Published August 31, 2021 | Version v1
Dataset Open

Temperature predicts the rate of molecular evolution in Australian Eugongylinae skinks

  • 1. Indonesia International Institute for Life Sciences
  • 2. Australian National University
  • 3. Royal Botanic Garden Sydney
  • 4. National Cancer Institute

Description

Temperature differences over time and space has been hypothesized to cause variation in the rate of molecular evolution of species, but empirical evidence is mixed. To further test this hypothesis, we utilized a large exon-capture sequence data of Australian Eugongylinae skinks, exemplifying a radiation of temperature-sensitive ectotherms spanning a large latitudinal gradient. The association between temperature (and other species traits) and long-term substitution rate was assessed based on 1268 sequenced exons of 44 species pairs from the Eugongylinae subfamily using regression analyses. Temperature is the strongest, positively-correlated predictor of variation in substitution rate across the Australian Eugongylinae. It explains 45% of variation in synonymous substitution rate, and 11% after controlling for all the other factors. Synonymous substitution rate is also negatively associated with body size, with 6% variation explained by body size after controlling for the effects of temperature. Other factors are not associated with synonymous substitution rate after controlling for temperature. Overall, this study points to temperature as a strong predictor of the molecular evolution rate in the Eugongylinae subfamily, and demonstrates the power of large-scale exonic data to identify correlates of the rate of molecular evolution.

Notes

ALL_concat_loci.fasta
Sequence alignment of 435 samples (and 8 outgroups) from 135 species of Eugongylinae subfamily in FASTA format. The README file contains additional information of the data.

Funding provided by: Australian Research Council
Crossref Funder Registry ID: http://dx.doi.org/10.13039/501100000923
Award Number: FL110100104

Files

README.txt

Files (300.4 MB)

Name Size Download all
md5:ae10c922d209a8bbe20bc09bc205cbb8
300.4 MB Download
md5:6f37e8b87ea1b3d7913071916e638f64
440 Bytes Preview Download