Isolation and regulatory mechanisms of smooth muscle AMP-deaminase.
AMP-deaminase from cow uterine smooth muscle has been purified. The enzyme activity is regulated by the two cooperating mechanisms: allosteric and dissociation--association.
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Publications and source records attributed to K Kaletha.
AMP-deaminase from cow uterine smooth muscle has been purified. The enzyme activity is regulated by the two cooperating mechanisms: allosteric and dissociation--association.
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Two kinetically and regulatory similar isoforms of AMP-deaminase were demonstrated in adult human skeletal muscle. In an extract from normal muscle, 5-10% of the AMP-deaminase activity was released from a phosphocellulose column in the 0.75 mol/l potassium chloride eluate, the remaning activity being eluted with 2.0 mol/l potassium chloride. In a muscle extract from a patient with myoadenylate deaminase deficiency the total AMP-deaminase activity was only 2% of the control, and it eluted mainly in 0.75 mol/l KCl fraction. The AMP-deaminase variant, which eluted with 2.0 mol/l KCl from the deficient muscle extract displayed kinetic properties distinctly different from those of normal muscle and resembled in this respect the isoform from fetal tissue. The experiments presented suggest that disturbances in the mechanisms regulating an alternative splicing of the primary transcript of skeletal muscle AMP-deaminase gene might be the molecular basis of the defect.
AMP deaminase isoforms from human skeletal muscle can be separated chromatographically [Kaletha, Spychała & Nowak (1987) Experientia 43, 440-443]. In adult tissue nearly all the AMP deaminase activity was eluted from phosphocellulose with 0.75 M-KCl ('adult' isoform), and the remaining activity could be eluted with 2.0 M-KCl. Conversely, most of the AMP deaminase activity from 11-week-old fetal tissue was eluted from phosphocellulose with 2.0 M-KCl ('fetal' isoform). In the present paper the kinetic and regulatory properties of AMP deaminase extracted from 11- and 16-week-old fetal skeletal muscle are reported. The two isoforms from 11-week-old human fetus differed distinctly in these properties. The 'fetal' isoform had about 5-fold higher half-saturation constant (S0.5) value than the 'adult' form. It was also more sensitive to the influence of some important regulatory ligands (ADP, ATP and Pi), and exhibited a different pH/activity profile. The 'adult' isoform of AMP deaminase from fetal muscle and the enzyme from mature muscle possessed similar kinetic and regulatory properties. This isoform seems not to be subject to any major modifications during further ontogenesis. This is not true, however, for the 'fetal' isoform. In the muscle of 16-week-old human fetus, the 'fetal' isoform showed a peculiar, biphasic, type of substrate-saturation kinetics. This phenomenon may reflect appearance of the next, developmentally programmed, isoform of human skeletal-muscle AMP deaminase.
Phosphocellulose chromatography of pigeon leg muscle extract revealed the existence of two well-separated forms of AMP deaminase. This was in contrast to the pigeon breast muscle extract, which yielded only one form. The two leg muscle enzyme isoforms manifested similar kinetic and regulatory properties. They were activated by very low concentration of potassium ions and demonstrated similar patterns of pH and effector dependence. At pH 6.5, as well as at other pH values tested. ADP and ATP slightly stimulated, whereas GTP and orthophosphate inhibited the two molecular forms of pigeons leg muscle enzyme. Surprisingly, the molecular form of AMP deaminase present in pigeon breast muscle was inhibited by ATP at all pH values tested. The kinetic and regulatory properties of the three molecular forms of pigeon skeletal muscle AMP deaminase examined do not resemble those which have been described for pigeon heart muscle enzyme.
