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Biomedical subjects

E G Oestreicher

Publications and source records attributed to E G Oestreicher.

10 recordsLinked to original sources

Stability of immobilized D-hydantoinase from Vigna angularis and repeated cycles of highly enantioenriched production of N-carbamoyl-D-phenylglycines.

D-hydantoinase from Vigna angularis was immobilized by covalent linkage to aminopropyl glass beads. Thermal stability, resistance to storage at different pH values and temperatures of this biocatalyst were studied. This enzyme preparation was used as a catalyst to prepare enantioenriched N-carbamoyl-D-phenylglycine, N-carbamyl-D-p-fluorophenylglycine and N-carbamoyl-D-p-trifluoromethylphenylglycine, using a stirred batch reactor. Reactions were conducted during eight repeated reaction cycles, without loss of enzymatic activity or variation of the enantiomeric excess of the respective product (>98%).

Amidohydrolases↗

Resolution of DL-hydantoins by D-hydantoinase from Vigna angularis: production of highly enantioenriched N-carbamoyl-D-phenylglycine at 100% conversion.

D-Hydantoinase from Vigna angularis hydrolyzed rac-5-monosubstituted-hydantoins with polar and aromatic side chains and dihydrothymine but rac-5,5-disubstituted-hydantoins were not substrates of this enzyme. 5-Phenylhydantoin was the best substrate. By using this substrate, Ncarbamoyl-D-phenylglycine was obtained in quantitative yield and over 98% ee.

Amidohydrolases↗

Kinetics of the reduction of oxaloacetate catalyzed by mitochondrial malate dehydrogenase of Toxocara canis muscle.

1. The reaction of reduction of oxaloacetate to L-malate in the presence of NADH catalyzed by mitochondrial malate dehydrogenase (EC 1.1.1.37) of Toxocara canis muscle has been studied. 2. The data obtained in initial velocity experiments as well as those involving product inhibition suggest that the reaction mechanism is of the sequential type with a kinetically significant ternary complex and in which the coenzymes bind to the free enzyme. 3. The kinetic parameters, including the inhibition constant for NADH were estimated by non-linear regression analysis using the appropriate rate equations.

Animals↗

Inhibition of horse liver alcohol dehydrogenase and rabbit muscle lactate dehydrogenase by phenylhydrazine.

The activity of horse liver alcohol dehydrogenase was inhibited by phenylhydrazine. Kinetic experiments showed that this compound produced linear competitive inhibition with respect to NAD+ and linear noncompetitive inhibition with respect to ethanol. These results suggested that the inhibitor competes with NAD+ for the coenzyme binding site of alcohol dehydrogenase, forming a dead-end complex with the free form of the enzyme. A Ki value of 393 +/- 51 microM was estimated for the enzyme-inhibitor complex. Further evidence for this mechanism of inhibition arose from the fact that the same kind of inhibition was found for rabbit muscle lactate dehydrogenase. The Ki value for the lactate dehydrogenase-phenylhydrazine complex was 43.41 +/- 2.10 mM. The significant difference between these Ki values is explained in terms of known differences in hydrophobicity of the nicotinamide binding region in the two enzymes.

Alcohol Dehydrogenase↗

Effects of temperature on the mitochondrial malate dehydrogenase of adult muscle of Toxocara canis.

Purified mitochondrial malate dehydrogenase isoenzyme (m-MDH) of Toxocara canis muscle presented maximum activity at 48 degrees C. A clear change in slope of the Arrhenius plot was observed. The energy of activation calculated for the catalytic process showed values of 3.2 kcal/mol and 10.5 kcal/mol. Thermal inactivation of m-MDH showed that it is more thermolabile than the s-isoenzyme. The inactivation of the enzyme by heat could be reduced at least in part by the addition of 0.1 mM NADH. The heat denaturation showed to be a first-order process. The rate constant (k) was calculated as being of the order of 5.28 X 10(-4) s-1 at 40 degrees C. The activation energy for the heat inactivation process was 16.45 kcal/mol between 30 degrees C and 40 degrees C and 13.79 kcal/mol between 40 degrees C and 48 degrees C.

Animals↗

A microcomputer program for fitting two-substrate enzyme rate equations.

This paper describes a microcomputer program written in BASIC for fitting different two-substrate enzyme kinetic mechanisms. The present program is a complement of one which was recently published and was developed to fit different models of enzyme inhibition. The complete program resulting from this complementation allows the fitting of the most usual rate equations found in steady-state studies of enzyme kinetics. The program based on a non-linear least-squares regression, can be run on any microcomputer having the CP/M operating system. The initial rate equation for a steady-state random bisubstrate mechanism was chosen to evaluate the performance of the program, with contrived data of known error structure.

Computers↗

A microcomputer program for fitting enzyme inhibition rate equations.

This paper presents a computer program written in BASIC for fitting different enzyme inhibition kinetic models. The program, based on a nonlinear least-squares regression, can be run on any microcomputer with the CP/M operating system. Weighting of observed initial velocities is decided by the user by assessing constant variance, proportional variance or by incorporation of the variances calculated by a subroutine. The program also uses robust regression by bisquare weighting. All questions concerning data input, type of rate function, type of weight and the use of bisquare regression appear on the video display unit.

Enzyme Inhibitors↗

Purification and properties of mitochondrial malate dehydrogenase of Toxocara canis muscle.

Mitochondrial malate dehydrogenase was purified from muscle extracts of Toxocara canis by means of Sephadex G-100 gel filtration, DEAE-Sephadex ion-exchange chromatography and 5'AMP-Sepharose 4B affinity chromatography. The purified enzyme showed an optimum pH for the reduction of oxaloacetate of 7.3 in Tris-HCl buffer and of pH 7.5-7.8 in phosphate buffer. The m-MDH showed values of 3.2 kcal/mol and 10.5 kcal/mol for the energy of activation, calculated from the Arrhenius equation. The mitochondrial enzyme was found to be more susceptible to thermal inactivation as compared with the cytosolic isoenzyme. Kinetic experiments showed that the m-MDH of Toxocara canis is inhibited by excess oxaloacetate but not by excess NADH. The apparent Km for oxaloacetate reduction was 53 microM and 0.54 mM for L-malate oxidation.

Animals↗

Pocket computer program for fitting the Hill equation.

This paper presents a program written in the BASIC language for the Radio Shack TRS-80 PC-1 or the Sharp PC 1211 pocket computers for fitting the Hill equation to experimental data. The program is based on a procedure involving a combination of an optimization technique and non-linear regression. The program determines precisely all three parameters of the Hill equation and in addition, it performs a simulation of the kinetic experiment using the parameter values previously estimated, calculating the sum of squares of residuals.

Allosteric Regulation↗

Pocket computer program for fitting the Michaelis-Menten equation.

This paper presents a program written for the Radio Shack TRS-80 or the Sharp PC 1211 pocket computers for fitting the Michaelis-Menten equation to experimental data by a non-linear regression analysis. The program determines the kinetic parameters Km and Vm, their standard errors and the residual standard error. In addition it performs a simulation of a kinetic experiment using the parameter values previously determined.

Computers↗