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.

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