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Effects of trisodium nitrilotriacetate monohydrate, nitrilotriacetic acid and ammonium chloride on urinary bladder carcinogenesis in rats pretreated with N-bis(2-hydroxypropyl) nitrosamine.

The effects of trisodium nitrilotriacetate monohydrate (Na3 NTA.H2O) nitrilotriacetic acid (H3NTA) and ammonium chloride (NH4Cl) on two-stage urinary bladder carcinogenesis were examined. Carcinogenesis was initiated by administration of 0.2% N-bis (2-hydroxypropyl)-nitrosamine (DHPN) to male Wistar rats in the drinking water for 2 weeks, and then the animals were treated with basal diet containing Na3NTA.H2O, Na3NTA.H2O plus NH4Cl, H3NTA, H3NTA plus NH4Cl, or without these chemicals for 28 weeks. Na3NTA.H2O increased significantly the resultant incidence of neoplastic and preneoplastic lesions of the urinary bladder. Moreover, treatment with Na3NTA.H2O, without the initiation, itself induced papillary or nodular (PN)-hyperplasia. H3NTA produced only a slight increase in the incidence of preneoplastic urinary bladder lesions (PN-hyperplasia) in rats initiated by DHPN, and this was not statistically significant. Elevation of both pH and sodium ion concentration in the urine were correlated with promotion of tumor development. These data showed that Na3NTA.H2O was more effective than H3NTA with regard to promoting potential, and that changes in both urinary pH and concentration of sodium played important roles in enhancement of urinary bladder tumorigenesis by these chemicals.

Acetates↗

Effect of glutamine deprivation and glutamate or ammonium chloride addition on growth rate, metabolism and differentiation of human colon cancer cell-line HT29.

Effect of glutamine deprivation (GLN- medium) and of its replacement by 4mM ammonium chloride (GLN-/NH4+ medium) or by 4mM glutamate (GLN-/Gt+ medium) was studied on growth rate, morphology and metabolism of HT29 human colon cancer cells. Growth rates were modified as follows: at the first passage, growth of GLN- cells was strongly decreased (doubling time: 192 hr vs 32 hr in control cells grown in GLN+ medium); GLN-/NH4+ cells and GLN-/Gt+ cells were found to have doubling times of 72 and 70 hr, respectively. At the 8th passage, doubling times were decreased in all cases, being: 144 hr for GLN- cells, 60 hr for GLN-/NH4+ cells and 24 hr for GLN-/Gt+ cells, which indicates a capacity of adaptation of the cell-line to new culture conditions. GLN- cells and GLN-/NH4+ cells were found to exhibit an enterocytic type of differentiation (polarization of the cell layer with apical and cystic brush border and tight junctions); GLN-/Gt+ cells remained undifferentiated and comparable to control GLN+ cells. Glycogen level varied according to the phases of the culture, with a trend to lower level in glutamine deprived cells; glucose uptake and lactate production varied as a function of the medium composition and of the phases of the culture. At the 8th passage, all the glutamine deprived cells produced less lactate than control; GLN-/Gt+ cells were found to utilize less glucose than others.

Ammonium Chloride↗

Release of sphingomyelin phosphodiesterase (acid sphingomyelinase) by ammonium chloride from CL 1D mouse L-cells and human fibroblasts. Partial purification and characterization of the exported enzymes.

In cultured human fibroblasts and mouse L-cells the lysosomotropic agent, ammonium chloride, caused release of acid sphingomyelinase into the culture medium. The water-soluble enzymes were partially purified by sequential chromatography on ConA-Sepharose, octyl-Sepharose and Sepharose CL-4B. Mouse sphingomyelinase was purified up to 64-fold and human sphingomyelinase 134-fold from the culture medium. Specific activities were 925 nmol/(h X mg) and 1 434 nmol/(h X mg), respectively. The final enzyme preparations obtained were free of other lysosomal enzyme activities tested and had very similar properties: optimal activity at pH 4.8 (mouse enzyme) and pH 4.4 (human enzyme), Km values of 6.2 X 10(-5)M and 2.4 X 10(-5)M, respectively, and an apparent molecular mass of 68 kDa. In isoelectric focusing the enzymes peaked at pH 4.78 (mouse enzyme) and pH 4.75 (human enzyme).

