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B B Davis

Publications and source records attributed to B B Davis.

At least 73 records · Page 4Linked to original sources

Mechanism of peroxidative activation of the bladder carcinogen 2-amino-4-(5-nitro-2-furyl)-thiazole (ANFT): comparison with benzidine.

The mechanism of activation of the bladder carcinogen 2-amino-4-(5-nitro-2-furyl)thiazole (ANFT) was investigated by comparison with benzidine. In comparison with benzidine, ANFT has a higher electrochemical potential (approximately 700 mV) and is less effective as a reducing co-substrate for either prostaglandin H synthase (PHS) or horseradish peroxidase. Activation was monitored by measuring binding to protein (BSA) and DNA. ANFT binding to protein was reduced by indomethacin, a fatty acid cyclooxygenase inhibitor; phenol and aminopyrine, competitive reducing co-substrates; ascorbic acid, an antioxidant; and glutathione, thioether conjugate formation. These results are consistent with those previously reported for benzidine and demonstrate a peroxide co-substrate requirement, interaction of peroxidase with amine, formation of reactive intermediates and inactivation of reactive intermediates. 5,5-Dimethyl-1-pyrroline N-oxide (DMPO), a radical trap, also reduced ANFT binding to protein. Similar results were observed whether activation by PHS or horseradish peroxidase was investigated. Peroxidative activation of ANFT and benzidine to bind DNA was inhibited by these test agents in a manner similar to that observed with protein except that DMPO did not reduce binding. In addition, 2-methyl-2-nitrosopropane and methyl viologen, which are radical traps, and methionine and p-nitrobenzyl-pyridine, which are strong nucleophiles, did not reduce ANFT or benzidine binding to DNA. These agents also did not prevent binding of benzidinediimine, the two-electron product of benzidine oxidation, to polydeoxyguanosine. Glutathione inhibited diimine binding by forming a conjugate. Results demonstrate that activation of ANFT to bind protein and DNA is similar to benzidine. Peroxidative activation of benzidine occurs by both one- and two-electron oxidation. A similar mechanism would explain ANFT binding to protein (one electron) and DNA (two electron).

Alkenes↗

Regulation of dog urothelial cell arachidonic acid release and prostaglandin E2 synthesis.

The effects of various agonists on prostaglandin E2 (PGE2) synthesis and arachidonic acid release were evaluated to identify factors which regulate urothelial cell responsiveness. Techniques for harvesting and culturing urothelial cells from the canine bladder were developed. Although serum had little effect on growth, it was required for arachidonic acid, 12-O-tetradecanoylphorbol-13-acetate (TPA) or A23187 to elicit increases in PGE2 production. Fetal calf serum (FCS), bovine calf serum (BCS) and heated BCS (each at 1%) were equally effective in supporting prostaglandin production. The optimum concentration range for the effect of FCS was 0.3-1.0% with 7.0% being less effective. The lack of agonist responsiveness observed with no serum could be reversed by adding serum at days 2 or 6 of a total of 9 days in culture. Subculturing cells dramatically reduced responsiveness to all stimulators tested. Bradykinin-stimulated release of arachidonic acid was maximal within 15 min, while the TPA release continued throughout the 120-min study. TPA response was inhibited by cycloheximide and actinomycin D. Neither agent altered the response to arachidonic acid. Combinations of arachidonic acid with TPA were neither additive nor synergistic. Responses to arachidonic acid, TPA and A23187 were optimum when the cells were near confluency. NaF, epidermal growth factor and mezerein also stimulated PGE2 synthesis. Tumor-promoting, but not the non-tumor-promoting phorbol esters (4 alpha-phorbol-12,13-didecanoate), increased PGE2 synthesis. Thus, the arachidonic acid cascade in dog urothelial cells is a hormonal responsive system which provides a method for evaluating transmembrane signaling.

Animals↗

Insulin-mediated post-transcriptional regulation of hepatic malic enzyme and albumin mRNAs.

