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M Schutkowski

Publications and source records attributed to M Schutkowski.

23 records · Page 2Linked to original sources

Synthesis of dipeptide 4-nitroanilides containing non-proteinogenic amino acids.

A series of tert-butyloxycarbonyl amino acid 4-nitroanilides, including N-alkylated amino acids and (R)-thiazolidine-4-carboxylic acid, (S)-oxazolidine-4-carboxylic acid. (4S,5S)-5-methyloxazolidine-4-carboxylic acid, (4S,5R)-5-methyloxazolidine-4-carboxylic acid, (S)-azetidine-2-carboxylic acid, (S)-pipecolic acid and (S)-3,4-dehydroproline, were prepared conveniently by the isocyanate method or the mixed anhydride procedure. The resulting amino acid 4-nitroanilides were extended to corresponding dipeptide 4-nitroanilides with tert-butyloxycarbonyl-(S)-alanine. In the case of sterically hindered amino acid 4-nitroanilides the mixed anhydride procedure with diphenylphosphinyl chloride was successful.

Amino Acids↗

A model of the active site of dipeptidyl peptidase IV predicted by comparative molecular field analysis and molecular modelling simulations.

A molecular model of the active site of the serine protease dipeptidyl peptidase IV (DPP IV or CD26) has been developed on the basis of comparative molecular field analysis (CoMFA) of competitive inhibitors and by force field calculations. By application of CoMFA experimentally obtained inhibition constants Ki have been successfully predicted. The resulting steric and electrostatic coefficients of CoMFA were used for the development of the molecular model. The main assumptions of the model are the recognition of substrates or inhibitors by the side chains of a tyrosine (S1-position) and a tryptophan residue (S2-position). The model helps us to understand a multitude of experimental data regarding the substrate specificity of this enzyme as well as results obtained by genetic engineering experiments by other authors. General conclusions concerning a new family of serine proteases are drawn and discussed.

Binding Sites↗

Influence on proline-specific enzymes of a substrate containing the thioxoaminoacyl-prolyl peptide bond.

Dipeptidyl peptidase IV from porcine kidney and aminopeptidase P from Escherichia coli can utilize thioxoalanyl-proline 4-nitroanilide but with decreased kinetic constants compared to the normal substrates. Product analysis showed that exclusively thioxoalanyl-proline was liberated in the case of dipeptidyl peptidase IV catalysis and thioxo-alanine in the case of aminopeptidase-P-mediated thioxo peptide bond hydrolysis. For the proline-specific aminopeptidase P the kcat/Km value for the thioxo peptide is 1100-fold lower than for the corresponding oxo peptide. This difference is entirely due to kcat. Because the rotation about the thioxo amide bond is about 12.5 kJ mol-1 more difficult than rotation about an amide bond, these data support a mechanism involving rate-limiting rotation about the scissile peptide bond. It was found that the specificity rate constant for the reaction of thioxoalanyl-proline 4-nitroanilide and dipeptidyl peptidase IV is 100-1000-fold lower compared to the corresponding rate constant for alanyl-proline 4-nitroanilide. This remarkable effect is interpreted in terms of a distorted binding of the transition state for the thioxo substrate. The hydrolysis of the thioxo substrate by dipeptidyl peptidase IV is isomer-specific. The conformation about the nonscissile P2-P1 thioxo amide bond has to be in trans for successful cleavage of the scissile peptide bond. We can now directly compare the rotational energy barrier of the prolyl peptide bond for the oxo and the thioxo form.

Aminopeptidases↗

Extended investigation of the substrate specificity of dipeptidyl peptidase IV from pig kidney.

The substrate specificity of dipeptidyl peptidase IV (dipeptidyl peptide hydrolase, EC 3.4.14.5) from pig kidney was investigated, using a series of substrates, in which the amino-acid residue in position P1, a structural derivative of proline, was altered with respect to ring size and substituents. It was demonstrated that dipeptidyl peptidase IV hydrolyses substrates of the type Ala-X-pNA, where X is proline (Pro), (R)-thiazolidine-4-carboxylic acid (Thz), (S)-pipecolic acid (Pip), (S)-oxazolidine-4-carboxylic acid (Oxa), or (S)-azetidine-2-carboxylic acid (Aze). The ring size and ring structure of the residue in the P1 position influence the rate of enzyme-catalysed hydrolysis of the substrate. The highest kcat value (814 s-1) was found for Ala-Aze-pNA. In contrast, the kcat value for Ala-Pro-pNA is nearly 55 s-1. With all substrates of this series, the rate-limiting step of the hydrolysis by dipeptidyl peptidase IV is the deacylation reaction. Compounds of substrate-like structure, in which the P2 residue has an R-configuration, are not hydrolysed by dipeptidyl peptidase IV.

Animals↗

Separation of cis/trans isomers of a prolyl peptide bond by capillary zone electrophoresis.

On capillary electrophoresis of the chemically pure thioxo peptide Ala-Phe-psi[CS-N]-Pro-Phe-4-nitroanilide a peak splitting was observed at a capillary temperature of 25 degrees C. By contrast, the oxo peptide analogue exhibits a single, sharp peak under these conditions. Both peaks of the thioxo compound coincided gradually when the temperature was increased to 60 degrees C. Peak fusion was reverted by cooling down the heated sample. This behavior could be attributed to the electrophoresis-mediated separation of the cis/trans prolyl bond isomers of the thioxo peptide, allowing data of this conformational equilibrium to be determined. Derived from computational data about molecular volume and the hydration energy of low-energy cis and trans isomeric structures, the more rapid migration of the cis form in comparison to trans may be explained by structural parameters.

Algorithms↗