Skip to main navigation Skip to search Skip to main content

When one phenotype is not enough: divergent evolutionary trajectories govern venom variation in a widespread rattlesnake species

  • Giulia Zancolli
  • , Juan J. Calvete
  • , Michael D. Cardwell
  • , Harry W. Greene
  • , William K. Hayes
  • , Matthew J. Hegarty
  • , Hans-Werner Herrmann
  • , Andrew T. Holycross
  • , Dominic I. Lannutti
  • , John F. Mulley
  • , Libia Sanz
  • , Zachary D. Travis
  • , Joshua R. Whorley
  • , Catharine E. Wuster
  • , Wolfgang Wuster
  • San Diego State University
  • Cornell University
  • Loma Linda University
  • University of Arizona, Tucson
  • Arizona State University
  • University of Texas at El Paso
  • Seattle Central College
  • Instituto de Biomedicina de Valencia
  • Aberystwyth University

Research output: Contribution to journalArticlepeer-review

137 Downloads (Pure)

Abstract

Understanding the origin and maintenance of phenotypic variation, particularly across a continuous spatial distribution, represents a key challenge in evolutionary biology. For this, animal venoms represent ideal study systems: they are complex, variable, yet easily quantifiable molecular phenotypes with a clear function. Rattlesnakes display tremendous variation in their venom composition, mostly through strongly dichotomous venom strategies, which may even coexist within a single species. Here, through dense, widespread population-level sampling of the Mojave rattlesnake, Crotalus scutulatus, we show that genomic structural variation at multiple loci underlies extreme geographical variation in venom composition, which is maintained despite extensive gene flow. Unexpectedly, neither diet composition nor neutral population structure explain venom variation. Instead, venom divergence is strongly correlated with environmental conditions. Individual toxin genes correlate with distinct environmental factors, suggesting that different selective pressures can act on individual loci independently of their co-expression patterns or genomic proximity. Our results challenge common assumptions about diet composition as the key selective driver of snake venom evolution and emphasize how the interplay between genomic architecture and local-scale spatial heterogeneity in selective pressures may facilitate the retention of adaptive functional polymorphisms across a continuous space.
Original languageEnglish
Pages (from-to)20182735
JournalProceedings of the Royal Society B: Biological Sciences
Volume286
Issue number1898
Early online date13 Mar 2019
DOIs
Publication statusPublished - 13 Mar 2019

Keywords

  • Animals
  • Arizona
  • Biological Evolution
  • California
  • Crotalid Venoms/genetics
  • Crotalus/genetics
  • Diet
  • Environment
  • Gene-Environment Interaction
  • Genotype
  • Phenotype
  • Population Dynamics

Fingerprint

Dive into the research topics of 'When one phenotype is not enough: divergent evolutionary trajectories govern venom variation in a widespread rattlesnake species'. Together they form a unique fingerprint.

Cite this