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Tracking structural features leading to resistance of activated protein C to alpha 1-antitrypsin
L Shen1, B Dahlbäck, B O Villoutreix
1Lund University, The Wallenberg Laboratory, Department of Clinical Chemistry, University Hospital, Malmö, S-205 02 Malmö, Sweden.
Insights
Researchers engineered human activated protein C (APC) to resist alpha 1-antitrypsin (AAT) inhibition. Mutating specific amino acids created APC variants with significantly reduced inactivation by AAT, offering potential for improved anticoagulant therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Protein Engineering
Background:
- Activated protein C (APC) is a crucial anticoagulant protease.
- Human APC (hAPC) is inhibited by alpha 1-antitrypsin (AAT), unlike resistant bovine APC (bAPC).
- The specific molecular differences causing this resistance are not fully understood.
Purpose of the Study:
- To elucidate the molecular basis of APC-AAT interaction.
- To engineer a human APC variant resistant to AAT inhibition.
- To investigate the impact of mutations on APC activity and inhibition by other serpins.
Main Methods:
- Molecular modeling of bovine APC based on human APC structure.
- Site-directed mutagenesis to introduce specific amino acid substitutions in hAPC.
- Assays for amidolytic and anticoagulant activities, and kinetic analysis of AAT inhibition.
Main Results:
- Mutant hAPC variants (S173E, E60aS/S61R, E60aS/S61R/S173E) showed similar amidolytic and anticoagulant activities to wild-type hAPC.
- The triple mutant (E60aS/S61R/S173E) exhibited significantly reduced inactivation by AAT (k2 = 0.40 M-1 s-1) compared to wild-type hAPC (k2 = 2.71 M-1 s-1).
- Partial resistance was observed with single (S173E) and double (E60aS/S61R) mutants.
Conclusions:
- Specific amino acid substitutions, particularly E60aS/S61R/S173E, confer resistance to AAT inhibition in hAPC.
- Engineered hAPC variants maintain functional anticoagulant activity.
- These findings provide a basis for developing AAT-resistant APC for therapeutic applications.
Abstract:
Activated protein C (APC) is a multi-modular anticoagulant serine protease, which degrades factor V/Va and factor VIIIa. Human APC (hAPC) is inhibited by human alpha 1-antitrypsin (AAT), while the bovine enzyme (bAPC) is fully resistant to this serpin. Structural features in the catalytic domains between the two species cause this difference, but detailed knowledge about the causal molecular difference is missing. To gain insight into the APC-AAT interaction and to create a human protein C resistant to AAT inhibition, we have used molecular modeling and site-directed mutagenesis. First, a structural model for bAPC based on the Gla-domainless X-ray structure of hAPC was built. Screening the molecular surface of the human and bovine APC enzymes suggested that a hAPC molecule resistant to AAT inhibition could be constructed by substituting only a few amino acids. We thus produced recombinant hAPC molecules with a single mutation (S173E, the numbering follows the chymotrypsinogen nomenclature), two mutations (E60aS/S61R) or a combination of all these substitutions (E60aS/S61R/S173E). Amidolytic and anticoagulant activities of the three mutant APC molecules were similar to those of wild-type hAPC. Inhibition of wild-type hAPC by AAT was characterized by a second-order rate constant (k2) of 2.71 M-1 s-1. The amino acid substitution at position 173 (S173E mutant) led to partial resistance to AAT (k2 = 0.84 M-1 s-1). The E60aS/S61R mutant displayed mild resistance to AAT inhibition (k2 = 1.70 M-1 s-1), whereas the E60aS/S61R/S173E mutant was inefficiently inactivated by AAT (k2 = 0.40 M-1 s-1). Inhibition of recombinant APC molecules by the serpin protein C inhibitor (PCI) in the presence and absence of heparin was also investigated.
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