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J Bozal

Publications and source records attributed to J Bozal.

At least 37 records · Page 2Linked to original sources

Distribution of adenosine deaminase in some rat tissues. Inhibition by ethanol and dimethyl sulfoxide.

The level of adenosine deaminase in various rat tissues has been tested. The enzyme activity of cytosolic fractions decreased in the following order: lung greater than spleen greater than small intestine greater than stomach greater than kidney greater than heart greater than liver greater than skeletal muscle greater than forebrain greater than cerebellum. The enzyme had identical patterns from tissue to tissue with respect to Km, V, and Ki values for ethanol and for dimethyl sulfoxide, with respect to electrophoretic behaviour and to inhibition by antibodies anti-rat brain adenosine deaminase.

Adenosine Deaminase↗

Factors affecting malate dehydrogenase activity in freezing-thawing processes.

Malate dehydrogenases from several sources show different behaviour when frozen-thawed in 100 mM sodium phosphate buffer, pH 7.4, containing chaotropic ions. The effects produced by the addition of various metabolites, protein concentration and buffer medium used on the loss of activity induced by the freezing-thawing process are reported. The major part of the loss of activity is caused by the formation of "wrong" aggregates of high mol. wt.

Animals↗

Purification and comparative studies of several mitochondrial aspartate aminotransferases from avian liver.

A new purification method has been developed which only exploits the chromatographic behaviour of avian liver mitochondrial aspartate aminotransferase enzymes (m-AAT), and permits a rapid isolation of the protein (4 days) in large quantities with high yield and low cost. m-AAT from turkey, chicken and quail livers have been isolated by chromatography on CM-Sepharose, Sephadex G-100 and 5' AMP-Sepharose using TEA-acetate buffer (pH 7.4), and specific activities (A.E.) of 311.6, 318.9, 320.1 I.U./mg respectively were obtained. Preparations were homogeneous as judged by various electrophoretic techniques and by size exclusion HPLC. The amino acid composition, Stokes Radius, subunit molecular weight and pI values have been determined and compared, finding no appreciable differences among them. In contrast, the absorption spectrum of the turkey enzyme differed from those of chicken and quail at both pH 7.4 and pH 5.0.

Animals↗

Enzymes of the purine metabolism in rat brain microsomes.

Rat brain microsomes, when they are suspended in moderate ionic strength medium, released enzyme activities of lactate dehydrogenase (LDH, E.C.1.1.1.27), malate dehydrogenase (MDH, E.C.1.1.1.37), adenosine deaminase (ADA, E.C.3.5.4.4), guanine deaminase (GAH, E.C.3.5.4.3), and purine nucleoside phosphorylase (PNP, E.C.2.1.2.4). The activities released decreased when the saline concentration of the medium was increased and the opposite occurred when 50 mM, pH 7.4 sodium phosphate medium was used. Rat brain microsomes that had been extracted previously by moderate ionic strength solutions still had activities of all the enzymes tested, and released these activities upon sonication or deoxycholate (DOC) treatment. The proportion of the activity released was similar for all the enzymes. DOC treatment released higher enzymic activities and a smaller amount of protein than sonication did. The proportion of activities released was similar to that found in the 105,000 g supernatant. The suspension of microsomes still retained activities of the above-mentioned enzymes after consecutive extractions with increasing concentrations of detergent solutions (DOC and Triton X-100). The amount of enzymic activities released from the microsomes by sonication or DOC treatment did not depend on the protein composition of the homogenization medium. Thus, on increasing the enzyme concentration in the homogenization medium, the activities released did not increase in parallel. The set of results obtained showed that the microsomal fraction is as useful as the cytosolic one for studying purine catabolism in rat brain. Furthermore, the conditions in which purine enzymes are attached to the microsomal fraction are probably closer to "in vivo" conditions than those in which these enzymes are found in the soluble fraction.

Animals↗

Heterogeneous localization of some purine enzymes in subcellular fractions of rat brain and cerebellum.

The activity of guanine deaminase (GAH, E.C.3.5.4.3) was lower in rat cerebellum soluble and microsomal fractions than in rat brain subfractions. Adenosine deaminase (ADA, E.C.3.5.4.4) activity was released in higher proportion than guanine deaminase, purine nucleoside phosphorylase (PNP, E.C.2.1.2.4), 5'-nucleotidase (5'N, E.C.3.1.3.5), and lactate (LDH, E.C. 1.1.1.27) and malate (MDH, E.C. 1.1.1.37) dehydrogenase in press-juices of rat brain. Furthermore, nerve ending-derived fractions (synaptosomes and synaptic vesicles) showed an enrichment of adenosine deaminase and also of 5'-nucleotidase. The action of deoxycholate over the subfractions did not increase the activity of either enzyme. The contrary occurred with the remaining enzymes studied. Thus, it is possible that one set of enzymes are located on the surface of the particulate vesicles, whereas another set are located inside these vesicles, suggesting a compartmentation of purine catabolic enzymes in different areas of the central nervous system.

