Diverse Gene Regulatory Mechanisms Alter Rattlesnake Venom Gene Expression at Fine Evolutionary Scales

Author:

Gopalan Siddharth S1,Perry Blair W12,Francioli Yannick Z1,Schield Drew R3,Guss Hannah D1,Bernstein Justin M1,Ballard Kaas1,Smith Cara F4,Saviola Anthony J4,Adams Richard H5,Mackessy Stephen P6,Castoe Todd A1

Affiliation:

1. Department of Biology, University of Texas at Arlington , Arlington, TX 76019 , USA

2. School of Biological Sciences, Washington State University , Pullman, WA 99164 , USA

3. Department of Biology, University of Virginia , Charlottesville, VA 22903, USA

4. Department of Biochemistry and Molecular Genetics, University of Colorado Denver , Aurora, CO 80045 , USA

5. Department of Entomology and Plant Pathology, University of Arkansas Agricultural Experimental Station, University of Arkansas , Fayetteville, AR 72701 , USA

6. Department of Biological Sciences, University of Northern Colorado , Greeley, CO 80639 , USA

Abstract

Abstract Understanding and predicting the relationships between genotype and phenotype is often challenging, largely due to the complex nature of eukaryotic gene regulation. A step towards this goal is to map how phenotypic diversity evolves through genomic changes that modify gene regulatory interactions. Using the Prairie Rattlesnake (Crotalus viridis) and related species, we integrate mRNA-seq, proteomic, ATAC-seq and whole-genome resequencing data to understand how specific evolutionary modifications to gene regulatory network components produce differences in venom gene expression. Through comparisons within and between species, we find a remarkably high degree of gene expression and regulatory network variation across even a shallow level of evolutionary divergence. We use these data to test hypotheses about the roles of specific trans-factors and cis-regulatory elements, how these roles may vary across venom genes and gene families, and how variation in regulatory systems drive diversity in venom phenotypes. Our results illustrate that differences in chromatin and genotype at regulatory elements play major roles in modulating expression. However, we also find that enhancer deletions, differences in transcription factor expression, and variation in activity of the insulator protein CTCF also likely impact venom phenotypes. Our findings provide insight into the diversity and gene-specificity of gene regulatory features and highlight the value of comparative studies to link gene regulatory network variation to phenotypic variation.

Publisher

Oxford University Press (OUP)

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