Rate-limiting factors in urate synthesis and gluconeogenesis in avian liver
- 15 May 1978
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 172 (2) , 193-203
- https://doi.org/10.1042/bj1720193
Abstract
1. Urate synthesis and other metabolic characteristics of isolated chicken hepatocytes were studied. 2. The distinction is made between immediate precursors of the purine ring (glycine, glutamine, aspartate, formyltetrahydrofolate, bicarbonate) and ultimate precursors from which the immediate precursors are formed in the liver. 3. In hepatocytes from well-fed chickens the rate of urate synthesis was not greatly increased by the addition of amino acids or NH4Cl, but in hepatocytes from 72h-starved chickens the rate was much increased when alanine or asparagine was added as the only substrate. Other amino acids, when added alone, did not affect the rate. The exceptional effect of alanine and asparagine is due to the ready formation of the immediate precursors. 4. Conditions are described under which glutamine, serine, glycine plus formate, ribose and glucose increased the rate of urate synthesis. 5. At 1mm-NH4Cl (a concentration not much higher than that of blood plasma) the rate of urate synthesis in the presence of lactate was increased, but higher concentrations inhibited urate synthesis in the presence of lactate or alanine; with alanine even 1mm-NH4Cl was inhibitory. 6. Glucose synthesis from lactate, alanine or dihydroxyacetone was also inhibited by 1mm-NH4Cl. 7. NH4Cl inhibition of urate and glucose synthesis was paralleled by an increased rate of glutamine synthesis. Thus in the presence of NH4Cl the gluconeogenic precursors are diverted from the pathway of gluconeogenesis to that of glutamate and glutamine synthesis. This implies that the synthesis of these amino acids is the primary process in the detoxication of ammonia in the avian liver. 8. Urate synthesis, like urea synthesis, can be looked on as a cyclic process with either phosphoribosyl pyrophosphate or ribose acting as the carrier on which the purine ring is assembled. 9. The energy requirements of urate synthesis depend on whether phosphoribosyl pyrophosphate is regenerated from IMP by pyrophosphorylase or by phosphorylation and pyrophosphorylation of ribose. It is 6 or 9 pyrophosphate bonds of ATP respectively.This publication has 20 references indexed in Scilit:
- Activation of Pyruvate Dehydrogenase during Metabolism of Ammonium Ions in Hemoglobin‐Free Perfused Rat LiverEuropean Journal of Biochemistry, 1975
- Differential effects of acetate on palmitate and octanoate oxidation: Segregation of acetyl CoA poolsArchives of Biochemistry and Biophysics, 1975
- Urate synthesis in the perfused chick liverBiochemical Journal, 1974
- Relationship between Intracellular Distribution of Phosphoenolpyruvate Carboxykinase, Regulation of Gluconeogenesis, and Energy Cost of Glucose FormationEuropean Journal of Biochemistry, 1973
- Activation of pyruvate dehydrogenase in perfused rat heart by dichloroacetate (Short Communication)Biochemical Journal, 1973
- Acceleration of gluconeogenesis from lactate by lysine (Short Communication)Biochemical Journal, 1973
- Muscle and splanchnic glutamine and glutamate metabolism in postabsorptive and starved manJournal of Clinical Investigation, 1971
- HIGH-YIELD PREPARATION OF ISOLATED RAT LIVER PARENCHYMAL CELLSThe Journal of cell biology, 1969
- Gluconeogenesis in the perfused rat liverBiochemical Journal, 1966
- The metabolism of pyruvate in pigeon liverBiochemical Journal, 1940