Ammonium Chloride↗

Occupational allergic contact dermatitis from 2,3-epoxypropyl trimethyl ammonium chloride (EPTMAC) and Kathon LX in a starch modification factory.

2,3-epoxypropyl trimethyl ammonium chloride (EPTMAC) is used in the production of cationic starch (CS) for the paper industry. It has been shown to be a sensitizer in guinea pigs, but cases of human sensitization are few. 4 workers were previously sensitized to the substance in a Finnish plant. This report describes 3 process men from another plant examined because of recurring dermatitis. 18 workers were involved in production, and had free access to all work sites. 3 process men, whose work involved drying the CS, had dermatitis, although they had only occasional contact with the cationizing chemical. 2 were already verified to be allergic to EPTMAC and had had variable dermatitis for 8-12 years. One had had dermatitis on his face for 1 year. Patch testing with a dilution series (1%, 0.5%, 0.2%, 0.1% pet.) confirmed their allergy to the cationizing chemical containing EPTMAC, but tests with CS were negative. In addition, 2 had contact allergy to Cl+ Me-isothiazolinone from contact with Kathon LX used as a slimicide in the process. In long-standing (years) recurrent dermatitis, re-examination of patients with verified exposure history and skin test is necessary. In line with our previous study, sampling the process materials, maintenance work and contamination of work sites and gloves caused sensitization. The results also confirm that EPTMAC is a strong human contact sensitizer. 0.2%-0.5% pure EPTMAC in pet. seems to be the optimal patch test concentration.

Adult↗

Ammonium chloride and alpha-ketoglutaric acid increase glutamine availability in the early phase of induced acute metabolic acidosis.

BACKGROUND: Glutamine deficiency in critical illness is associated with increased morbidity and mortality. We hypothesized that ammonium chloride (NH(4)Cl) and alpha-ketoglutaric acid (alpha-KGA) infusions could increase glutamine availability possibly through de novo synthesis in the liver. METHODS: Anesthetized post-absorptive pigs were allocated to four groups (n = 8). The study groups received either a 4-h intravenous infusion of alpha-KGA, 11.4 micromol/kg/min and NH(4) (+), 9.7 micromol/kg/min (group 1), or alpha-KGA, 2.85 micromol/kg/min and NH(4) (+), 46.3 micromol/kg/min (group 2), or alpha-KGA, 11.4 micromol/kg/min (group 3), or isotonic saline (control group). Plasma concentrations of glutamine and glutamine exchange in liver, intestine and skeletal muscle were investigated. RESULTS: Plasma glutamine concentrations in group 1 (58% increase) were greater (P < 0.05) compared with the control group (14% decrease) and group 3 (13% decrease), and in group 2 (91% increase) compared with the control group, group 3 (P < 0.0001) and group 1 (P < 0.05). Intestinal glutamine extractions in group 2 were significantly greater (P < 0.01) compared with all other groups. Neither the liver nor the hind leg increased its release of glutamine. Arterial pH decreased (all P < 0.001) to 7.39 +/- 0.01 in the control group, 7.30 +/- 0.01 in group 1, 7.19 +/- 0.01 in group 2 and 7.35 +/- 0.01 in group 3. CONCLUSION: Infusions of alpha-KGA and NH(4)Cl, to a pH range of 7.20-7.30, did not enhance hind leg or hepatic glutamine release. The increased plasma concentrations of glutamine were effects of NH(4)Cl, not alpha-KGA, and caused either by de novo synthesis or decreased degradation.

