The M358R variant of α(1)-proteinase inhibitor inhibits coagulation factor VIIa

William P Sheffield1, Varsha Bhakta2

  • 1Canadian Blood Services, Centre for Innovation, Hamilton, Ontario, Canada; Department of Pathology and Molecular Medicine†, McMaster University, Hamilton, Ontario, Canada.

Insights

The M358R mutation in alpha-1-proteinase inhibitor (API) enhances its inhibition of factor VIIa (FVIIa), potentially explaining bleeding risks in individuals with this mutation.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Serpin Function

Background:

  • The M358R mutation alters the reactive center of alpha-1-proteinase inhibitor (API), changing its protease inhibition profile.
  • While antithrombin (AT), another serpin, inhibits factor VIIa (FVIIa), API M358R's interaction with FVIIa is uncharacterized.

Purpose of the Study:

  • To investigate the inhibition of factor VIIa (FVIIa) by the naturally occurring M358R mutant of alpha-1-proteinase inhibitor (API).
  • To compare the inhibitory efficacy of API M358R against FVIIa with that of plasma-derived antithrombin (AT).

Main Methods:

  • Utilized recombinant bacterially-expressed API M358R and plasma-derived AT.
  • Employed gel-based and kinetic assays to assess FVIIa integrity and activity.
  • Conducted experiments under pseudo-first order conditions with excess serpin over protease, with and without TF and heparin.

Main Results:

  • Both AT and API M358R formed stable inhibitory complexes with FVIIa, accelerated by tissue factor (TF).
  • Heparin was required for maximal AT activity against FVIIa, but not for API M358R.
  • API M358R inhibited FVIIa with a second-order rate constant of 7.8 × 10^2 M⁻¹sec⁻¹ (heparin-independent).

Conclusions:

  • API M358R inhibits FVIIa more rapidly than AT in the absence of heparin, forming serpin-type inhibitory complexes.
  • The higher concentration of API M358R during inflammation suggests it may contribute to bleeding tendencies in individuals with this mutation.

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