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G C Tremblay

Publications and source records attributed to G C Tremblay.

At least 37 records · Page 2Linked to original sources

Interaction between the urea cycle and the orotate pathway: studies with isolated hepatocytes.

Two enzymes catalyze the synthesis of carbamylphosphate (CP) in the liver. One is intramitochondrial and utilizes ammonia to make CP for ureagenesis; the second is cytoplasmic and utilizes glutamine to produce CP for pyrimidine biosynthesis. The extent to which the metabolic independence of the two pathways is abridged by the use of a common precursor was examined with measurements of the incorporation of [14C]NaHCO3 into orotic acid, uridine nucleotides, and urea in isolated hepatocytes. Pyrimidine synthesis was markedly stimulated by physiological concentrations of ammonia, and the stimulation was antagonized by ornithine. At intracellular concentrations of ornithine and levels of ammonia found in the portal circulation, some 90% of pyrimidine synthesis was ammonia-dependent. When the glutamine-dependent activity was released from feedback inhibition with galactosamine, the ammonia-dependent incorporation still accounted for 2/3 of pyrimidine synthesis. These results do not support the widely held view that the cytoplasmic enzyme is the sole source of CP for pyrimidine biosynthesis in the liver. They suggest instead that the bulk of the CP incorporated into hepatic pyrimidines is of mitochondrial origin. However, an experiment with intact animals failed to provide decisive evidence on this interpretation. Pyrimidine biosynthesis was sharply inhibited by the addition of uridine, but ureagenesis was unaffected. When physiological levels of ammonia were provided, the sensitivity of pyrimidine biosynthesis to uridine was lost. Although inhibition of the ammonia-dependent enzyme by pyrimidines has been observed with cell-free preparations, it was not evident in the intact cell. Thus, to the extent that the CP consumed in pyrimidine biosynthesis is of mitochondrial origin, feedback control of the orotate pathway appears to be thwarted.

Ammonia↗

Capacity of rat liver for pyrimidine synthesis and catabolism during fetal and neonatal development.

The capacity of minces of rat liver to synthesize and degrade pyrimidines during fetal and neonatal development was examined. Pyrimidine synthesis was determined by measuring the rate of incorporation of NaH14CO3 into orotic acid. Pyrimidine catabolism was estimated by measuring the generation of 14CO2 from [2-14C]uridine. The incorporation of [2-14C]uridine into RNA was determined simultaneously with measurements of uridine catabolism. The activity of beta-ureidopropionase, the enzyme which catalyzes the terminal reaction in the dihydropyrimidine catabolic pathway, was also monitored in cell-free extracts of liver throughout the perinatal period. Catabolic activity was detected at the earliest stage of gestation examined (16 days) and rose sharply during fetal development to reach adult levels at birth or shortly thereafter. A similar rise in the activity of beta-ureidopropionase was somewhat delayed when compared with the rise in overall catabolic activity; the enzyme activity at birth was about half the adult level. By way of contrast, the incorporation of NaH14CO3 into orotic acid and [2-14C]uridine into RNA were highest in 16-day fetal liver and declined sharply with fetal and neonatal development. These results demonstrate an appreciable capacity for pyrimidine catabolism in fetal liver, and also contribute to growing evidence that fetal tissues are capable of meeting their pyrimidine requirements through de novo synthesis. The contrast observed between the rate of synthesis of orotic acid and the capacity for pyrimidine degradation throughout perinatal development fits the pattern which has emerged from other studies showing the pathways for the anabolism and catabolism of pyrimidines to be regulated inversely to one another.

Aging↗

Synthesis, salvage, and catabolism of uridine nucleotides in boron-deficient squash roots.

Previous work has provided evidence that plants may require boron to maintain adequate levels of pyrimidine nucleotides, suggesting that the state of boron deficiency may actually be one of pyrimidine starvation. Since the availability of pyrimidine nucleotides is influenced by their rates of synthesis, salvage, and catabolism, we compared these activities in the terminal 3 centimeters of roots excised from boron-deficient and -sufficient squash plants (Cucurbita pepo L.). Transferring 5-day-old squash plants to a boron-deficient nutrient solution resulted in cessation of root elongation within 18 hours. However, withholding boron for up to 30 hours did not result in either impaired de novo pyrimidine biosynthesis or a change in the sensitivity of the de novo pathway to regulation by end product inhibition. Boron deprivation had no significant effect on pyrimidine salvage or catabolism. These results provide evidence that boron-deficient plants are not starved for uridine nucleotides collectively. Whether a particular pyrimidine nucleotide or derivative is limiting during boron deprivation remains to be examined.

Journal Article↗

Thermal compensation in protein and RNA synthesis during the intermolt cycle of the American lobster, Homarus americanus.

1. The in vitro rates of incorporation of precursors into protein and RNA and the concentration of RNA were measured in tissues of intermolt and premolt lobsters acclimated to 5 degrees C and 20 degrees C. Midgut gland, abdominal muscle and gill of intermolt lobsters respond to temperature acclimation by a compensatory translation of the rate-temperature (R-T) curves with respect to the rates of incorporation of 3H-leucine and 3H-uridine into the acid-insoluble fraction. Midgut gland and muscle of premolt animals exhibit either no compensation or inverse compensation; gill tissue exhibits a rotation of the R-T curve. 2. The existence of the complete de novo pathway of pyrimidine biosynthesis is demonstrated in the class Crustacea. NaH14 CO2 is incorporated into orotic acid and orotic-14 C-acid is incorporated into the acid-insoluble fraction. 3. Both the concentration of RNA and the rates of incorporation of precursors of both the salvage and de novo pyrimidine pathways are enhanced in the midgut gland of premolt lobsters, relative to intermolt tissue, under conditions of warm-acclimation.

Acclimatization↗