Amino acid concentrating ability of slowly growing autochthonous hepatomas and host livers.
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Biomedical subjects
Publications and source records attributed to V R Potter.
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Reuber (H35) hepatoma cells were grown in medium containing 10(-5)M bromodeoxyuridine (BrdU), which was incorporated into their DNA. Cell growth rate was unaffected by BrdU for the first two generations, after which it was reduced by about 50%. The effect of BrdU incorporation on the activities of several enzymes with rapid turnover rates was examined to test the hypothesis that the synthesis of such enzymes will be preferentially inhibited by BrdU. Tyrosine amino-transferase (TAT) activity decreased by 70% within two generations whereas thymidine kinase activity remained at control values. PEP carboxykinase activity was unchanged during the first generation in BrdU-containing medium but, during the second, its activity increased by at least 30%. Ornithine decarboxylase levels decreased by about 50% only after two generations in the presence of BrdU. There appeared to be no simple relationship between turnover rates and the effect of BrdU on enzyme activity. Incorporation of BrdU was found to inhibit the induction of both TAT and PEP carboxykinase by dexamethasone and to enhance the inhibition of cell growth by this steroid. These results are discussed with respect to possible mechanisms of gene expression and development in both normal and neoplastic cells.
Liver cells were obtained from adult rats by a collagenase perfusion technique and cultured as monolayers in serum-free media. Epinephrine and isoproterenol both induced large increases in intracellular adenosine 3':5'-monophosphate (cAMP) within 1-2 min whereas epinephrine (but not isoproterenol) induced 2- to 3-fold increases in the rate of alpha-aminoisobutyric acid transport within 2-4 hr after a 1 hr lag. Propranolol abolished the increase in cAMP elicited by epinephrine and isoproterenol, but did not block the induction of alpha-aminoisobutyric acid transport by epinephrine. In contrast, dihydroergotamine abolished and phentolamine diminished the induction of alpha-aminoisobutyric acid transport by epinephrine but did not decrease the stimulation of cAMP levels by epinephrine. Epinephrine dose response curves for cAMP and alpha-aminoisobutyric acid transport were similar. Once exposed to epinephrine, cells became refractory to further stimulation of cAMP levels by epinephrine.
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Amino acid transport was studied in primary cultures of parenchymal cells isolated from adult rat liver by a collagenase perfusion technique and maintained as a monolayer in a serum-free culture medium. Amino acid transport was assayed by measuring the uptake of the nonmetabolizable amino acid, alpha-aminoisobutyric acid. Rat liver parenchymal cells transported alpha-aminoisobutyric acid by an energy-dependent Na+-requiring system which displayed Michaelis-Menten kinetics. Addition of insulin to cultured rat liver parenchymal cells resulted in an increased influx of alpha-aminoisobutyric acid which was reflected in a higher initial rate of alpha-aminoisobutyric acid transport as well as an increased accumulation of alpha-aminoisobutyric acid at later time points. Cycloheximide effectively blocked the increase while results with actinomycin D were equivocal. Insulin at concentrations as low as 50 pM was effective in stimulating alpha-aminoisobutyric acid transport while the maximal response was observed at 80 nM.
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Amino acid transport was studied in primary cultures of parenchymal cells isolated from adult rat liver by a collagenase perfusion technique and maintained as a monolayer in a serum-free culture medium. These cells carried out gluconeogenesis from three carbon precursors (alanine, pyruvate, and lactate) in response to glucagon addition. Amino acid transport was assayed by measuring the uptake of the nonmetabolizable amino acid, alpha-aminoisobutyric acid (AIB). Addition of insulin or glucagon to culture rat liver parenchymal cells resulted in an increased influx of AIB transport. The glucocorticoid, dexamethasone, when added alone to cultures did not affect AIB transport. However, prior or simultaneous addition of dexamethasone to glucagon-treated cells caused a strong potentiation of the glucagon induction of AIB transport. Kinetic analysis of the effects of insulin and glucagon demonstrated that insulin increased the Vmax for transport without changing the Km while glucagon primarily decreased the Km for AIB transport. The effect of dexamethasone was to increase the Vmax of the low Km system.
