Trans-Acting Genotypes Associated with mRNA Expression Affect Metabolic and Thermal Tolerance Traits

Author:

Drown Melissa K1ORCID,Oleksiak Marjorie F1,Crawford Douglas L1ORCID

Affiliation:

1. Department of Marine Biology and Ecology, Rosenstiel School of Marine, Atmospheric, and Earth Science, University of Miami , Miami, Florida , USA

Abstract

Abstract Evolutionary processes driving physiological trait variation depend on the underlying genomic mechanisms. Evolution of these mechanisms depends on the genetic complexity (involving many genes) and how gene expression impacting the traits is converted to phenotype. Yet, genomic mechanisms that impact physiological traits are diverse and context dependent (e.g., vary by environment and tissues), making them difficult to discern. We examine the relationships between genotype, mRNA expression, and physiological traits to discern the genetic complexity and whether the gene expression affecting the physiological traits is primarily cis- or trans-acting. We use low-coverage whole genome sequencing and heart- or brain-specific mRNA expression to identify polymorphisms directly associated with physiological traits and expressed quantitative trait loci (eQTL) indirectly associated with variation in six temperature specific physiological traits (standard metabolic rate, thermal tolerance, and four substrate specific cardiac metabolic rates). Focusing on a select set of mRNAs belonging to co-expression modules that explain up to 82% of temperature specific traits, we identified hundreds of significant eQTL for mRNA whose expression affects physiological traits. Surprisingly, most eQTL (97.4% for heart and 96.7% for brain) were trans-acting. This could be due to higher effect size of trans- versus cis-acting eQTL for mRNAs that are central to co-expression modules. That is, we may have enhanced the identification of trans-acting factors by looking for single nucleotide polymorphisms associated with mRNAs in co-expression modules that broadly influence gene expression patterns. Overall, these data indicate that the genomic mechanism driving physiological variation across environments is driven by trans-acting heart- or brain-specific mRNA expression.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics,Ecology, Evolution, Behavior and Systematics

Reference96 articles.

1. The role of regulatory variation in complex traits and disease;Albert;Nat Rev Genet,2015

2. The genetic basis of flowering responses to seasonal cues;Andres;Nat Rev Genet,2012

3. Genome-wide, whole mount in situ analysis of transcriptional regulators in zebrafish embryos;Armant;Dev Biol,2013

4. Repeatability of metabolic rate is lower for animals living under field versus laboratory conditions;Auer;J Exp Biol,2016

5. The quantitative genetics of sustained energy budget in a wild mouse;Bacigalupe;Evolution,2004

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