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Inhibition of thrombin formation by active site mutated (S360A) activated protein C
Gerry A F Nicolaes1, Paul E Bock, Kenneth Segers
1Department of Biochemistry, Cardiovascular Research Institute Maastricht, Maastricht University, 6200MD Maastricht, The Netherlands. G.Nicolaes@bioch.unimaas.nl
Insights
Activated protein C (APC) prevents blood clots by binding to factors Va and VIIIa. A mutated APC (APC(S360A)) without enzyme activity still inhibits clotting, revealing a new anticoagulant mechanism.
Area of Science:
- Biochemistry
- Hematology
- Molecular Biology
Background:
- Activated protein C (APC) is a key regulator of blood coagulation.
- APC inactivates coagulation factors Va (FVa) and VIIIa (FVIIIa) via proteolysis, down-regulating thrombin generation.
- Understanding APC's substrate recognition is crucial for elucidating its anticoagulant function.
Purpose of the Study:
- To investigate the mechanism of substrate recognition by APC.
- To determine the role of APC's active site and binding interactions in its anticoagulant activity.
- To explore the function of a proteolytically inactive APC mutant (APC(S360A)).
Main Methods:
- Utilized active site-mutated APC (APC(S360A)) lacking proteolytic activity.
- Performed experiments in model systems and human plasma.
- Assessed binding kinetics (K(D)) and competition assays with labeled coagulation factor X.
- Investigated the effect of protein S and prothrombin on APC(S360A) binding to FVa.
Main Results:
- APC(S360A) exhibits anticoagulant activity by competing for FVa and FVIIIa binding, distinct from its zymogen.
- APC(S360A) binds FVa with high affinity (K(D) = 0.11 ± 0.05 nm).
- Binding to FVa is dependent on Arg(506) and requires an accessible active site, forming a nonproductive complex.
Conclusions:
- APC's anticoagulant activity can be mediated by non-proteolytic binding to FVa and FVIIIa.
- The interaction with FVa is critically dependent on Arg(506) and involves a nonproductive Michaelis complex.
- This binding mechanism may represent an important in vivo pathway for regulating thrombin formation.
Abstract:
Activated protein C (APC) down-regulates thrombin formation through proteolytic inactivation of factor Va (FVa) by cleavage at Arg(506) and Arg(306) and of factor VIIIa (FVIIIa) by cleavage at Arg(336) and Arg(562). To study substrate recognition by APC, active site-mutated APC (APC(S360A)) was used, which lacks proteolytic activity but exhibits anticoagulant activity. Experiments in model systems and in plasma show that APC(S360A), and not its zymogen protein C(S360A), expresses anticoagulant activities by competing with activated coagulation factors X and IX for binding to FVa and FVIIIa, respectively. APC(S360A) bound to FVa with a K(D) of 0.11 +/- 0.05 nm and competed with active site-labeled Oregon Green activated coagulation factor X for binding to FVa. The binding of APC(S360A) to FVa was not affected by protein S but was inhibited by prothrombin. APC(S360A) binding to FVa was critically dependent upon the presence of Arg(506) and not Arg(306) and additionally required an active site accessible to substrates. Inhibition of FVIIIa activity by APC(S360A) was >100-fold less efficient than inhibition of FVa. Our results show that despite exosite interactions near the Arg(506) cleavage site, binding of APC(S360A) to FVa is almost completely dependent on Arg(506) interacting with APC(S360A) to form a nonproductive Michaelis complex. Because docking of APC to FVa and FVIIIa constitutes the first step in the inactivation of the cofactors, we hypothesize that the observed anticoagulant activity may be important for in vivo regulation of thrombin formation.
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