Adaptive evolution of the venom-targeted vWF protein in opossums that eat pitvipers

PLoS One. 2011;6(6):e20997. doi: 10.1371/journal.pone.0020997. Epub 2011 Jun 22.

Abstract

The rapid evolution of venom toxin genes is often explained as the result of a biochemical arms race between venomous animals and their prey. However, it is not clear that an arms race analogy is appropriate in this context because there is no published evidence for rapid evolution in genes that might confer toxin resistance among routinely envenomed species. Here we report such evidence from an unusual predator-prey relationship between opossums (Marsupialia: Didelphidae) and pitvipers (Serpentes: Crotalinae). In particular, we found high ratios of replacement to silent substitutions in the gene encoding von Willebrand Factor (vWF), a venom-targeted hemostatic blood protein, in a clade of opossums known to eat pitvipers and to be resistant to their hemorrhagic venom. Observed amino-acid substitutions in venom-resistant opossums include changes in net charge and hydrophobicity that are hypothesized to weaken the bond between vWF and one of its toxic snake-venom ligands, the C-type lectin-like protein botrocetin. Our results provide the first example of rapid adaptive evolution in any venom-targeted molecule, and they support the notion that an evolutionary arms race might be driving the rapid evolution of snake venoms. However, in the arms race implied by our results, venomous snakes are prey, and their venom has a correspondingly defensive function in addition to its usual trophic role.

Publication types

  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Adaptation, Physiological / genetics*
  • Amino Acid Sequence
  • Animals
  • Bayes Theorem
  • Binding Sites
  • Crotalid Venoms / metabolism
  • Evolution, Molecular*
  • Feeding Behavior*
  • Models, Molecular
  • Molecular Sequence Data
  • Opossums / genetics*
  • Phylogeny
  • Protein Structure, Tertiary
  • Quantitative Trait, Heritable
  • Selection, Genetic
  • Viper Venoms / metabolism*
  • Viperidae / physiology*
  • von Willebrand Factor / chemistry
  • von Willebrand Factor / genetics*

Substances

  • Crotalid Venoms
  • Viper Venoms
  • von Willebrand Factor
  • botrocetin

Associated data

  • GENBANK/FJ159328
  • GENBANK/FJ159329
  • GENBANK/FJ159330
  • GENBANK/FJ159331
  • GENBANK/FJ159332
  • GENBANK/FJ159333
  • GENBANK/FJ159334
  • GENBANK/FJ159335
  • GENBANK/FJ159336
  • GENBANK/FJ159337
  • GENBANK/FJ159338
  • GENBANK/FJ159339
  • GENBANK/FJ159340
  • GENBANK/FJ159341
  • GENBANK/FJ159342
  • GENBANK/FJ159343
  • GENBANK/FJ159344
  • GENBANK/FJ159345
  • GENBANK/FJ159346
  • GENBANK/FJ159347
  • GENBANK/FJ159348
  • GENBANK/FJ159349
  • GENBANK/FJ159350
  • GENBANK/FJ159351
  • GENBANK/FJ159352
  • GENBANK/FJ159353
  • GENBANK/FJ159354
  • GENBANK/FJ159355
  • GENBANK/FJ159356
  • GENBANK/FJ159357
  • GENBANK/FJ159358
  • GENBANK/FJ159359
  • GENBANK/FJ159360
  • GENBANK/FJ159361
  • GENBANK/FJ159362
  • GENBANK/FJ159363
  • GENBANK/FJ159364
  • GENBANK/FJ159365
  • GENBANK/FJ159366
  • GENBANK/FJ159367
  • GENBANK/FJ159368
  • GENBANK/FJ159369
  • GENBANK/FJ159370