Myoadenylate deaminase is the muscle-specific isoform of AMP deaminase (EC 3.5.4.6), an enzyme which plays a special role in energy metabolism in skeletal muscle. A 2.3-kilobase cDNA encoding this enzyme has been cloned from a lambda gt10 library prepared from rat skeletal muscle using oligonucleotide probes designed from AMP deaminase peptide sequences. This cDNA was sequenced, and the amino acid sequence of this isoform of AMP deaminase was deduced. Sequences homologous to this cDNA are identified in the genome of eukaryotes as diverse as yeast and man. Tissue-specific expression of a 2.5-kilobase AMP deaminase transcript is demonstrated, and the abundance of this transcript as well as the 80-kDa adult, muscle-specific peptide of AMP deaminase increase in parallel during postnatal skeletal muscle development. In the adult animal, the abundance of this transcript and AMP deaminase activity are differentially expressed in various skeletal muscle fiber types. We conclude that AMP deaminase sequences have been highly conserved during evolution, and in mammals there is developmental and tissue-specific control of expression of this gene.
Chromatography on phosphocellulose revealed the existence of two well-separable forms of skeletal muscle AMP-deaminase in the tissue extracts of 11- and 16-week-old human fetuses. One of these forms elutes from the column at the same salt concentration as the muscle isozyme found in the skeletal muscle extract from adult man, and seems to have similar kinetic properties. The second form, which was found only in vestigial amounts in adult human tissue extract, represents different kinetic properties and seems to be a form characteristic for the fetal period of ontogenesis.
The kinetic and regulatory properties of purified pigeon heart muscle AMP deaminase were investigated. In the presence of 100 mM potassium chloride, the enzyme exhibited a slightly sigmoidal type of kinetics. Addition of ATP to the incubation medium changed the reaction rate versus substrate concentration plot into a hyperbolic one, and caused a decrease of the half-saturation constant (S0.5). ADP presence caused the change of both the S0.5 and Vmax parameters, exerting either an activating or inhibitory effect, depending upon the substrate concentration. Orthophosphate inhibited the enzyme at all substrate concentrations, increasing the value of the S0.5 parameter. In the presence of ATP, ADP and orthophosphate, added to the incubation medium at approximately physiological concentrations, pigeon heart AMP deaminase still seems to preserve its activated form. Active long chain fatty acids clearly inhibited enzyme activity even at micromolar concentrations. Interpretation of the kinetic data in terms of the allosteric theory of Monod et al. (1965, J. Mol. Biol. 12, 88-118) indicates that heart muscle AMP deaminase may operate as a functionally active dimer.
The AMP deaminase activity measured in crude chicken liver extract did not change significantly during development. The livers of 10- and 14-day chick embryos, 1-day, 5-, 10- and 16-week-old chickens and adult hens were examined for the existence of multiple forms of AMP deaminase. Phosphocellulose column chromatography revealed the existence of two peaks of enzyme activity in the liver of 10- and 16-week-old chickens and adult hens. Kinetic studies with the preparations of AMP deaminase revealed sigmoid-shaped substrate-saturation curves at all developmental stages and hyperbolic-shaped saturation curves for the enzyme form appearing in 10-week-old chickens. All AMP deaminases investigated were susceptible to activation by ATP and inhibition by Pi. Kinetic and regulatory properties as well as pH optima of all the enzyme preparations tested indicate that AMP deaminase isolated from the embryos and from 1-day-old chicks was similar to the form I isolated from adult hens and differed significantly from the form II of this enzyme.
The variation of kinetic parameters with pH for the reaction catalysed by the purified 14-day embryo and adult hen heart AMP-deaminase was shown to be similar but not identical. The pH-dependence of the half-saturation constant (K0.5) is well pronounced, and the plot of pK0.5 vs pH is manifested as a bell-shaped curve for both developmental forms of the enzyme. In contrast to that, the maximum velocity of the reaction (Vmax) catalyzed by these enzymes does not change significantly in the range pH 5.6-7.4.
The variations of kinetic parameters with pH of the activity of 14-day-old chicken embryo and adult hen skeletal muscle AMP-deaminase in the presence and in the absence of adenine nucleotide effectors have been examined. The results obtained indicate that the kinetic and regulatory properties of the two developmental forms of AMP-deaminase are different.
