The Diversity of Bioactive Proteins in Australian Snake Venoms

peer-reviewed · Molecular & Cellular Proteomics · 2007

peer-reviewed · Molecular & Cellular Proteomics · 2007. Geoff W. Birrell et al. Australian elapid snakes are among the most venomous in the world. Their venoms contain multiple components…
Date 2007-06-01
Type peer-reviewed
Venue Molecular & Cellular Proteomics
Publisher Elsevier BV
Contribution downstream-application
DOI 10.1074/mcp.m600419-mcp200
Citations (OpenAlex) 101
Venue 2-year citedness 4.69

Abstract

Australian elapid snakes are among the most venomous in the world. Their venoms contain multiple components that target blood hemostasis, neuromuscular signaling, and the cardiovascular system. We describe here a comprehensive approach to separation and identification of the venom proteins from 18 of these snake species, representing nine genera. The venom protein components were separated by two-dimensional PAGE and identified using mass spectrometry and de novo peptide sequencing. The venoms are complex mixtures showing up to 200 protein spots varying in size from 10. These include many proteins identified previously in Australian snake venoms, homologs identified in other snake species, and some novel proteins. In many cases multiple trains of spots were typically observed in the higher molecular mass range (>20 kDa) (indicative of post-translational modification). Venom proteins and their post-translational modifications were characterized using specific antibodies, phosphoprotein- and glycoprotein-specific stains, enzymatic digestion, lectin binding, and antivenom reactivity. In the lower molecular weight range, several proteins were identified, but the predominant species were phospholipase A2 and alpha-neurotoxins, both represented by different sequence variants. The higher molecular weight range contained proteases, nucleotidases, oxidases, and homologs of mammalian coagulation factors. This information together with the identification of several novel proteins (metalloproteinases, vespryns, phospholipase A2 inhibitors, protein-disulfide isomerase, 5’-nucleotidases, cysteine-rich secreted proteins, C-type lectins, and acetylcholinesterases) aids in understanding the lethal mechanisms of elapid snake venoms and represents a valuable resource for future development of novel human therapeutics.

Authors

  1. Geoff W. Birrell · QIMR Berghofer Medical Research Institute, The University of Queensland
  2. Stephen Earl · QIMR Berghofer Medical Research Institute, The University of Queensland
  3. Tristan P. Wallis · Institute for Molecular Bioscience, QIMR Berghofer Medical Research Institute, The University of Queensland
  4. Paul P. Masci · The University of Queensland
  5. John de Jersey · The University of Queensland
  6. Jeffrey J. Gorman · Institute for Molecular Bioscience, QIMR Berghofer Medical Research Institute, The University of Queensland
  7. Martin F. Lavin · QIMR Berghofer Medical Research Institute, The University of Queensland

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