5'-Nucleotidase↗

Kinetics of the 5'-nucleotidase and the adenosine deaminase in subcellular fractions of rat brain.

Suspensions of rat brain microsomes, synaptosomes, and synaptic vesicles were able to convert adenosine to inosine by means of adenosine deaminase. Isosbestic points of this transformation, at 222, 250 and 281 nm, remained unchanged with time-course. This fact suggests that adenosine deaminase (ADA, E.C. 3.5.4.4) is located on the surface of the vesicles whereas purine nucleoside phosphorylase (PNP, E.C. 2.1.2.4) is located inside the vesicles. Kinetic parameters of the particulate 5'-nucleotidase (5'N, E.C. 3.1.3.5) and adenosine deaminase were analogous to those of the cytosolic enzymes. These results suggest that soluble and particulate enzymes represent different pools of the same molecular species.

5'-Nucleotidase↗

An improved method for the preparation of rat brain microsomes.

The rat brains homogenized with different media (sucrose, ethylene glycol, dimethyl sulfoxide and urea) yielded different amounts of microsomal fractions. The dielectric constant, density and viscosity of the homogenization media did not correlate with the amount of microsomes separated by differential centrifugation. The homogenization media containing dimethyl sulfoxide were the most efficient for the isolation of rat brain microsomes. The increase in the yield was up to 4-fold when 50% (v/v) dimethyl sulfoxide was employed. Microsomes isolated in this manner were analogous to those obtained from isotonic sucrose solution, as was demonstrated by their chemical and enzymatic (5'-nucleotidase, adenosine deaminase, guanine deaminase, purine-nucleoside phosphorylase, lactate, malate and glutamate dehydrogenases, amine oxidase fumarate hydratase, acid and alkaline phosphatase, acetylcholinesterase, NADPH-cytochrome c reductase, catalase and thiamine-diphosphatase) characterization.

Animals↗

Malate dehydrogenase species in the cytosolic fraction of chicken liver.

The malate dehydrogenase activity in the cytosolic fraction isolated from chicken hepatocytes is resolved by DEAE-Sephacel chromatography in three active, electrophoretically distinct, species obtained in homogeneous form by affinity chromatography on 5'-AMP-Sepharose and Blue-Sepharose. Two of those species, according to the results obtained, might represent different conformational isomers of the enzyme molecule. Their purified preparations show identical amino-acid compositions and physico-chemical properties very similar to those of the cytosolic isoenzyme of other sources. The third one corresponds to a slight contamination of the mitochondrial isoenzyme.

Animals↗

[Purification and properties of purine nucleoside phosphorylases from bird liver].

Chicken and pigeon liver PNPases differ in their isoelectric points (5.40 and 5.15), in their molecular weights (125,000 +/- 5,000; 78,000 +/- 5,000, determined on Sephadex G-200) and in their subunit molecular weight (62,000 +/- 10%; 75,000 +/- 10%, determined by sodium dodecil sulfate-polyacrylamide gel electrophoresis). The related molecular weights show a dimeric structure for the chicken liver enzyme and a monomeric structure for the pigeon liver enzyme. Activation energies are similar but differ in delta H values. Both PNPases are irreversibly inactivated by p-chloromercuribenzoate and 5,5'-dithiobis-(2-nitrobenzoic acid) when incubated with these reagents; inactivation can be reverted totally or partially by dithiothreitol and 2-mercaptoethanol.

Animals↗

Separation and kinetic properties of the molecular forms of chicken liver cytoplasmic aspartate aminotransferase.

A method is proposed for the separation of the five molecular forms, alpha, beta, gamma, delta and epsilon, of chicken liver cytoplasmic aspartate aminotransferase free from lactate dehydrogenase activity. These molecular forms varied in isoelectric point, but no differences were observed either in their Michaelis constants or in the degree of their inhibition by excess of 2-oxoglutarate or L-aspartate.

Animals↗

Effect of phosphate and other inorganic anions on the activity of chicken liver cytosolic aspartate aminotransferase.

Chicken liver aspartate aminotransferase was inhibited by several inorganic anions. The inhibitory effect of the anions was related to their chaotropic character. Apparent Km (2-oxoglutarate) and Km (L-aspartate) values depended on the molarity of the buffer. The profile of the curves obtained did not depend on the nature of the enzyme sample assayed. Phosphate slightly inhibited the holoaspartate aminotransferase and was a strong inhibitor of apoaspartate aminotransferase with respect to pyridoxal phosphate.