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Liver parenchymal cells were isolated from adult rats and cultured in collagen-coated plastic petri dishes in serum-free medium. Glucagon induced 4- to 5-fold increases in alpha-aminoisobutyric acid (AIB) transport within 6 hr. Dexaemthasone had no direct effect on AIB transport but greatly potentiated the induction by glucagon ("permissive effect"). Levels of 3':5'-cyclic AMP increased 30- to 100-fold within 30 min after glucagon addition to cultures that had been treated with dexamethasone, and dibutyryl cyclic AMP mimicked the glucagon induction of AIB transport. Additionally, dexamethasone exerted a "permissive" effect on induction of AIB transport by dibutyryl cyclic AMP, whereas the phosphodiesterase inhibitor 3-isobutyl-1-methylxanthine induced AIB transport only in cultures that had been treated with dexamethasone. Induction of AIB transport was not dependent upon the continued presence of glucagon, but induced AIB transport activity decayed to uninduced levels within 3-4 hr after glucagon removal. The protein syntesis inhibitors puromycin and cycloheximide inhibited both induction and decay of glucagon induced AIB transport, but had a stabilizing effect if added once induction or decay had commenced. Unlike cycloheximide, the inhibitory effect of puromycin on the glucagon induction of AIB transport was reversible.
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In the rat the deep body temperature rhythm, monitored by telemetry, can be reset in a predictable direction by a stimulant (theopylline) and by a depressant (pentobarbital). When the drugs are applied immediately before or during the early active phases of the circadian cycle, the rhythm is set back (phase delay). When applied later, past the thermal peak, theophylline, but not pentobarbital, shifts the rhythm ahead (phase advance). Theophylline and pentobarbital in addition to having a number of already established pharmacological properties are now further identified as chronobiotics: they are drugs that may be used to alter the biological time structure by rephasing a circadian rhythm.
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The objective of the present study was to define early biochemical changes occuring in livers of rats that were fed various chemical carcinogens. Rats were subjected to partial hepatectomy and subsequently given multiple injections of radioactive thymidine to prelabel DNA in their liver. Following a 4-week recovery period the rats were placed on either basal diets or diets containing either 0.05% 3'-methyl-4-dimethylaminoazobenzene (3'-MeDAB), 0.028% 2-acetylaminofluorene, or 0.05% 2-methyl-4-dimethylaminoazobenzene for various periods. After 5 weeks 3'-MeDAB had caused a dose-dependent loss of prelabeled DNA demonstrating the cytotoxicity of this carcinogen. The comparatively noncarcinogenic 2-methyl-4-dimethylaminoazobenzene caused only a small loss of prelabeled DNA. In contrast, the hepatocarcinogen 2-acetylaminofluorene did not cause a loss of prelabeled DNA, demonstrating its low cytotoxicity. Autoradiography and histology revealed that the loss of prelabeled DNA in livers of rats fed 3'-MeDAB was largely due to parenchymal cell death. Experiments designed to separate liver regenerative hyperplasia from neoplastic hyperplasia revealed the presence of both an early and a delayed elevation of thymidine incorporation into liver DNA in rats fed 0.05% 3'-MeDAB. An "early" elevation of incorporation occurred during and shortly after 3'-MeDAB feeding, and a "delayed" elevation of incorporation occurred some weeks after the dye was discontinued. Autoradiography revealed that parenchymal cells were largely responsible for the increased incorporation. Feeding of 2-methyl-4-dimethylaminoazobenzene depressed thymidine incorproation. A direct comparison of the effects of isomolar levels of 3'-MeDAB and 2-acetylaminogluorene on hepatic hyperplasia indicated that both carcinogens caused comparable increases in thymidine incorporation, which returned to control levels upon feeding of carcinogen-free diet. The differences and similarities between the responses to the three compounds are discussed and considered with regard to initiation and promotion of hepatoma formation.
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