VaSP1, catalytically active serine proteinase from Vipera ammodytes ammodytes venom with unconventional active site

Tihana Kurtović1, Marija Brgles1, Adrijana Leonardi2

  • 1University of Zagreb, Centre for Research and Knowledge Transfer in Biotechnology, Rockefellerova 10, 10 000 Zagreb, Croatia.

Insights

Vipera ammodytes ammodytes venom serine proteinase 1 (VaSP1) exhibits proteolytic activity despite lacking a canonical catalytic triad. This novel enzyme degrades key hemostasis proteins, suggesting potential anticoagulant properties.

Area of Science:

  • Biochemistry
  • Enzymology
  • Venom research

Background:

  • Snake venom serine proteinases (SVSPs) are a diverse group of enzymes.
  • Many SVSPs possess proteolytic activity crucial for envenomation.
  • Few SVSPs lacking the canonical catalytic triad have been characterized.

Purpose of the Study:

  • To characterize the novel serine proteinase VaSP1 from Vipera ammodytes ammodytes venom.
  • To investigate its enzymatic activity and substrate specificity.
  • To explore its potential role in hemostasis and anticoagulant effects.

Main Methods:

  • Purification and characterization of VaSP1.
  • Mass spectrometry (MALDI-TOF, MS/MS) and Edman degradation for protein sequencing.
  • Enzyme kinetics assays using chromogenic substrates and insulin B-chain.
  • Coagulation assays (prothrombin time, activated partial thromboplastin time).

Main Results:

  • VaSP1 is a 31.5 kDa glycosylated monomer with multiple isoelectric points.
  • It possesses proteolytic activity inhibited by specific inhibitors and metal ions.
  • VaSP1 efficiently cleaves fibrinogen, fibrin, prothrombin, factor X, and plasminogen.
  • The enzyme prolongs prothrombin time and activated partial thromboplastin time.

Conclusions:

  • VaSP1 is a unique serine proteinase homologue with proteolytic activity despite lacking the catalytic triad.
  • Its degradation of coagulation factors suggests a significant role in venom's hemostatic effects.
  • VaSP1 demonstrates potential anticoagulant properties, warranting further investigation.

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