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Interaction of peptide boronic acids with elastase: circular dichroism studies
S C Berry1, A L Fink, A B Shenvi
1Department of Chemistry, University of California, Santa Cruz 95064.
Proteins
|January 1, 1988
Summary
Peptide boronic acids are slow-binding inhibitors of serine proteases. Far-ultraviolet circular dichroism studies revealed no conformational changes in pancreatic elastase during this slow-binding inhibition process.
Area of Science:
- Biochemistry
- Enzymology
- Structural Biology
Background:
- Serine proteases are crucial enzymes in various biological processes.
- Boronic acid derivatives of peptide substrates act as potent inhibitors.
- Slow-binding inhibition, characterized by biphasic kinetics, is a key feature of these inhibitors, suggesting they mimic reaction intermediates.
Purpose of the Study:
- To investigate the role of enzyme conformational changes in the slow-binding inhibition mechanism of pancreatic elastase by peptide boronic acids.
- To elucidate the structural basis of the biphasic binding kinetics observed with these inhibitors.
Main Methods:
- Far-ultraviolet circular dichroism (CD) spectroscopy was employed to study secondary structural changes in pancreatic elastase.
- Kinetic experiments were performed to correlate binding phases with spectral changes.
- Spectral deconvolution was used to correct for inhibitor self-assembly.
Main Results:
- No significant alterations in the secondary structure of pancreatic elastase were detected during the initial or final stages of inhibitor complex formation.
- Kinetic analysis confirmed that the slow-binding phase did not coincide with any observable CD spectral changes.
- The peptide inhibitor Ac-Pro-boro-Val-OH acted as a simple competitive inhibitor, while DNS-Ala-Pro-boro-Val-OH and Ac-Ala-Ala-Pro-boro-Val-OH exhibited slow-binding inhibition.
Conclusions:
- The slow-binding inhibition of pancreatic elastase by peptide boronic acids does not involve a significant conformational change in the enzyme's secondary structure.
- The observed biphasic kinetics are not driven by protein conformational rearrangements.
- These findings suggest alternative mechanisms for the slow-binding phenomenon in enzyme inhibition.