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Bioavailability of sodium cyanate in patients with sickle cell disease and the lack of inhibition in vitro of globin synthesis at in vivo concentrations of cyanate.

Studies have been made on the bioavailability in blood of sodium cyantate administered orally in gelatin capsules, in gelatin capsules plus antacid, in enteric-coated capsules and in cocoa butter suppositories administered rectally to patients with sickle cell disease. Maximal blood concentrations of cyanate did not exceed 0.4 mM. Sodium cyanate taken orally in gelatin capsules yielded the highest blood concentrations of the drug, but the peak concentrations and curve areas were not necessarily dose-related. The duration of the drug in the circulation was about 210 minutes. Administration of sodium cyanate in the gelatin capsules, taken with an antacid, improved the dose-response relationship within a given patient. Enteric-coated capsules and suppositories were found to show variable and low bioavailability profiles, respectively. Variability in bioavailability between patients with a given dosage form requires further study. Since the concentration of cyanate attainable in vivo does not inhibit synthesis of either the alpha- or beta-chain of hemoglobin in vitro, previous reports on the inhibitory effects of 10 to 100 mM cyanate on globin synthesis in vitro do not appear to be relevant.

Anemia, Sickle Cell

Bendazac prevents cyanate binding to soluble lens proteins and cyanate-induced phase-separation opacities in vitro: a possible mechanism by which bendazac could delay cataract.

The reaction of lens proteins with cyanate (carbamylation) causes many changes seen in human cataract including disruption of the protein conformations. Bendazac, a putative anti-cataract drug, decreases the binding of cyanate to lens proteins and prevents the cyanate-induced elevation of the phase separation temperature in incubated rat lenses. Its major metabolite, 5-hydroxybendazac, also inhibits the binding of cyanate to lens proteins even when it is present only during a pre-incubation period. The metabolite is more effective than the parent compound.

Animals

In vivo hepatic and intestinal toxicity of sodium cyanate in rats: cyanate-induced alterations in hepatic glycogen metabolism.

To determine the hepatic and intestinal toxicity of sodium cyanate, this compound was administered to rats by orogastric tube (PO) or intraperitoneal injection (IP). At low dosage (50 mg. per kilogram per day PO for 8 weeks), the animals showed no clinical effects other than mild lethargy. They had normal intestinal absorption studies, but demonstrated decreased liver G6PD activity and a slight increase in hepatic glycogen. At higher dose levels (200 mg. per kilogram per day PO for 10 days, 400 mg. per kilogram per day PO for 3 days, and 100 mg. per kilogram per day IP for 10 days), the animals became very lethargic and developed hind-limb paralysis; many animals died during the period of dosing. The severity and rate of onset of symptoms increased proportionally with the dose level. Liver sections from rats receiving these higher doses showed striking increases in glycogen deposition. Activities of hepatic enzymes involved in glycogen synthesis and degradation were measured in rats receiving 200 mg. per kilogram per day PO or 100 mg. per kilogram per day IP. Significant decreases were noted in the activities of glucose-6-phosphatase and G6PD in PO-dosed rats. The activities of phosphorylase, UDPG-pyrophosphorylase, glycogen synthetase, phosphoglucomutase, and debrancher did not differ from control rats. In IP-dosed rats, significant decreases were observed in the activities of glucose-6-phosphatase, G6PD, phosphorylase, and UDPG-pyrophosphorylase, but not in the other glycogen-related enzymes. Our data suggest that sodium cyanate affects several enzymes of hepatic glycogen metabolism but that the enzymes vary in their susceptibility (glucose-6-phosphatase and G6PD greater than phosphorylase and UDPG pyrophosphorylase.

Animals

Cyanate modification of essential lysyl residues of the diphosphopyridine nucleotide-specific isocitrate dehydrogenase of pig heart.

The DPN-specific isocitrate dehydrogenase of pig heart is totally and irreversibly inactivated by 0.05 M potassium cyanate at pH 7.4 A plot of the rate constant versus cyanate concentration is not linear, but rather exhibits saturation kinetics, implying that cyanate may bind to the enzyme to give an enzyme-cyanate complex (K equal 0.125 M) prior to the covalent reaction. In the presence of manganous ion the addition of isocitrate protects the enzyme against cyanate inactivation, indicating that chemical modification occurs in the active site region of the enzyme. The dependence of the decrease of the rate constant for inactivation on the isocitrate concentration yields a dissociation constant for the enzyme-manganese-isocitrate complex which agrees with the Michaelis constant. The allosteric activator ADP, which lowers the Michaelis constant for isocitrate, does not itself significantly affect the cyanate reaction; however, it strikingly enhances the protection by isocitrate. The addition of the chelator EDTA essentially prevents protection by isocitrate and manganous ion, demonstrating the importance of the metal ion in this process. The substrate alpha-ketoglutarate and the coenzymes DPN and DPNH do not significantly affect the rate of modification of the enzymes by cyanate. Incubation of isocitrate dehydrogenase with 14C-labeled potassium cyanate leads to the incorporation of approximately 1 mol of radioactive cyanate per peptide chain concomitant with inactivation. Analysis of acid hydrolysates of the radioactive enzyme reveals that lysyl residues are the sole amino acids modified. These results suggest that cyanate, or isocyanic acid, may bind to the active site of this enzyme as an analogue of carbon dioxide and carbamylate a lysyl residue at the active site.

Adenosine Diphosphate

Cyanate as an inactivator of complement proteins.

Sodium cyanate added to normal human serum or serum from patients with sickle-cell disease resulted in the functional inactivation of C3, C5, C6, C7, and the C3b inactivator, but not C8 and C9. Final concentrations as low as 0.5 mM in serum caused inactivation of 12 to 64% of the C3 after 8 hr at 37 degrees C. The activity of the inactivated C3, C5, and C3b inactivator was not restored by dialysis. Most of the functional activity of C3 in cyanate-treated sera was destroyed by very small quantities of 14C-labeled cyanate that was bound to the protein. C3 inactivation by cyanate occurred in heated sera (50 degrees C, 30 min) and sera treated with EDTA, probably indicating that one mechanism for inactivation was by a direct carbamylation reaction. Both C3 and C5 showed two anodal-migrating forms in two dimensional antigen-antibody crossed electrophoresis in some sera treated with low concentrations of cyanate. Measurements of circular dichroism of highly purified carbamylated C3 showed no detectable changes in structure even though most of the functional activity was destroyed. Purified, inactive C3 that was carbamylated with 14C-labeled cyanate was capable of binding to EAC142, but the resulting EAC1423 was weakly positive for immune adherence and negative for agglutination with anti-C3 antiserum. Unlabeled, cell-bound C3b on EAC142 was not susceptible to cyanate action as shown by no loss in immune adherence and positive agglutination with anti-C3 antiserum. The C3b inactivator was more susceptible to cyanate than C3 in a short time period, whereas both were inactivated after 8 hr. Since cyanate is currently being evaluated as a treatment for sickle-cell disease, the inactivation of C3 by the drug is an important consideration for such patients who are already deficient in C3 dependent heat-labile opsonins that aid in host defense.

Anemia, Sickle Cell

The cyanase operon and cyanate metabolism.

Cyanase is an inducible enzyme in E. coli that catalyzes bicarbonate-dependent decomposition of cyanate. It is encoded as part of an operon we have named the cyn operon, which includes three genes in the following order: cynT (cyanate permease), cynS (cyanase), and cynX (protein of unknown function). The direction of transcription is opposite to that of the lac operon, and the 3'-end of the cyn operon overlaps the 3'-end of the lac operon by 98 nucleotides. The gene cynR (regulatory protein) is located upstream from the cyn operon, and its transcription is opposite that of the cyn operon. The genes of the cyn operon and the cynR gene have been cloned, sequenced and over-expressed. Cyanate at concentrations of about 1 mM is toxic to strains of E. coli lacking the cyanase gene, but strains in which the inducible gene for cyanase is present can grow on cyanate as the sole source of nitrogen at concentrations as high as 20 mM. The presence of cyanase itself is not sufficient to overcome cyanate toxicity--the permease must also be present. Strains lacking the cyanase gene, but having a functional permease gene, are extremely sensitive to cyanate. Uptake of cyanate involves the product of the permease gene in an energy-dependent process. It appears that the cyn operon has evolved to function in detoxification/decomposition of cyanate arising from both intra- and extracellular sources.

Aminohydrolases

Cyanate and temperature regulation in anephric rabbits.

Knochel and Seldin proposed that the lowered body temperature observed during uremia was caused by an elevation in the circulating levels of cyanate. To test this hypothesis, normal rabbits were infused with varying concentrations of sodium cyanate. Infusion of pharmacological doses of cyanate (plasma concentration rose to 1,080 +/- 70 microM, n = 5) resulted in reductions in body temperature similar to that found during uremia; however, when normal rabbits were nephrectomized the plasma cyanate concentration only rose from 3.7 +/- 1.6 to 18 +/- 1.8 microM (n = 8) by 1-day postnephrectomy (body temperature fell 0.33 +/- 0.1 degrees C, n = 6). Plasma cyanate concentration did not rise further on days 2 and 3 postnephrectomy, despite a continued fall in body temperature. Infusion of cyanate in control rabbits to plasma concentrations attained 1-3 days postnephrectomy did not result in a fall in body temperature. Based on the failure of pathophysiological concentrations of cyanate to cause a reduction in the body temperature of normal rabbits, we conclude that cyanate is not responsible for the lowered body temperature associated with the acute response to uremia.

Animals

pH-related effects of sodium cyanate on macromolecular synthesis and tumor cell division.

In past work, the selective effects of sodium cyanate on macromolecular synthesis in tumors have not been seen with cells in culture. We have explored the possibility that differences in the response of tumor cells to cyanate in vivo and in vitro may be related to the pH in the environment to which cells are exposed. When rat hepatoma (HTC) cells were incubated with sodium cyanate (0.25 mg/ml), there was a greater inhibition of precursor incorporation into RNA and DNA with a decrease in pH from 7.4 to 6.6. At pH 7.4 there was no significant effect of sodium cyanate on the incorporation of [3H]leucine into protein of rat hepatocytes and HTC cells, but at pH 6.6 there were decreases of 50% or greater. The time of response and the reversibility of the inhibitory effects of sodium cyanate were not those anticipated from carbamoylation of amino groups but were compatible with modification of sulfhydryl groups. The uptake of [14C]sodium cyanate in HTC cells and human colon cancer (HT29) cells was greater at pH 6.6 than at 7.4. Over a period of 4 days there was a slower rate of cell division by HTC and HT29 at pH 6.6 than at pH 7.4. The addition of sodium cyanate caused a further reduction in the rate of proliferation, and at a concentration of 0.25 mg sodium cyanate/ml there were decreases in cell numbers. The data suggested that a lower interstitial pH in tumors than normal tissues would result in greater sensitivity to inhibitory effects of sodium cyanate on macromolecular synthesis.

Animals

Ibuprofen, a putative anti-cataract drug, protects the lens against cyanate and galactose.

Cataract, the major cause of blindness world-wide, may be caused partly by modification of lens proteins by carbamylation and non-enzymic glycosylation (glycation) in some patients. Aspirin has been found to protect against these modifications and to prevent cyanate-induced opacification occurring in whole rate lenses. Ibuprofen is an aspirin-like anti-inflammatory drug which appeared as a protective factor against cataract in an Oxford case-control study. The binding of cyanate, galactose and glucose 6-phosphate to lens proteins, and the effect of ibuprofen on this reaction was investigated, as was cyanate-induced opacification in whole rat lenses. Labelled metabolite was incubated with bovine lens homogenate in the presence and absence of ibuprofen, and the incorporation of label into the lens homogenate was followed. Simultaneous and preincubation experiments were performed. Intact rat lenses were incubated in culture medium with and without cyanate and ibuprofen. The phase separation temperature was noted as the temperature at which opacity first appeared on cooling. Cyanate, galactose and glucose 6-phosphate bind progressively to lens proteins. Simultaneous incubation with ibuprofen reduces cyanate and galactose binding but not glucose 6-phosphate. Ibuprofen protects against opacities due to cyanate-induced phase separation. Ibuprofen has protected against cataract in the models of cataractogenesis in this study. It appears to have a different mechanism of action from that of aspirin. These studies provide some support for the idea, based on epidemiological findings, that ibuprofen might be a useful anti-cataract drug.

Animals

Antisickling agents: effects of carbamyl phosphate or cyanate on survival, erythrocytes, and leucocytes in the mouse.