Livers of insulin-treated diabetic rats accumulate albumin and malic enzyme mRNAs at very different rates. We now report that in normal rats insulin directs a specific increase in malic enzyme mRNA, while albumin mRNA levels remain unaltered. These studies support the contention that insulin regulates the accumulation of hepatic mRNAs in a highly specific manner. To evaluate whether or not albumin and malic enzyme mRNA levels are determined by altered rates of transcription, in vitro transcription assays were performed. The results of these studies demonstrate that increased malic enzyme mRNA levels in insulin-treated normal rats and increased malic enzyme and albumin mRNA levels in insulin-treated diabetic rats do not involve altered rates of transcription of the genetic sequences encoding these proteins. For these two specific proteins, insulin mediates changes in mRNA levels by a post-transcriptional mechanism.

Animals↗

'Revised' mass spectral identification of 2-amino-4-(5-nitro-2-furyl)thiazole metabolites.

The electron ionization mass spectra of 2-amino-4-(5-nitro-2-furyl)thiazole metabolites obtained from microsomal incubations and chemical syntheses were studied. The identities of the metabolites were established by chemical ionization, high resolution, and metastable measurements. The compounds studied showed multiple modes of cleavage, skeletal rearrangements and hydrogen back-transfer.

Animals↗

Effect of peroxidase inhibitors on an in vivo metabolite of the urinary bladder carcinogen N-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide in rats.

Peroxidase metabolism of 2-amino-4-(5-nitro-2-furyl)thiazole (ANFT) was evaluated in vitro and in vivo. In vitro metabolism of ANFT was characteristic of the hydroperoxidase activity of prostaglandin H synthase. The peroxidase inhibitors, 6-n-propyl-2-thiouracil and methimazole, significantly reduced ANFT binding to trichloroacetic acid precipitable material and glutathione conjugate formation. Isolated perfused kidneys rapidly converted the glutathione conjugate to its corresponding mercapturic acid (ANFT-MA). With both radiochemical and electrochemical techniques, ANFT-MA was identified in the urine of rats given N-[14C]-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide, the carcinogenic N-formyl analogue of ANFT. ANFT was the major urinary metabolite with N-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide not detected. A 30-min pretreatment with 6-n-propyl-2-thiouracil and methimazole significantly reduced urinary excretion of ANFT-MA in rats given N-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide (150 mg/kg) from 14.8 +/- 2.1 (SE) to 7.9 +/- 0.8 and 6.2 +/- 1.1 nmol/18 h, respectively. Peroxidase inhibitor pretreatment did not alter the excretion of ANFT or prostaglandin E2. These results provide further in vitro and in vivo support for the involvement of peroxidases, i.e., the hydroperoxidase activity of prostaglandin H synthase, in ANFT metabolism.

Acetylcysteine↗

Cortical interstitial cell interactions induce sensitivity of hydronephrotic kidney to bradykinin.

The mechanism of the increased prostaglandin production and induction of sensitivity to bradykinin by the cortex of the hydronephrotic rabbit kidney was investigated using tissue culture techniques. Cortical interstitial cells from normal, unilaterally hydronephrotic and contralateral kidneys were grown in tissue culture. Cells derived from hydronephrotic kidneys, but not normal or contralateral, increased PGE2 production when incubated with bradykinin. Of the two cell types, fibroblasts and macrophages, grown from hydronephrotic explants, neither increased prostaglandin production when grown alone in tissue culture. Recombining the two cell types restored bradykinin responsiveness. Bradykinin responsiveness could be induced in either normal or contralateral cell cultures when macrophages from the hydronephrotic kidney were added to cultures of cells from normal or contralateral cortex. The data indicate unique characteristics of hydronephrotic macrophages are involved in the induction of bradykinin responsiveness in the cortex of the ureter-ligated kidney.

Animals↗

Renal metabolism of formic acid 2-[4-(5-nitro-2-furyl)-2-thiazolyl]-hydrazide.

