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Steady-state and pre-steady-state kinetic evaluation of severe acute respiratory syndrome coronavirus (SARS-CoV) 3CLpro cysteine protease: development of an ion-pair model for catalysis.
- Source :
-
Biochemistry [Biochemistry] 2008 Feb 26; Vol. 47 (8), pp. 2617-30. Date of Electronic Publication: 2008 Feb 01. - Publication Year :
- 2008
-
Abstract
- Severe acute respiratory syndrome (SARS) was a worldwide epidemic caused by a coronavirus that has a cysteine protease (3CLpro) essential to its life cycle. Steady-state and pre-steady-state kinetic methods were used with highly active 3CLpro to characterize the reaction mechanism. We show that 3CLpro has mechanistic features common and disparate to the archetypical proteases papain and chymotrypsin. The kinetic mechanism for 3CLpro-mediated ester hydrolysis, including the individual rate constants, is consistent with a simple double displacement mechanism. The pre-steady-state burst rate was independent of ester substrate concentration indicating a high commitment to catalysis. When homologous peptidic amide and ester substrates were compared, a series of interesting observations emerged. Despite a 2000-fold difference in nonenzymatic reactivity, highly related amide and ester substrates were found to have similar kinetic parameters in both the steady-state and pre-steady-state. Steady-state solvent isotope effect (SIE) studies showed an inverse SIE for the amide but not ester substrates. Evaluation of the SIE in the pre-steady-state revealed normal SIEs for both amide and ester burst rates. Proton inventory (PI) studies on amide peptide hydrolysis were consistent with two proton-transfer reactions in the transition state while the ester data was consistent with a single proton-transfer reaction. Finally, the pH-inactivation profile of 3CLpro with iodoacetamide is indicative of an ion-pair mechanism. Taken together, the data are consistent with a 3CLpro mechanism that utilizes an "electrostatic" trigger to initiate the acylation reaction, a cysteine-histidine catalytic dyad ion pair, an enzyme-facilitated release of P1, and a general base-catalyzed deacylation reaction.
- Subjects :
- Acrylates pharmacokinetics
Alkylation
Catalysis
Coronavirus 3C Proteases
Cysteine chemistry
Cysteine Endopeptidases chemistry
Dipeptides pharmacokinetics
Enzyme Activation drug effects
Enzyme Inhibitors pharmacokinetics
Enzyme Stability drug effects
Histidine chemistry
Hydrogen-Ion Concentration
Iodoacetamide pharmacology
Ions metabolism
Kinetics
Models, Biological
Solvents pharmacology
Static Electricity
Transferases metabolism
Viral Proteins antagonists & inhibitors
Viral Proteins chemistry
Cysteine Endopeptidases metabolism
Severe acute respiratory syndrome-related coronavirus enzymology
Viral Proteins metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 0006-2960
- Volume :
- 47
- Issue :
- 8
- Database :
- MEDLINE
- Journal :
- Biochemistry
- Publication Type :
- Academic Journal
- Accession number :
- 18237196
- Full Text :
- https://doi.org/10.1021/bi702107v