Chromatography on phosphocellulose column revealed changes in the elution profile of chicken heart AMP-deaminase during ontogenesis. The extracts from the heart of adult hen and 14 day-old embryo displayed a single peak of the enzyme activity at a slightly different elution volume, whereas in the heart extract of 1 day-old chicken two molecular forms of adenylate deaminase have been eluted. The kinetic and regulatory properties of the purified adult hen heart AMP-deaminase were studied and compared with those of the corresponding enzyme from 14 day-old embryo heart. Both enzymes exhibited a slightly sigmoid-shaped plot of the reaction rate versus substrate concentration, which shifted to hyperbolic form when ATP or ADP were added into the incubation medium. The enzymes were strongly activated by ATP, less efficiently by ADP and the activatory effect was enhanced at low substrate concentration. Orthophosphate inhibited both enzymes but this inhibition was more potent for the embryo heart enzyme. Palmitoyl-CoA inhibited adult hen but not the embryo heart AMP-deaminase. The data presented indicate that the differences also in the regulatory properties of the molecular forms studied do exist and correspond with the ontogenetic differences observed previously (Kaletha and Skladanowski (1981) Experientia 37, 232-234) concerning the effect of temperature on the chicken heart adenylate deaminase.
Interpretation of the kinetic data in terms of concerted transition theory indicated that in the presence of 100 mM potassium chloride hen heart AMP-deaminase may be active as a dimer. The presence of ATP, but not of the ADP in the incubation medium shifts completely the allosteric equilibrium towards the active, accessible to the substrate form of the enzyme. In the joint presence of main enzyme effectors (ATP, ADP and orthophosphate) added to the incubation medium at physiological concentrations, the plot of the reaction rate versus substrate concentration manifested hyperbolic dependence and the value of half-saturation constant (K0.5) did not differ from the value of this parameter obtained for ATP(alone)-activated enzyme.
Chromatography on phosphocellulose column revealed changes in the elution profile of 14 day-old chicken embryo and adult hen skeletal muscle AMP deaminase. In the presence of 5 mM potassium the enzyme from embryo muscle exhibited a sigmoid-shaped plot of the reaction rate versus substrate concentration. The increase of KCl concentration up to 100 mM diminished distinctly sigmoidicity of the plot. Micromolar concentrations of ADP or ATP activated, whereas GTP at the same concentrations inhibited the embryo and hen skeletal muscle AMP deaminase while 5 mM KCl was present in the incubation medium. 100 mM potassium concentration diminished the effect of ADP and ATP but not of GTP. Palmitoyl-CoA inhibited strongly the embryo skeletal muscle adenylate deaminase but had no effect on the activity of the hen enzyme. Alanine inhibited only the adult hen enzyme. The embryo and hen AMP deaminase differed also in the specificity to adenylate analogues and exhibited a different dAMP/AMP ratio. The data presented indicate that kinetic and regulatory properties of the two developmental forms of AMP deaminase are different.
The effect of temperature on purified 1-day-old chicken and adult hen heart muscle AMP deaminase was studied and compared to previous studies on this enzyme from skeletal muscle. The temperature-induced changes in the kinetic parameters of the reaction were shown to be different at these 2 stages of development. This suggests the possibility of developmental changes in the isozymic pattern of AMP deaminase in the heart tissue as has already been shown for skeletal muscle.
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In the presence of 1 mM ATP, the plots of Michaelis dependence of the reaction catalysed by AMP-deaminase from rat heart were hyperbolic at all temperatures between 10 and 40 degrees C. Calculation of the energy of activation for ATP-activated enzyme and of the enzyme-substrate complex formation is presented.
The kinetic and regulatory properties of purified rat heart AMP deaminase were investigated. In the presence of 100 mM KCl, the enzyme exhibited a slightly sigmoid-shaped plot of reaction rate, vs. substrate concentration, which shifted to a more hyperbolic form when ATP, ADP or GTP were added. ATP was the most potent activator of the enzyme, whereas GTP at low (less than 0.25 mM) concentrations increased the enzyme activity. The activation effect was negligible at higher concentrations of GTP. The calculated value of K0.5 of approx. 3 mM for unactivated enzyme decrased to approx. 0.6 mM and 1.1 mM when 0.5 mM ATP or 1.5 mM ADP were present in the incubation mixture, respectively. The theoretical model (Monod, J., Wyman, J. and Changeux, J.P. (1965) J. Mol. Biol. 12, 88-118) gave a partial explanation of these results.