiled DNA, the unwinding angle is only 2.7 +/- 1 degrees, and the changes in persistence lengths detected by the flow linear dichroism technique are significantly smaller than in the case of (+)-5-MeCDE-DNA adducts.(ABSTRACT TRUNCATED AT 250 WORDS)
A previously unknown urinary metabolite of 4-(methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK) was identified as 4-(methylnitrosamino)-1-[3-(6-hydroxypyridyl)]-1-butanone (6-hydroxyNNK). The metabolite was initially isolated from rat urine. On the basis of its MS and NMR, it was either a 4- or 6-hydroxypyridyl derivative of NNK. Model compounds were synthesized to distinguish between these possibilities; the results indicated that the metabolite was 6-hydroxyNNK. This was confirmed by independent synthesis; the spectral and chromatographic properties of 6-hydroxyNNK were the same as those of the metabolite. F-344 rats and A/J mice treated with 100 mg/kg NNK excreted approximately 1% of urinary metabolites as 6-hydroxyNNK; it was not detected as a sulfate or glucuronide conjugate. This is the first example of a pyridyl-hydroxylated metabolite of a tobacco-specific nitrosamine. On the basis of comparison to published data on other pyridine derivatives, 6-hydroxyNNK may be formed by bacterial metabolism. The potential utility of 6-hydroxyNNK as a dosimeter of human uptake of NNK is discussed.
Dibenzo[a,l]pyrene (DB[a,l]P) is one of the strongest polynuclear aromatic hydrocarbon carcinogens known. This paper describes the synthesis of potential ultimate carcinogens of DB[a,l]P: anti- and syn-11,12-dihydroxy-13,14-epoxy-11,12,13,14- tetrahydroDB[a,l]P (DB-[a,l]P-11,12-diol-13,14-epoxides). The method employed is also useful for the preparation of key intermediates for the synthesis of 11,12-dihydroxy-13,14-epoxy-11,12,13,14-tetrahydrobenzo-[g]chrysene (BgC-11,12-diol-13,14-epoxide). Photochemical cyclization of the appropriately substituted phenanthrylphenylethylenes provided 9-carbomethoxy-11-methoxyBgC (4) and 11-methoxyBgC (3). The former was converted by reduction, oxidation, one-carbon chain extension, and cyclization to 11-methoxy DB[a,l]P (7). Compounds 3 and 7 were converted by hydrolysis and oxidation to BgC-11,12-dione (10) and DB[a,l]P-11,12-dione (11), respectively. The diones are the precursors for the synthesis of the corresponding diol epoxides. anti- and syn-DB-[a,l]P-11,12-diol-13,14-epoxides 13 and 14 were prepared in 38% and 55% yields, respectively, from 11. Both diol epoxides had predominantly pseudodiequatorial hydroxyl groups, as seen in other sterically hindered diol epoxides.
The regioselective synthesis of 3-methoxybenz[a]anthracene-7,12-dione by oxidative photocyclization is described. The synthesis involved preparation of 1-(1-bromo-2-naphthyl)-2-(3- methoxyphenyl)ethylene by Wittig reaction, followed by photocyclization for 4 h. This gave 7-bromo-3-methoxybenz[a]anthracene. Extended photocyclization over 16 h under similar conditions gave 3-methoxybenz[a]anthracene-7,12-dione, an important intermediate in the synthesis of 7,12-dimethylbenz[a]anthracene-3,4-diol 1,2-epoxide.
Dihydrodiol epoxides from 5,6-dimethylchrysene exhibit properties similar to those of fjord region-containing hydrocarbon derivatives in that they react extensively with deoxyadenosine residues in DNA and consequently generate substantial numbers of mutations at AT pairs as well as GC pairs. The syn-dihydrodiol epoxide favors reaction with deoxyadenosine (68% of adducts) to a greater extent than does the anti-dihydrodiol epoxide (52% of adducts), and point mutations at AT pairs (72% for syn- and 45% for anti-dihydrodiol epoxide) follow the same trend. A novel feature of the mutagenicity of the 5,6-dimethylchrysene derivatives is that they exhibit a higher fraction of AT-->GC transitions (28% and 26% for syn and anti, respectively) than has been seen for other hydrocarbon derivatives to date.