Acidosis↗

Ammonium chloride affects receptor number and lateral mobility of the vasopressin V2-type receptor in the plasma membrane of LLC-PK1 renal epithelial cells: role of the cytoskeleton.

The acidotropic agent ammonium chloride (NH4Cl) not only affects receptor metabolism by inhibiting lysosomal acidification, but can also affect the targeting of proteins to specific membranes in polarized cells, possibly through effects mediated by the cytoskeleton. The present study examines the effects of NH4Cl and perturbers of cytoskeleton structure on vasopressin V2 receptor expression in LLC-PK1 renal epithelial cells. Surprisingly, long-term pretreatment of cells with NH4Cl or short-term treatment with the actin perturber cytochalasin B resulted in an up to 70% increase in specific Arg-8-vasopressin binding compared to control cells, which was independent of the presence of NH4Cl in the binding test, and apparently the result of increased V2 receptor expression. Perturbers of microtubules such as colchicine and vinblastine had no such effect. A rhodamine-labeled analog of vasopressin was used to fluorescently label the V2 receptor of LLC-PK1 cells, and microscopic measurements of membrane-localized fluorescence confirmed the increased V2 receptor expression in the basal plasma membrane subsequent to NH4Cl pretreatment. Lateral mobility of the V2 receptor was measured in living cells using the technique of microphotolysis (photobleaching). The fraction of mobile receptors was 0.2 in cells pretreated with NH4Cl, markedly reduced compared to that of 0.9 in untreated cells. The apparent lateral diffusion coefficient D was about 3 x 10(-10) cm2/s in both pretreated and untreated cells. Results for fluorescence labeling of the actin cytoskeleton indicate that NH4Cl pretreatment of LLC-PK1 cells results in perturbation of microfilament structure. All results imply that the cytoskeleton plays a central role in V2 receptor expression and lateral mobility.

Actins↗

Ammonium chloride, an inhibitor of phagosome-lysosome fusion in macrophages, concurrently induces phagosome-endosome fusion, and opens a novel pathway: studies of a pathogenic mycobacterium and a nonpathogenic yeast.

The weak base ammonium chloride has been previously reported to inhibit lysosomal movements and phagosome-lysosome (Ph-L) fusion in cultured mouse macrophages (M phi), thus reducing delivery, to an intraphagosomal infection, of endocytosed solutes that have concentrated in secondary lysosomes. We have now addressed the question, whether NH4Cl might affect any direct interaction (if it exists) between such infection phagosomes and earlier, nonlysosomal compartments of the endocytic pathway, i.e., solute-containing endosomes. The phagosomes studied were formed after ingestion of the mouse pathogen Mycobacterium microti and the nonpathogenic yeast Saccharomyces cerevisiae; and the endosomes were formed after nonreceptor-mediated endocytosis of electronopaque and fluorescent soluble markers. By electron microscopy, survey of the cell profiles of M phi that had been treated with 10 mM NH4Cl so that Ph-L fusion was prevented, and that displayed many ferritin-labeled endosomes, revealed numerous examples of the fusion of electronlucent endosomes, revealed numerous examples of the fusion of electronlucent vesicles with phagosomes, whether containing M. microti bacilli or S. cerevisiae yeasts. Fusion was recognized by transfer of label and by morphological evidence of fusion in progress. The fusing vesicles were classed as endosomes, not NH4Cl-lysosomes, by their appearance and provenance, and because lysosome participation was excluded by the concurrent, NH4Cl-caused block of Ph-L fusion and associated lysosomal stasis. No evidence of such phagosome-endosome (Ph-E) fusion was observed in profiles from M phi treated with chloroquine, nor in those from normal, untreated M phi. NH4Cl-treated living M phi that had ingested yeasts at 37 degrees C, followed by endocytosis of lucifer yellow at 17 degrees C (to accumulate labeled endosomes and postpone label passing to lysosomes), were then restored to 37 degrees C. Fluorescence microscopy showed that as many as half of the yeast phagosomes (previously unlabeled) rapidly became colored. We inferred that this transfer was from endosomes (by Ph-E fusion) because Ph-L passage was blocked (by the NH4Cl). We conclude that NH4Cl induces Ph-E fusion at the same time as it suppressed Ph-L fusion. We discuss the mechanisms of these concurrent effects and suggest that they are independent; and we consider the implications of NH4Cl opening a direct route for endocytosed molecules to reach an intraphagosomal infection without involving lysosomes.

