Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Hans Dutler is active.

Publication


Featured researches published by Hans Dutler.


Archives of Biochemistry and Biophysics | 1987

Comparative specificity of porcine pancreatic kallikrein and bovine pancreatic trypsin: Importance of interactions N-Terminal to the scissible bond

Spartaco A. Bizzozero; Hans Dutler

Hydrolyses catalyzed by bovine pancreatic trypsin and porcine pancreatic kallikrein were studied using synthetic peptide substrates of the type E chi-L chi 2-L chi 1 decreases Y and E chi-L chi 3-L chi 2-L chi 1 decreases Y with L chi 1 = Arg defining the hydrolysis position (indicated by the arrow). The leaving moiety Y was -OCH3, -NH-C6H4-p-NO2 and -Ala-NH2. Insight into interactions occurring between the active site of the enzymes and the acyl moiety of the substrates was gained by studying the influence on hydrolysis rate of structural variation of residues L chi 2 and L chi 3. Parallel analyses of the hydrolyses of the ester, anilide, and peptide substrates having the same acyl moiety considerably facilitated the interpretation of the kinetic data. Trypsin, but not kallikrein, displayed high reactivity even with relatively short substrates. Ac-Ala-Arg-Ala-NH2, for example, was a better substrate for trypsin than for kallikrein by a factor of 1.3 X 10(4) in terms of kcat and 5.9 X 10(4) in terms of kcat/Km. Reactivity differences of such magnitude were related to two main differences in enzyme-substrate interactions: the interaction of the arginine side chain of the substrate with the specificity pocket of the enzyme is optimal for trypsin but poor for kallikrein and the number of hydrogen bonds formed by the enzyme with the backbone section of the substrate on both sides of the specific residue is larger in the case of trypsin. The latter difference is found to be related to the structure of amino-acid residue 192 which is glutamine in trypsin and methionine in kallikrein.


FEBS Journal | 1973

Kinetic Investigation of the alpha-Chymotrypsin-Catalyzed Hydrolysis of Peptide Substrates. The Relationship between Peptide-Structure N-Terminal to the Cleaved Bond and Reactivity

Spartaco A. Bizzozero; Werner K. Baumann; Hans Dutler


FEBS Journal | 1971

Fatty Acid Synthetase from Pig Liver

Hans Dutler; Minor J. Coon; Arthur Kull; Hugo Vogle; Guy Waldvogel; Vlado Prelog


FEBS Journal | 1975

Kinetic Equivalence of the Active Sites of Alcohol Dehydrogenase from Horse Liver

Matthias Hadorn; Vivian A. John; Felix K. Meier; Hans Dutler


FEBS Journal | 1975

Kinetic Investigation of the α-Chymotrypsin-Catalyzed Hydrolysis of Peptide-Ester Substrates

Spartaco A. Bizzozero; Werner K. Baumann; Hans Dutler


FEBS Journal | 1977

Dihydroxyacetone Reductase from Mucor javanicus 2. Identification of the Physiological Substrate and Reactivity towards Related Compounds

Erich Hochuli; Keith E. Taylor; Hans Dutler


FEBS Journal | 1974

Phenylalanyl-tRNA synthetase from yeast. Steady-state kinetic investigation of the reaction mechanism.

Jean-Martin Berther; Peter Mayer; Hans Dutler


FEBS Journal | 1977

Dihydroxyacetone Reductase from Mucor javanicus

Hans Dutler; Vlado Prelog; Juul L. van der Baan; Erich Hochuli; Zoltán Kis; Keith E. Taylor


Accounts of Chemical Research | 1989

Mechanism of the serine protease reaction. Stereoelectronic, structural, and kinetic considerations as guidelines to deduce reaction paths

Hans Dutler; Spartaco A. Bizzozero


FEBS Journal | 1973

A Numerical Method for Acquisition and Processing of Steady-State Kinetic Data Contained in an Entire Progression Curve

Spartaco A. Bizzozero; August W. Kaiser; Hans Dutler

Collaboration


Dive into the Hans Dutler's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge