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S Grisolia

Publications and source records attributed to S Grisolia.

At least 55 records · Page 3Linked to original sources

Mechanism of mitochondrial carbamoyl-phosphate synthetase: synthesis and properties of active CO2, precursor of carbamoyl phosphate.

This paper demonstrates the formation of "active CO2" (CO2-P), a precursor of carbamoyl phosphate (CP), with frog liver carbamoyl-phosphate synthetase. Absence of ammonia is essential for the demonstration by pulse incubation with H14CO3- of CO2-P. Adenosine triphosphate (ATP) and acetylglutamate are required for the synthesis of CO2-P, which is highly unstable in aqueous solutions (t1/2 = 0.75 s at 24 degrees C at neutral pH). In the absence of ammonia, CO2-P attains rapidly a steady-state level, which depends on the concentration of ATP and HCO3-. The "apparent KM'S" are approximately equal to those found for the adenosine triphosphate (ATPase) activity of the enzyme. The maximum level of CO2-P is limited by the amount of enzyme, and approximates 4 mol of intermediate/mol of enzyme. The unprotonated form of ammonia seems to be the species reacting with CO2-P to produce CP. The reaction of CO2-P and NH3 is very fast (rate constant kn = 8 x 10(4) M-1 S-1) and does not consume free ATP. Therefore, the 2 mol of ATP necessary for CP synthesis binds or reacts with the enzyme and/or CO2 prior to reaction with NH3. The reaction of CO2-P with NH3 also takes place in acetone under conditions at which the enzyme is not active, suggesting little or no assistance from enzyme catalysis or that a part of the catalytic site is "frozen" by the solvent in the active conformation. In the light of these and other findings, a new scheme is proposed for the mechanism of frog liver carbamoyl-phosphate synthetase and some considerations are made on the chemical nature of the intermediate and on the possible evolutionary significance of the reaction of CO2-P with NH3 in acetone.

Acetone↗

Evidence pointing to the main role of lysosomes in mitochondrial proteolysis at neutral pH.

Recombination experiments using radioactive mitochondria and mitoplasts, and nonradioactive lysosomes or digitonin-soluble fraction of mitochondria, show equal rates of proteolysis and of inactivation of carbamyl phosphate synthetase; the amount of lysosomal protein was equal in both cases on the basis of N-acetyl-beta-glucosaminidase activity. Therefore, lysosomes seem to be responsible for all the proteolytic activity exhibited by the digitonin soluble fraction of mitochondrial preparations. Since this fraction contains ca. 90% of the proteolytic activity present in mitochondrial preparations, most of the proteolysis can be attributed to lysosomal contamination. These findings and stability characteristics "in vitro" and "in vivo" of some matrix enzymes are presented and discussed in relation to protein turnover.

Acetylglucosaminidase↗

Increased susceptibility of carbamylated glutamate dehydrogenase to proteolysis.

Glutamate dehydrogenase is very susceptible to carbamylation which results in loss of activity. The effect of a number of proteolytic enzymes (pronase, trypsin and chymotrypsin) on native and carbamylated glutamate dehydrogenase was tested. In all cases, the carbamylated enzyme was at least twice as susceptible to proteolysis as the native enzyme. Antibodies were prepared against glutamate dehydrogenase and carbamylated glutamate dehydrogenase; the carbamylated enzyme was antigenically indistinguishable from the native enzyme. Preliminary experiments indicate that the carbamylated glutamate dehydrogenase is taken up by ascites tumor cells while glutamate dehydrogenase is not. It seems possible that the effects described can be extrapolated to degradation by lysosomes and to other covalently modified enzymes.

Acylation↗

Acetyl glutamate--a model of signals for intracellular proteolysis.

The proteolysis at neutral pH of mitochondria from liver and brain is more marked in isolated preparations than "in vivo" indicating activation of proteases or inactivation of repressors during isolation. Acetyl glutamate (AG), found in liver mitochondria of ureotelic animals, plays a crucial role as activator of carbamylphosphate synthetase. Since AG levels change under a number of conditions, we checked for an AG deacylase in mitochondria, for otherwise AG must be exported and destroyed by cytosol deacylases. We noted on incubation of mitochondrial extracts with AG an increase in trichloracetic acid-soluble ninhydrin-reacting material but not in acetate liberation, indicating activation of proteases. This was checked with 14C-labelled mitochondria. Under certain conditions AG and other acyl aminoacids stimulate approximately 5 to 20% the proteolysis with rat live and with brain mitochondria.

Animals↗

Protection against toxic effects of formaldehyde in vitro, and of methanol or formaldehyde in vivo, by subsequent administration of SH reagents.

Rapid and progressive inactivation in vitro of both alcohol dehydrogenase and aldehyde dehydrogenase by low concentrations of acetaldehyde or formaldehyde is illustrated. This inactivation can be prevented or reversed by glutathione or other SH reagents. Those effects led to investigations in vivo. Rats and mice were injected with concentrations that would result in death in approximately 10 h (methanol) and approximately 4 h (formaldehyde). When 2,3-dimercaptopropanol (BAL), cysteine, or mercaptoethanol was injected (10 min to 3 h) after administration of methanol or formaldehyde, approximately 70% of the animals survived indefinitely; the remaining 30% showed substantial increase in survival time. The findings indicate the possibility of using reagents such as BAL for human therapy and suggest that the toxicity of methanol and formaldehyde is due in part to effects other than acidosis.

Alcohol Oxidoreductases↗

Influence of size, protein concentration, protein synthesis inhibitors,and carbon on clearance of enzymes and proteins from blood.

In order to (1) clarify the mechanism(s) for clearance and maintenance of protein levels from and in extracellular fluids, and (2) explore the possibility of interconnections between enzyme plasma levels and those of tissues, rats were injected with glutamate dehydrogenase, phosphoglycerate, encolase, carbamyl phosphate synthetase, serine dehydratase, deoxyribonuclease I, ribonuclease A, hemoglobin, and human serum albumin. A close relationship between the molecular weights of enzymes and the rates of clearance was found.

Animals↗

Correlation between in vivo and in vitro metabolic measurements. Maximum capacity for urea synthesis.

Estimations of enzyme activity in vivo have been or can often only be done at unphysiological conditions. A main biochemical goal is to correlate in vivo and in vitro measurements. A possible approach to this problem is presented based on forcing metabolic activity in vivo to the maximum for a certain metabolic sequence. Since the urea synthesis system, including maximal rates of enzyme activities, is well known, we have compared in vitro maximum rates for the individual enzymes of urea synthesis with in vivo rates as judged by urea levels in blood of rats given large amounts of protein. The excellent agreement found between the calculated maximum activities from in vitro measurements to the time needed to metabolize a protein overload is presented and comments made on its significance and on the importance of maintaining protein intake at moderate levels, for the capacity of the urea system is limited. Since the intake of large quantities of protein increases the urea level in blood and in other tissues and since high urea levels are somewhat deleterious "per se" and particularly due to equilibrium with cyanate, ingestion of excessive amounts of protein is at best expensive and possibly hazardous.

Animals↗