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The reaction of serpins with proteinases involves important enthalpy changes
1Laboratoire d'Enzymologie, INSERM Unité 392, Université Louis Pasteur de Strasbourg, F-67400 Illkirch, France.
Biochemistry
|August 15, 2001
Summary
Active serpins undergo significant structural changes and enthalpy release upon inactivation. This heat release stabilizes proteases in their inactive forms, impacting proteinase inhibitor function.
Area of Science:
- Biochemistry
- Structural Biology
- Enzymology
Background:
- Serpins (serine protease inhibitors) are crucial regulators of protease activity.
- Proteolytic inactivation of active serpins involves a conformational transition and increased stability.
- Understanding the thermodynamics of these transitions is key to comprehending serpin function.
Purpose of the Study:
- To investigate the thermodynamic changes associated with serpin inactivation via proteolytic cleavage.
- To compare the enthalpy changes during serpin inactivation versus inhibition.
- To elucidate the role of enthalpy changes in stabilizing proteases.
Main Methods:
- Microcalorimetry was employed to measure enthalpy changes (DeltaH) and heat capacity (DeltaC(p)()).
- Specific serpin-proteinase interactions were studied, including alpha(1)-proteinase inhibitor and antithrombin.
- Various proteases were used, such as Pseudomonas aeruginosa elastase, Staphylococcus aureus V8 proteinase, papain, and leukocyte elastase.
Main Results:
- Proteolytic inactivation of active serpins resulted in large enthalpy changes (DeltaH = -53 to -63 kcal mol(-1)).
- Serpin inhibition released significantly less heat (DeltaH = -20 to -31 kcal mol(-1)).
- A large negative heat capacity (DeltaC(p)() = -566 cal K(-1) mol(-1)) was observed for alpha(1)-proteinase inhibitor cleavage.
Conclusions:
- The structural transition upon serpin inactivation is thermodynamically distinct from inhibition.
- A substantial portion of the enthalpy change likely stabilizes the protease in an inactive conformation.
- These findings provide thermodynamic insights into the mechanism of serpin-mediated protease regulation.