Ammonium Chloride↗

Effects of ammonium chloride and chloroquine on endocytic uptake of liposomes by Kupffer cells in vitro.

In this study we investigated the interaction of liposomes with rat Kupffer cells in maintenance culture by using the lysosomotropic amines ammonium chloride and chloroquine as inhibitors of intralysosomal degradation. The liposomes (large unilamellar vesicles) contained either the metabolically inert 3H-labeled inulin or the degradable 125I-labeled bovine serum albumin. In control incubations, the cells released nearly all accumulated protein label and about 30% of the lipid label when they were incubated in the absence of liposomes, after an initial uptake period of 1 h in the presence of liposomes. This release of label was, for the greater part, suppressed in the presence of ammonia or chloroquine. When the inhibitors were present during the initial uptake period, a several-fold increase in the amount of protein label accumulating in the cells and a smaller, but still marked, increase in lipid label accumulation were observed. The effect of ammonia when present during uptake was readily reversible in contrast to that of chloroquine. Experiments with encapsulated inulin revealed that both lysosomotropic agents also affected the uptake process per se to some extent, probably as a result of impaired membrane/receptor recycling. Labeled liposomes adsorbed to the cells at 4 degrees C were effectively internalized and processed intracellulary after shifting the temperature to 37 degrees C, even when a 500-fold excess of unlabeled liposomes was present in the medium during the 37 degrees C incubation. The observed effects of ammonia and chloroquine indicate that, after uptake, the liposomes are degraded within lysosomes, thus confirming our previous conclusion that endocytosis is the major uptake mechanism at 37 degrees C. From the temperature-change experiments we conclude that, at 4 degrees C, the liposomes are bound with high affinity to the cells, remaining firmly attached to the cell-surface structures which initiate their internalization when the temperature is raised to 37 degrees C.

Albumins↗

Inhibition of post-translational modification and surface expression of a melanoma-associated chondroitin sulfate proteoglycan by diethylcarbamazine or ammonium chloride.

Cultured human melanoma M21 cells were treated with diethylcarbamazine (DEC), an inhibitor of proteoglycan biosynthesis in rat chondrosarcoma cells, to examine the assembly and transport of a chondroitin sulfate proteoglycan to the plasma membrane. Pretreatment of melanoma cells at 37 degrees C for 15 min with increasing doses of DEC followed by a 60-min pulse with [35S]sulfate in the presence of DEC resulted in a dose-related inhibition of incorporation of [35S]sulfate into macromolecules. In cells incubated for 75 min with both 1 mM beta-D-xyloside and 15 mM DEC, synthesis and secretion of beta-D-xyloside-bound 35S-glycosaminoglycans were inhibited by more than 80% as compared to cells treated with beta-D-xyloside alone; this inhibition was reversible. As assessed by [3H]serine incorporation into protein, overall protein synthesis was not substantially inhibited by DEC treatment. Detergent lysates from [35S]methionine-labeled melanoma cells were incubated with a monoclonal antibody (9.2.27) that specifically recognizes the peptide core of the melanoma proteoglycan. As assessed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis of the immunoprecipitate, a 240,000 Mr endoglycosidase H (Endo-H)-sensitive intermediate was the only form of the proteoglycan present inside the cells when the cultures were treated for 60-120 min with 10-15 mM DEC. When the melanoma cells were incubated for 10 min with 15 mM DEC and 100 mu Ci/ml of [35S]methionine, washed, and then chased for 15 min to 4 h in radioactive-free medium, the 240,000 Mr Endo-H-sensitive intermediate was slowly converted to a 250,000 Endo-H-resistant intermediate but not to a mature proteoglycan molecule that possessed chondroitin sulfate glycosaminoglycans. SDS-PAGE analysis of cell surface immunoprecipitates revealed that only a small amount of the 250,000 Mr intermediate was transported to the plasma membrane within 5 h of incubation in the presence of DEC. Proteoglycan synthesis was also inhibited when the melanoma cells were incubated for 60-120 min with ammonium chloride, but unlike DEC-treated cells the majority of the synthesized peptide core was converted to a 245,000 Mr Endo-H-resistant intermediate that was detected on the cell surface. Light and electron microscopic analysis of DEC-treated melanoma cells revealed large vacuoles and a distended Golgi and endoplasmic reticulum. Ammonium chloride-treated cells contained fewer vacuoles than DEC-treated cells but more vacuoles than normal cells.(ABSTRACT TRUNCATED AT 400 WORDS)