Formic acid 2-[4-(5-nitro-2-furyl)-2-thiazolyl]-hydrazide (FNT) is a potent renal carcinogen in the rat. This study assessed the metabolism of FNT by the isolated perfused rat kidney and whole rat. The glomerular filtration rate and the fractional excretion of sodium for the isolated perfused kidney indicated that under the conditions of these experiments FNT did not alter these renal parameters. The half-life (t1/2) for FNT in the isolated perfused kidney was 67 +/- 8 min. Using HPLC, a metabolite of FNT was observed in urine from the isolated perfused kidney. This metabolite had absorbance at 385 nm but not 254 nm and could not be detected electrochemically at +500 mV. While the excretion of FNT decreased with time of perfusion, the metabolite excretion increased. Whole animal studies demonstrated that FNT is rapidly cleared from blood within the first 5 min of administration. The FNT metabolite was excreted at approximately the same rate from 0-30 and 30-60 min after FNT administration. The metabolite was not observed in media from FNT perfused kidneys or plasma from animals administered FNT. Analysis of purified metabolite by liquid chromatography/mass spectrometry (LC/MS) and gas chromatography/mass spectrometry (GC/MS) determined the structure to be 5-nitro-2-furonitrile. This structure assignment was verified by chemical synthesis. Results demonstrate target organ metabolism of carcinogen.

Animals↗

Characteristics of bradykinin and TPA increases in the PGE2 levels of human urothelial cells.

Prostaglandins play a potential key role in the pathogenesis of urinary bladder cancer. Bradykinin and TPA increases in prostaglandin (PG)E2 levels were compared in primary cultures of human urothelial cells. Increased PGE2 levels were dependent upon the dose of TPA and were not apparent until 30-60 min after addition of TPA, with larger increases occurring between 60 and 120 min. Stimulation was inhibited by cycloheximide. Addition of arachidonic acid to TPA-stimulated cells increased PGE2 to a level similar to that seen in arachidonic acid-stimulated controls, and this level was not altered by cycloheximide. In contrast to TPA, the bradykinin-increased PGE2 levels were maximal at 5 min (the earliest time-point assessed) and were not inhibited by cycloheximide. Increases in PGE2 levels by both TPA and bradykinin required calcium. Excessive stimulation by TPA resulted in a desensitization to subsequent stimulation by TPA, but not bradykinin. Combination of TPA with bradykinin produced at least an additive effect on PGE2 levels. Both agonists increased the release of [3H]arachidonic acid over a time-course similar to their PGE2 response. Bradykinin and TPA appear to increase PGE2 levels by enhancing arachidonic acid availability through separate phospholipase pathways. Thus, human urothelial cells exhibit similar, but yet distinct profiles for prostaglandin stimulation by TPA and bradykinin.

Arachidonic Acid↗

Renal metabolic/excretory coupling.

Renal metabolic/excretory coupling is the enhancement of urinary excretion dependent upon renal metabolism. The nitrofurothiazoles, N-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide (FANFT) and 2-amino-4-(5-nitro-2-furyl)thiazole (ANFT), are model compounds used to study metabolic/excretory coupling. FANFT is deformylated to ANFT by renal deformylase enhancing ANFT excretion. In the rat, ANFT excretion after oral FANFT administration was 100-fold greater than ANFT excretion when ANFT was administered. FANFT and ANFT uptake into purified proximal tubules achieved equilibrium within 60 s and was demonstrated in nonviable tubules. FANFT partitioned into oil better than ANFT. Albumin inhibited FANFT and ANFT uptake into oil and decreased tubular uptake by 65%. Tubular FANFT uptake was threefold or greater than that of ANFT uptake with or without albumin. Renal deformylase was predominantly cytosolic and yielded apparent Km and Vmax of 6.7 microM and 6.1 nmol ANFT.min-1.mg protein-1, respectively. Deformylase activity was abolished by boiling, was specific for N-formylated compound, and was not altered by dinitrophenol treatment. Renal metabolic/excretory coupling for FANFT/ANFT combines energy-independent uptake with metabolism (deformylation), resulting in enhanced urinary ANFT excretion.

Animals↗

Lung prostaglandin H synthase and mixed-function oxidase metabolism of nicotine.