Equal mole doses of the anions of disodium carbamyl phosphate (carbamyl P) or sodium cyanate, antisickling agents, have been compared in C57B1 mice. Using 15 mice per group, two groups were given the equivalent ip dose of carbamyl P or cyanate anion (7 mmoles/kg/day) in a divided dose, in the morning and six hours later, for 17--18 days. The control group received sodium chloride (13.8 mmoles of Na+ or Cl-/kg/day). Surviving mice per group were sodium chloride, 15/15; disodium carbamyl P, 14/15; and sodium cyanate, 0/15, all mice died by day 2. Surviving mice appeared normal throughout the study, and no abnormalities were seen at necropsy. The hematologic measurements were the same for sodium chloride or disodium carbamyl P, including hemoglobin, packed cell volume, erythrocyte counts, leucocyte counts, and differential counts. The mean hemoglobin carbamylation was 1.24 (+/- 0.06 SE) moles of valine hydantoin/mole of hemoglobin tetramer in mice receiving disodium carbamyl P for 18 days, sufficient for antisickling activity. The enzymatic degradation of carbamyl P to NH3, CO2, and Pi was measured in serial blood samples in additional C57B1 and DBA/2J mice following ip injections of carbamyl P or cyanate. Both NH3 and Pi increased immediately after giving carbamyl P, but no increase occurred after cyanate administration. Thus enzymatic degradation of carbamyl P occurs in vivo and appears to be an important detoxification mechanism. When equivalent mole doses of anion are administered, disodium carbamyl P is less toxic than sodium cyanate in mice.

Ammonia

Effects of sodium cyanate in mice bearing B16 melanoma.

Sodium cyanate injected IP at a dose level of 200 or 250 mg/kg caused a 90% or greater inhibition of the incorporation of [3H]thymidine into DNA of B16 melanoma transplanted SC in mice. Despite the inhibitory effect of sodium cyanate on precursor incorporation into DNA, no significant effect on host survival was observed when sodium cyanate was administered as a single agent in the diet, in drinking water, or by IP injection to mice that had received IP transplants of B16 melanoma. The action of melphalan and 1-(2-chloroethyl)-3-cyclohexyl-1-nitrosourea (CCNU) in prolonging the survival time of melanoma-bearing mice was not enhanced by combined treatment with sodium cyanate. However, combined injections of sodium cyanate and 1,3-bis(2-chloroethyl)-1-nitrosourea (BCNU) increased the survival of tumor-bearing mice significantly more than injections of BCNU alone at a lower dose than the maximum tolerated one. These data and other studies suggest that B16 melanoma may be less responsive to the action of sodium cyanate than are murine leukemic cells or rat hepatomas.

Animals

Cyanate specifically inhibits arginine biosynthesis in Escherichia coli K12: a case of by-product inhibition?

Growth of Escherichia coli K12 cultivated in minimal medium was strongly inhibited by 2 mM-cyanate. This inhibition could be specifically reversed by arginine. Citrulline (but not ornithine, N-alpha-acetylornithine or N-acetylglutamate) could also restore a normal growth rate. Since growth inhibition by cyanate was followed by an accumulation of ornithine within the cell it was concluded that cyanate specifically inhibits the formation of citrulline from ornithine. The effect of cyanate on the growth of defined strains was consistent with a specific inhibition of carbamoylphosphate synthase. A kinetic study of carbamoylphosphate synthase and ornithine carbamoyltransferase in vitro supported this conclusion. Since carbamoylphosphate is probably the only source of endogenous cyanate it is postulated that carbamoylphosphate synthase activity can be regulated by cyanate resulting from the dissociation of carbamoylphosphate in metabolic circumstances leading to its overproduction.

Arginine

Cyanase-mediated utilization of cyanate in Pseudomonas fluorescens NCIB 11764.

Pseudomonas fluorescens NCIB 11764 was capable of utilizing cyanate (OCN-) as a sole nitrogen source for growth. Crude cell extracts from cells grown on cyanate, but not on ammonium sulfate, were induced for an enzyme catalyzing cyanate conversion to ammonia. Enzymatic activity was shown to be bicarbonate dependent and specific for cyanate as a substrate, suggesting that cyanate utilization in this organism is facilitated by an enzyme resembling cyanase (cyanate amidohydrolase; EC 3.5.5.3), as described previously in Escherichia coli and Flavobacterium sp.

Aminohydrolases

Identification and characterization of a cyanate permease in Escherichia coli K-12.

Escherichia coli contains an inducible enzyme, cyanase, that catalyzes the decomposition of cyanate into ammonia and bicarbonate. The gene encoding cyanase, cynS, was cloned and found to be on a DNA fragment that contained the lac operon. Characterization of a plasmid encoding cyanase indicated that a 26-kilodalton (kDa) protein of unknown function was also induced by cyanate (Y-C. Sung, D. Parsell, P.M. Anderson, and J.A. Fuchs, J. Bacteriol. 169:2639-2642, 1987). The gene encoding the 26-kDa protein was located between cynS and its promoter, indicating the existence of a cyn operon. The 26-kDa protein was identified as a cyanate permease that transports exogenous cyanate by active transport. E. coli was shown to contain a cyanate transport system that is energy dependent and saturable by cyanate.

