Cargando…

The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system

A common goal in evolutionary biology is to discern the mechanisms that produce the astounding diversity of morphologies seen across the tree of life. Aposematic species, those with a conspicuous phenotype coupled with some form of defence, are excellent models to understand the link between vivid c...

Descripción completa

Detalles Bibliográficos
Autores principales: Stuckert, Adam M. M., Chouteau, Mathieu, McClure, Melanie, LaPolice, Troy M., Linderoth, Tyler, Nielsen, Rasmus, Summers, Kyle, MacManes, Matthew D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8457190/
https://www.ncbi.nlm.nih.gov/pubmed/34145931
http://dx.doi.org/10.1111/mec.16024
_version_ 1784571034859470848
author Stuckert, Adam M. M.
Chouteau, Mathieu
McClure, Melanie
LaPolice, Troy M.
Linderoth, Tyler
Nielsen, Rasmus
Summers, Kyle
MacManes, Matthew D.
author_facet Stuckert, Adam M. M.
Chouteau, Mathieu
McClure, Melanie
LaPolice, Troy M.
Linderoth, Tyler
Nielsen, Rasmus
Summers, Kyle
MacManes, Matthew D.
author_sort Stuckert, Adam M. M.
collection PubMed
description A common goal in evolutionary biology is to discern the mechanisms that produce the astounding diversity of morphologies seen across the tree of life. Aposematic species, those with a conspicuous phenotype coupled with some form of defence, are excellent models to understand the link between vivid colour pattern variations, the natural selection shaping it, and the underlying genetic mechanisms underpinning this variation. Mimicry systems in which multiple species share the same conspicuous phenotype can provide an even better model for understanding the mechanisms of colour production in aposematic species, especially if comimics have divergent evolutionary histories. Here we investigate the genetic mechanisms by which vivid colour and pattern are produced in a Müllerian mimicry complex of poison frogs. We did this by first assembling a high‐quality de novo genome assembly for the mimic poison frog Ranitomeya imitator. This assembled genome is 6.8 Gbp in size, with a contig N50 of 300 Kbp R. imitator and two colour morphs from both Ranitomeya fantastica and R. variabilis which R. imitator mimics. We identified a large number of pigmentation and patterning genes that are differentially expressed throughout development, many of them related to melanocyte development, melanin synthesis, iridophore development and guanine synthesis. Polytypic differences within species may be the result of differences in expression and/or timing of expression, whereas convergence for colour pattern between species does not appear to be due to the same changes in gene expression. In addition, we identify the pteridine synthesis pathway (including genes such as qdpr and xdh) as a key driver of the variation in colour between morphs of these species. Finally, we hypothesize that genes in the keratin family are important for producing different structural colours within these frogs.
format Online
Article
Text
id pubmed-8457190
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-84571902021-09-28 The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system Stuckert, Adam M. M. Chouteau, Mathieu McClure, Melanie LaPolice, Troy M. Linderoth, Tyler Nielsen, Rasmus Summers, Kyle MacManes, Matthew D. Mol Ecol Original Articles A common goal in evolutionary biology is to discern the mechanisms that produce the astounding diversity of morphologies seen across the tree of life. Aposematic species, those with a conspicuous phenotype coupled with some form of defence, are excellent models to understand the link between vivid colour pattern variations, the natural selection shaping it, and the underlying genetic mechanisms underpinning this variation. Mimicry systems in which multiple species share the same conspicuous phenotype can provide an even better model for understanding the mechanisms of colour production in aposematic species, especially if comimics have divergent evolutionary histories. Here we investigate the genetic mechanisms by which vivid colour and pattern are produced in a Müllerian mimicry complex of poison frogs. We did this by first assembling a high‐quality de novo genome assembly for the mimic poison frog Ranitomeya imitator. This assembled genome is 6.8 Gbp in size, with a contig N50 of 300 Kbp R. imitator and two colour morphs from both Ranitomeya fantastica and R. variabilis which R. imitator mimics. We identified a large number of pigmentation and patterning genes that are differentially expressed throughout development, many of them related to melanocyte development, melanin synthesis, iridophore development and guanine synthesis. Polytypic differences within species may be the result of differences in expression and/or timing of expression, whereas convergence for colour pattern between species does not appear to be due to the same changes in gene expression. In addition, we identify the pteridine synthesis pathway (including genes such as qdpr and xdh) as a key driver of the variation in colour between morphs of these species. Finally, we hypothesize that genes in the keratin family are important for producing different structural colours within these frogs. John Wiley and Sons Inc. 2021-07-16 2021-08 /pmc/articles/PMC8457190/ /pubmed/34145931 http://dx.doi.org/10.1111/mec.16024 Text en © 2021 The Authors. Molecular Ecology published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Articles
Stuckert, Adam M. M.
Chouteau, Mathieu
McClure, Melanie
LaPolice, Troy M.
Linderoth, Tyler
Nielsen, Rasmus
Summers, Kyle
MacManes, Matthew D.
The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system
title The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system
title_full The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system
title_fullStr The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system
title_full_unstemmed The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system
title_short The genomics of mimicry: Gene expression throughout development provides insights into convergent and divergent phenotypes in a Müllerian mimicry system
title_sort genomics of mimicry: gene expression throughout development provides insights into convergent and divergent phenotypes in a müllerian mimicry system
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8457190/
https://www.ncbi.nlm.nih.gov/pubmed/34145931
http://dx.doi.org/10.1111/mec.16024
work_keys_str_mv AT stuckertadammm thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT chouteaumathieu thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT mccluremelanie thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT lapolicetroym thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT linderothtyler thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT nielsenrasmus thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT summerskyle thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT macmanesmatthewd thegenomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT stuckertadammm genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT chouteaumathieu genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT mccluremelanie genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT lapolicetroym genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT linderothtyler genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT nielsenrasmus genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT summerskyle genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem
AT macmanesmatthewd genomicsofmimicrygeneexpressionthroughoutdevelopmentprovidesinsightsintoconvergentanddivergentphenotypesinamullerianmimicrysystem