Nicotine, a major constituent of cigarette smoke, was metabolized by lung microsomes to an aqueous soluble metabolite after addition of arachidonic acid. Similar results were observed with ram seminal vesicle microsomes. Metabolism was inhibited by indomethacin, propylthiouracil and methimazole but not glutathione. Data are consistent with metabolism being catalyzed by the hydroperoxidase activity of prostaglandin H synthase. The product was identified by mass spectrometry as 3-(2,3-dihydro-1-methyl-2-pyrrolyl)pyridine. Addition of NADPH resulted in formation of a different aqueous soluble product and also an organic extractable product. NADPH-dependent products were inhibited by 2-[(2,4-dichloro-6-phenyl)phenoxy]ethylamine, suggesting mixed-function oxidase catalyzed metabolism. The organic soluble product was identified as cotinine. Cotinine formation was inhibited by glutathione. 3-(2,3-dihydro-1-methyl-2-pyrrolyl)Pyridine was identified in urine from rabbits administered nicotine and from a male cigarette smoker. The amount of peroxidatic product in urine from rabbit and humans was 15 and 6%, respectively, that observed for cotinine. Thus, peroxidation represents a new metabolic pathway for nicotine which involves the peroxidatic activity of prostaglandin H synthase.

Animals↗

The effect of long-term administration of aspirin and sodium saccharin on the rat kidney.

In a study primarily designed to evaluate the inhibitory effects of aspirin on N-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide (FANFT)-initiated and saccharin-promoted bladder carcinogenesis, significant renal lesions were observed. Thus, administration in the diet of aspirin and sodium saccharin to F344 male rats for 68 weeks resulted in significant lesions of the renal papilla. In contrast to the bladder, aspirin enhanced the frequency and severity of the proliferative action of sodium saccharin on the epithelium of the renal papilla (p less than 0.05 compared to rats treated with either compound alone). The majority of rats administered the two chemicals together demonstrated moderate to severe urothelial hyperplasia of the renal papilla. Columnar metaplasia of the papillary epithelium also occurred frequently in rats fed the combination of chemicals. The rats treated with a combination of sodium saccharin and aspirin had a high incidence of renal papillary necrosis which was also present to a lesser extent among rats treated with aspirin only. Papillary calcification was also frequently observed in the rats fed the combination of aspirin and sodium saccharin. Sodium saccharin or aspirin alone reduced the light microscopic incidence and severity of rat nephropathy, a common finding in aging rats. It would appear that the hyperplastic and renal papillary toxic effects of aspirin and sodium saccharin are independent responses, and that the administration of the two chemicals together greatly accentuates these responses.

Administration, Oral↗

Peroxidatic metabolism of benzidine by intact tissue: a prostaglandin H synthase-mediated process.

Metabolism of benzidine was assessed with rabbit renal inner medullary slices. 3-(Glutathion-S-yl)-benzidine was identified as a product of metabolism. This thioether conjugate was shown to be identical to synthetic conjugate by chromatographically assisted hydrodynamic voltammetric and enzymatic techniques. A good correlation between PGE2 synthesis and conjugate formation was observed with a variety of incubation conditions including tissue weight, arachidonic acid concentration and incubation time. With 0-0.01 mM idomethacin, an inhibitor of the fatty acid cyclo-oxygenase component of prostaglandin H synthase (PHS), a linear relationship between conjugate formation and prostaglandin E2 synthesis was observed. In contrast, the peroxidase cosubstrates propylthiouracil, phenidone, ascorbate and methimazole inhibited arachidonic acid stimulation of conjugate formation but not prostaglandin E2 synthesis. These cosubstrates may be functioning as competitive inhibitors of benzidine co-oxidation. The results are consistent with peroxidatic metabolism of benzidine in intact tissue by a PHS-mediated process. 3-(Glutathion-S-yl)-benzidine may be a useful marker for studying peroxidatic metabolism in intact tissue and in investigating selective inhibition of this process.

Animals↗

Metabolism of the renal carcinogen FNT by peroxidases.