Aminohydrolases

Studies on metabolic pathways of cyanate in rats.

Metabolic pathways of cyanate in rats were studied by means of measurements of cyanate, carbamyl phosphate and S-carbamyl group. Approximately 30-50% of cyanate administered to rats (0.5 mmol/kg body weight) was found in buffered gastric contents, and was also detected as ammonia liberated by acid hydrolysis. However, the gastric excretion of cyanate was a temporary phenomenon just after cyanate administration. Biliary and urinary excretion of cyanate and acid-soluble S-carbamyl group are minor metabolic pathways.

Animals

Interrelationship between sodium cyanate and pH in the regulation of tumor cell division.

Previous studies have suggested that the selective inhibitory effects of sodium cyanate on tumor metabolism in vivo may be related to a lower interstitial pH in tumors. In the present work, the influence of extracellular pH on the actions of sodium cyanate was studied with one rat hepatoma cell line (HTC) and two human colon tumor cell lines (HT29 and LS174T) and with rat hepatocytes to determine if the effects are accompanied by changes in intracellular pH. With some tumor cells, an inhibition of cell proliferation was observed when the cells were exposed to an acidic medium (pH 6.6). However, the LS174T line of human tumor cells divided at pH 6.6 essentially as fast as at pH 7.4. In the concentration range of 0.02-0.1 mg/ml, a greater inhibitory effect of cyanate on cell proliferation was observed at the lower pH. Intracellular pH was found to be influenced by the sodium ion concentration of the medium to a similar degree in the three tumor lines that were examined. The intracellular pH was found to be significantly affected by cyanate in rat hepatocytes and in two of the tumor cell lines (HT29 and LS174T). The data suggested that not only does extracellular pH influence the inhibitory effect of cyanate on tumor cell proliferation but also that cyanate can affect the regulation of intracellular pH in normal and neoplastic cells.

Animals

Selective inhibition with sodium cyanate of protein synthesis in colon cancer cells.

Sodium cyanate, which in its tautomeric acidic form, isocyanic acid, acts as a protein carbamylating reagent, has been previously shown to inhibit selectively both DNA and protein synthesis in a variety of solid tumors. We have now compared its effects on protein synthesis in normal colonic epithelium and in colon tumors induced by the administration of 1,2-dimethylhydrazine to rats. The incorporation of 3H-amino acids into cytoplasmic and nuclear protein fractions was suppressed to a much greater extent in the tumor tissue than in colonic epithelial tissue surrounding the tumors of cyanate-treated rats. Despite its effect on tumor protein synthesis in whole animals, cyanate had little or no effect on cultured cells (HT-29) derived from a human adenocarcinoma of the colon, nor on other malignant cell lines such as HeLa S3 cells, chick fibroblasts transformed by the Rous sarcoma virus, mouse Ehrlich ascites tumor cells, or rat Novikoff hepatoma cells. However, the administration of cyanate i.p. does suppress amino acid incorporation by Novikoff hepatoma cells in the peritoneal cavity of rats. The implication that the mechanism of cyanate inhibition of protein synthesis in tumors may require its in vivo metabolism or utilization to produce a postsynthetic modification of circulatory factors is discussed.

Animals

Autologous survival of cyanate-treated cryopreserved sickle erythrocytes.

The effects of carbamylation and frozen storage on the autologous 51Cr survival and metabolic features of sickle erythrocytes (S-RBCs) were determined. Red cells from four patients with sickle hemoglobinopathies were treated with 50 mM sodium cyanate for 2 hr (37 degrees C), glycerolized and frozen (-80 degrees C) for 62-153 days. The mean in vitro loss of S-RBCs from the combination of cyanate treatment and cryopreservation was 23.6% ( +/- 3.5 SD). The 2,3-diphosphoglycerate content of the thawed cells did not change significantly. However, ATP levels decreased to about 50% of the corresponding values in fresh, untreated S-RBCs. Despite this decrease in ATP, the mean intravascular survival of the frozen cyanated cells nearly doubled. At the high concentration of cyanate used, the oxygen affinity of S-RBCs increased markedly: Their mean P50 was 13.1 mm Hg ( +/- 1.9SD). The gelation of HbS at zero pO2 was also markedly inhibited in the one sample of cyanate-treated S-RBCs examined. Clinical studies to determine the efficacy of autologous transfusions with extensively carbamylated, cryopreserved S-RBCs should be considered.

2,3-Diphosphoglycerate