Ammonium Chloride↗

Effect of branched-chain amino acid on 15N incorporation into liver and skeletal muscle proteins following [15N]-ammonium chloride administration to carbon tetrachloride-intoxicated rats.

The effect of branched-chain amino acid (BCAA) on protein synthesis and nitrogen metabolism in liver and skeletal muscle was evaluated by an intraperitoneal injection of [15N]ammonium chloride (15NH4Cl) to carbon tetrachloride (CCl4)-intoxicated rats. The 15NH4Cl was bolusly injected at a dose of 6 mg/100 g body weight one hour after an amino acid solution containing leucine and valine (150 mM each, abbreviated as BCAA), phenylalanine and alanine (150 mM each, PA), 120 mM leucine and 30 mM valine (Leu-rich) or 120 mM valine and 30 mM leucine (Val-rich) was administered intragastrially at a dose of 2.5 ml each/100 g body weight. The 15N-enrichment in the protein fraction of the liver was higher in CCl4-BCAA group than CCl4-PA group. The Leu-rich solution was found more effective in enhanced incorporation of 15N into liver and skeletal muscle proteins. The disappearance rate of [15N]urea from the plasma, which was influenced by the synthesis from 15NH3 and the excretion into urine, was much faster in the CCl4-BCAA group than CCl4-PA group. In Leu-rich group, both 15N incorporation into non-protein fraction of skeletal muscle and disappearance rate of plasma urea-15N were greater than those in Val-rich group. The results suggest that BCAA, particularly leucine, has beneficial effects on protein synthesis and ammonium detoxification in liver-injured rats.

Amino Acids, Branched-Chain↗

Ammonium chloride increases kidney cell protein content.

Augmented renal ammoniagenesis and renal hypertrophy often occur together. Ammonia may increase cell protein content by modulating protein synthesis, protein degradation, or both. We conducted experiments to examine the effect of ammonium chloride on the synthesis and degradation of protein in cultured kidney cells. Quiescent opossum kidney cells were exposed to 20 mM NH4Cl for two days. Monolayers were then analyzed for cell number, protein content, protein synthesis ([14C]valine incorporation), protein degradation ([14C]valine release) and DNA synthesis ([3H]thymidine incorporation). Cell protein content was increased by 18% in NH4Cl-treated cells (190 +/- 6 pg/cell control vs. 225 +/- 7 pg/cell NH4Cl, p < 0.001). NH4Cl suppressed protein degradation (1.36 +/- 0.02%/h control vs. 1.12 +/- 0.04%/h NH4Cl, p < 0.001) but did not change protein synthesis, DNA synthesis, or cell number. Thus, reduced protein degradation accounts entirely for enhanced protein accumulation at 2 days in this in vitro model of kidney cell hypertrophy.

Ammonium Chloride↗