Animals↗

Modification of the kinetic parameters of chicken liver cytoplasmic aspartate aminotransferase by lactate dehydrogenase.

A method for the purification of chicken liver soluble aspartate aminotransferase, lactate dehydrogenase free, is proposed. The preparation, which contained a mixture of the five molecular forms of the enzyme, showed a 120-fold increase in specific activity, with respect to the initial homogenates. Differences in Km(2-oxoglutarate) and saturating concentrations among solutions of purified enzyme and soluble fraction were due to the 2-oxoglutarate reductase activity of lactate dehydrogenase.

Animals↗

Phosphorolytic and ribosyl transfer mechanisms of purified chicken liver purine nucleoside phosphorylase.

Purified chicken liver purine nucleoside phosphorylase shows two ionizable groups at the active site whose pKa were near pH 6.9 and 8; the molecular weight (67,000-89,000) depends on the protein concentration. Initial velocity studies and product inhibition patterns were consistent with a random mechanism, which is rapid equilibrium in the phosphorolytic reaction with a dead-end complex, but not in the synthetic reaction. Free inorganic orthophosphate purine nucleoside phosphorylase (Sephadex G-100) catalyzes a pentosyl transfer reaction from inosine to guanine according to a random Bi, Bi mechanism.

Animals↗

Chromatographic behaviour of the molecular forms of guinea-pig skeletal muscle cytoplasmic malate dehydrogenase.

The isolated molecular forms of guinea-pig skeletal muscle cytoplasmic malate dehydrogenase have a different chromatographic behaviour through affinity or hydrophobic interaction gels; in all cases the retention of the B form is more noticeable. Chromatography of a partly purified preparation through 5' AMP-Sepharose allows both molecular forms of malate dehydrogenase to be separated and obtained free from lactate dehydrogenase.

Animals↗

Kinetic mechanism of the molecular forms of chicken liver mitochondrial malate dehydrogenase.

1. The reaction kinetic mechanism (pH 7.4) of the molecular forms of chicken liver m-MDH is of the order bi-bi ternary complex type with the existence of the E-oxaloacetate, E-L-malate, E-NAD+-oxaloacetate, E-NADH-L-malate, E-NAD+-NADH, E-NAD+-NAD+, E-NADH-NAD+ and E-NAD-NADH abortive complexes. 2. The saturating concentration values of the substrates are notably modified, in certain cases, in the presence of the reaction products.

Animals↗

Modification of 5'-nucleotidase activity by divalent cations and nucleotides.

The 5'-nucleotidase activity of the purified cytoplasmic fraction preparation of bovine brain does not depend on the presence of the divalent metal ions Mg2+, Ca2+, and Cu2+ in the incubation medium. The Zn2+ ion (0.5 mM) causes total enzyme inhibition. Although EDTA and 8-hydroxyquinoline inhibit the 5'-nucleotidase from this source, it has not been possible to show the existence of metal ions in the enzyme molecule. The inhibition of 5'nucleotidase by EDTA is progressive and irreversible; when the enzyme is not preincubated with EDTA, the inhibition is overridden by metal ions. The purines (except xanthine, 0.3 mM), pyrimidines, and their nucleosides do not affect the 5'-nucleotidase activity. The nucleoside di- and triphosphates are competitive enzyme inhibitors against 5'-AMP as substrate. The Ki values of the diphosphates are lower than those determined for the corresponding triphosphates. The inhibition caused by the above nucleotides is reversed, partly or wholly, by Mg2+, depending on the molar ratio between the effectors. The inhibitory action of the -SH group reagents on the 5'-nucleotidase activity is weak and reversible.

5'-Nucleotidase↗

Characterization of the forms of bovine liver adenosine deaminase.

1. The A and C forms of bovine liver adenosine deaminase (adenosine aminohydrolase; EC 3.5,4.4) have been separated. 2. The proportion of two forms is dependent on ionic strength of solution. 3. By gel filtration, in presence of 6 M urea, and A form is dissociated into the C form and the binding factor and both are also separated. By removal of urea the A form is again obtained. 4. The molecular weights of two forms and binding factor, kinetic parameters have been determined.

Adenosine Deaminase↗

Intramitochondrial location of the molecular forms of chicken liver mitochondrial malate dehydrogenase.

1. The two molecular forms of mitochondrial malate dehydrogenase are partly bound to the mitochondrial membranes. 2. The A form is located on the outer surface of the inner mitochondrial membrane and also in the intermembrane space. 3. The B form of the enzyme appears in the matrix and bound in part, probably, to the inner surface of the inner mitochondrial membrane. 4. Glutamate dehydrogenase, glutamate oxaloacetate transaminase, fumarase and lactate dehydrogenase are bound, to a greater or lesser extent, to the mitochondrial membranes, the fumarase having the highest degree of binding.

Animals↗