Identification of the MMRN1 binding region within the C2 domain of human factor V

Samira B Jeimy1, Rachael A Woram, Nola Fuller

  • 1Health Sciences Centre 2N31, Pathology and Molecular Medicine, McMaster University, 1200 Main Street West, Hamilton, Ontario L8N 3Z5, Canada.

Insights

Multimerin 1 binds to coagulation factor V’s C2 domain, aiding platelet localization. This complex dissociates upon factor V activation, suggesting multimerin 1’s role in clot formation.

Area of Science:

  • Biochemistry
  • Hematology
  • Molecular Biology

Background:

  • Platelets store coagulation cofactor V (factor V) complexed with multimerin 1 in alpha-granules.
  • This complex is released upon activation during clot formation.
  • The molecular basis of multimerin 1 and factor V interaction was previously undefined.

Purpose of the Study:

  • To determine the specific regions of factor V responsible for binding to multimerin 1.
  • To elucidate the functional consequences of this interaction in coagulation.

Main Methods:

  • Modified enzyme-linked immunoassays (ELISAs).
  • Use of recombinant factor V constructs with deletions and point mutations.
  • Prothrombinase assays to assess procoagulant activity.

Main Results:

  • Multimerin 1 binding to factor V requires the C2 domain and the light chain; the B domain enhances binding.
  • The multimerin 1 binding site in the C2 domain partially overlaps the phosphatidylserine binding site.
  • Multimerin 1 binds phosphatidylserine independently of factor V and does not inhibit factor V’s phosphatidylserine binding.
  • Factor V-multimerin 1 complexes dissociate after factor V activation and thrombin cleavage.
  • Excess multimerin 1 minimally reduced factor V procoagulant activity only if added before activation.

Conclusions:

  • Multimerin 1 binds factor V via its C2 domain, with contributions from the light and B domains.
  • Multimerin 1 localizes factor V to platelets before prothrombinase complex assembly.
  • Dissociation of the complex upon activation suggests a regulatory role for multimerin 1 in hemostasis.

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