Parallel evolution of ancient, pleiotropic enhancers underlies butterfly wing pattern mimicry.
basic_science · Level V
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- Record sourced from PubMed, PMID 31712408.
- Also identified by DOI 10.1073/pnas.1907068116 and PMC identifier 6883815.
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Abstract
Color pattern mimicry in <i>Heliconius</i> butterflies is a classic case study of complex trait adaptation via selection on a few large effect genes. Association studies have linked color pattern variation to a handful of noncoding regions, yet the presumptive cis-regulatory elements (CREs) that control color patterning remain unknown. Here we combine chromatin assays, DNA sequence associations, and genome editing to functionally characterize 5 cis-regulatory elements of the color pattern gene <i>optix</i> We were surprised to find that the cis-regulatory architecture of <i>optix</i> is characterized by pleiotropy and regulatory fragility, where deletion of individual cis-regulatory elements has broad effects on both color pattern and wing vein development. Remarkably, we found orthologous cis-regulatory elements associate with wing pattern convergence of distantly related comimics, suggesting that parallel coevolution of ancestral elements facilitated pattern mimicry. Our results support a model of color pattern evolution in <i>Heliconius</i> where changes to ancient, multifunctional cis-regulatory elements underlie adaptive radiation.
Medical subject headings
- Butterflies
- Enhancer Elements, Genetic
- Genetic Pleiotropy
- Pigmentation
- Wings, Animal