Formic acid 2-[4-(5-nitro-2-furyl)-2-thiazolyl]-hydrazide (FNT) is a renal carcinogen in the rat. The peroxidative activity of prostaglandin H synthase oxidizes FNT into a reactive intermediate which forms 5-(S)-substituted thioether conjugates with glutathione and N-acetylcysteine. These conjugates are also formed during horseradish peroxidase oxidation of FNT. The conjugate was identified by the combined results of comparative u.v./vis. spectrophotometry, chromatographically-assisted hydrodynamic voltammetry and proton n.m.r. spectroscopy. The relative rate of PHS metabolism of FNT was similar to that observed with benzidine and 5-fold faster than ANFT, its 5-nitrofuro-2-aminothiazole analogue. These results indicate that the pathogenic effects of FNT may be caused by its peroxidative activation and that cellular thiols may attenuate the toxic effects of FNT by conjugate formation.

Acetylcysteine↗

Effect of verapamil on prostaglandin E2 synthesis by hydronephrotic rabbit cortical interstitial cells in primary culture.

The effect of the calcium channel blocker verapamil on prostaglandin (PG) E2 production by hydronephrotic cortical interstitial cells in primary culture was investigated. Verapamil displayed a dual action, maximally enhancing PGE2 production from 1.2 +/- 0.2 to 30.7 +/- 4.3 ng/ml at 30 microM, whereas at higher concentrations the effect tapered down to base line. Stimulation of PGE2 synthesis by verapamil required extracellular calcium, but was unaffected by the intracellular calcium inhibitor 8-(Diethylamino)octyl 3,4,5-trimethoxy-benzoate or the calmodulin inhibitor trifluoperazine. Other calcium channel blockers, nifedipine and diltiazem, failed to stimulate PGE2 synthesis, implying that this effect of verapamil was unrelated to its commonly recognized action to inhibit calcium channels. However, stimulation by verapamil was inhibited by quinacrine (mepacrine), suggesting a mechanism involving activation of a phospholipase. In addition, verapamil attenuated the bradykinin- or ionophore A23187-stimulated PGE2 production, but it did not alter arachidonic acid-induced PGE2 synthesis. These observations indicate that, in addition to phospholipase activation, verapamil may also act to inhibit phospholipase activity. Inhibition was concentration-dependent over the range 3 to 300 microM, and was reversible. It is concluded that verapamil, at different concentrations, exerts a dual action on cellular phospholipase activity, thereby stimulating, and in turn inhibiting, PGE2 synthesis by hydronephrotic interstitial cells.

Animals↗

Eicosanoid synthesis by rabbit hydronephrotic cortical interstitial cells in culture.

Rabbit hydronephrotic cortical interstitial cells in primary culture were labeled with [1-14C]arachidonic acid and the eicosanoids released after stimulation with bradykinin or A23187 were studied by reverse-phase high performance liquid chromatography. The major arachidonic acid metabolite formed was prostaglandin (PG)E2, comprising more than 30% of the total radioactivity released. 12-Hydroxyheptadecatrienoic acid, probably representing spontaneous breakdown of the cyclic endoperoxides PGG2 and/or PGH2, made up 10 to 15% of the radioactivity released. Other cyclooxygenase products that were released included PGF2 alpha, PGD2, 6-keto PGF1 alpha and only minute amounts of thromboxane B2. Small quantities of the lipoxygenase products 15-, 12- and 5-hydroxyeicosatetraenoic acids (HETEs) as well as leukotrienes (LT)B4, LTC4 and LTD4 were also identified. Significantly larger quantities of 15- and 5-HETEs were recovered at 2 to 5 min than after longer incubations with A23187, suggesting esterification of these HETEs into cellular phospholipids. The data indicate that interstitial cells of the hydronephrotic kidney synthesize a variety of cyclooxygenase and lipoxygenase products of arachidonic acid, which may contribute to the pathophysiology of hydronephrosis. Moreover, it is suggested that PGG2 and/or PGH2 that are released from these cells may be metabolized further by adjacent kidney cells or circulating blood elements to other eicosanoid products, thus increasing the diversity of eicosanoids synthesized in the hydronephrotic kidney.

Animals↗