# Sex-Specific Selection Drives the Evolution of Alternative Splicing in Birds

**Authors:** Thea F Rogers, Daniela H Palmer, Alison E Wright

PMC · DOI: 10.1093/molbev/msaa242 · 2020-09-25

## TL;DR

This study shows that sex-specific selection influences alternative splicing in birds, contributing to the evolution of sexual dimorphism.

## Contribution

The paper reveals that sex-specific selection drives rapid evolution of alternative splicing, offering a new mechanism for sex-specific adaptation.

## Key findings

- Hundreds of genes show sex-specific splicing patterns in birds.
- Sex differences in splicing correlate with phenotypic sex differences.
- Alternatively spliced genes evolve rapidly due to sex-specific selection.

## Abstract

Males and females of the same species share the majority of their genomes, yet they are frequently exposed to conflicting selection pressures. Gene regulation is widely assumed to resolve these conflicting sex-specific selection pressures, and although there has been considerable focus on elucidating the role of gene expression level in sex-specific adaptation, other regulatory mechanisms have been overlooked. Alternative splicing enables different transcripts to be generated from the same gene, meaning that exons which have sex-specific beneficial effects can in theory be retained in the gene product, whereas exons with detrimental effects can be skipped. However, at present, little is known about how sex-specific selection acts on broad patterns of alternative splicing. Here, we investigate alternative splicing across males and females of multiple bird species. We identify hundreds of genes that have sex-specific patterns of splicing and establish that sex differences in splicing are correlated with phenotypic sex differences. Additionally, we find that alternatively spliced genes have evolved rapidly as a result of sex-specific selection and suggest that sex differences in splicing offer another route to sex-specific adaptation when gene expression level changes are limited by functional constraints. Overall, our results shed light on how a diverse transcriptional framework can give rise to the evolution of phenotypic sexual dimorphism.

## Full-text entities

- **Diseases:** Dimorphism (MESH:D015439)
- **Chemicals:** DSG (MESH:C037258)
- **Species:** Numididae sp. (species) [taxon 8997], Anas platyrhynchos (duck, species) [taxon 8839], Numida meleagris (helmeted guineafowl, species) [taxon 8996], Taeniopygia guttata (zebra finch, species) [taxon 59729], Gallus gallus (bantam, species) [taxon 9031], Drosophila melanogaster (fruit fly, species) [taxon 7227], Meleagris gallopavo (common turkey, species) [taxon 9103]
- **Cell lines:** S2 — Drosophila melanogaster (Fruit fly), Spontaneously immortalized cell line (CVCL_Z232)

## Figures

4 figures with captions in the complete paper: https://tomesphere.com/paper/PMC7826194/full.md

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Source: https://tomesphere.com/paper/PMC7826194