Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation
Natural selection leaves distinct signatures in the genome that can reveal the targets and history of adaptive evolution. By analysing high-coverage genome sequence data from 4 major colour pattern loci sampled from nearly 600 individuals in 53 populations, we show pervasive selection on wing patter...
- Autores:
- Tipo de recurso:
- Fecha de publicación:
- 2020
- Institución:
- Universidad del Rosario
- Repositorio:
- Repositorio EdocUR - U. Rosario
- Idioma:
- eng
- OAI Identifier:
- oai:repository.urosario.edu.co:10336/22820
- Acceso en línea:
- https://doi.org/10.1371/journal.pbio.3000597
https://repository.urosario.edu.co/handle/10336/22820
- Palabra clave:
- Adaptive radiation
Butterfly
Coevolution
Female
Genetic variability
Human
Human experiment
Human tissue
Introgression
Major clinical study
Male
Nonhuman
Predator
Selective sweep
Simulation
Turnover rate
Volcano
Wing
- Rights
- License
- Abierto (Texto Completo)
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652e9ca2-3d2d-4df3-b6a3-7795cc168c259c053d80-fbe1-4eed-b6f0-41ca371fe842fabcb785-7c4c-4fce-8b73-7a5c2ec311c7ccf50b0a-1aea-457e-ab8e-b068befe242d1615e6be-660d-42f0-9abe-71891ee0cd8afa01dece-34d8-44fb-a83c-180e584820a85851ab81-fb7d-45f9-8108-2cf9cd90663d6b26d030-156c-40a4-870b-82ce591895305d11c0bc-2d7b-46ef-ac05-6b9c0b6de934ea188e6e-678b-4290-8aaa-cb2ebf9c4311a4f04058-0f30-4170-bdb3-38b70c021830798737576002020-05-25T23:58:12Z2020-05-25T23:58:12Z2020Natural selection leaves distinct signatures in the genome that can reveal the targets and history of adaptive evolution. By analysing high-coverage genome sequence data from 4 major colour pattern loci sampled from nearly 600 individuals in 53 populations, we show pervasive selection on wing patterns in the Heliconius adaptive radiation. The strongest signatures correspond to loci with the greatest phenotypic effects, consistent with visual selection by predators, and are found in colour patterns with geographically restricted distributions. These recent sweeps are similar between co-mimics and indicate colour pattern turn-over events despite strong stabilising selection. Using simulations, we compare sweep signatures expected under classic hard sweeps with those resulting from adaptive introgression, an important aspect of mimicry evolution in Heliconius butterflies. Simulated recipient populations show a distinct 'volcano' pattern with peaks of increased genetic diversity around the selected target, characteristic of sweeps of introgressed variation and consistent with diversity patterns found in some populations. Our genomic data reveal a surprisingly dynamic history of colour pattern selection and co-evolution in this adaptive radiation. © 2020 Moest et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.application/pdfhttps://doi.org/10.1371/journal.pbio.30005971544917315457885https://repository.urosario.edu.co/handle/10336/22820engPublic Library of ScienceNo. 2PLoS BiologyVol. 18PLoS Biology, ISSN:15449173, 15457885, Vol.18, No.2 (2020)https://www.scopus.com/inward/record.uri?eid=2-s2.0-85080846797&doi=10.1371%2fjournal.pbio.3000597&partnerID=40&md5=2f909295e1c38f2f0d9d8efef115ff51Abierto (Texto Completo)http://purl.org/coar/access_right/c_abf2instname:Universidad del Rosarioreponame:Repositorio Institucional EdocURAdaptive radiationButterflyCoevolutionFemaleGenetic variabilityHumanHuman experimentHuman tissueIntrogressionMajor clinical studyMaleNonhumanPredatorSelective sweepSimulationTurnover rateVolcanoWingSelective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiationarticleArtículohttp://purl.org/coar/version/c_970fb48d4fbd8a85http://purl.org/coar/resource_type/c_6501Moest, MarkusVan Belleghem, Steven M.James, Jennifer E.Martin, Simon H.Barker, Sarah L.Moreira, Gilson R. P.Mérot, ClaireJoron, MathieuNadeau, Nicola J.Steiner, Florian M.Jiggins, Chris DSalazar, CamiloORIGINALjournal-pbio-3000597.pdfapplication/pdf5831901https://repository.urosario.edu.co/bitstreams/6555064b-b1eb-4847-9fe8-ad6dafff519c/download0db3db515e82ad98c6ba0d5964a292f0MD51TEXTjournal-pbio-3000597.pdf.txtjournal-pbio-3000597.pdf.txtExtracted texttext/plain140137https://repository.urosario.edu.co/bitstreams/18d44dc6-72d0-4f79-908f-8e5c40376604/downloadce241f12409302970305cab2264ac48bMD52THUMBNAILjournal-pbio-3000597.pdf.jpgjournal-pbio-3000597.pdf.jpgGenerated Thumbnailimage/jpeg4411https://repository.urosario.edu.co/bitstreams/a2f55cf3-7b72-4675-a1dd-13dcecae6b29/download775d2ebf19d056b3acf680be9805be75MD5310336/22820oai:repository.urosario.edu.co:10336/228202022-08-30 10:22:03.561https://repository.urosario.edu.coRepositorio institucional EdocURedocur@urosario.edu.co |
dc.title.spa.fl_str_mv |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
title |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
spellingShingle |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation Adaptive radiation Butterfly Coevolution Female Genetic variability Human Human experiment Human tissue Introgression Major clinical study Male Nonhuman Predator Selective sweep Simulation Turnover rate Volcano Wing |
title_short |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
title_full |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
title_fullStr |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
title_full_unstemmed |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
title_sort |
Selective sweeps on novel and introgressed variation shape mimicry loci in a butterfly adaptive radiation |
dc.subject.keyword.spa.fl_str_mv |
Adaptive radiation Butterfly Coevolution Female Genetic variability Human Human experiment Human tissue Introgression Major clinical study Male Nonhuman Predator Selective sweep Simulation Turnover rate Volcano Wing |
topic |
Adaptive radiation Butterfly Coevolution Female Genetic variability Human Human experiment Human tissue Introgression Major clinical study Male Nonhuman Predator Selective sweep Simulation Turnover rate Volcano Wing |
description |
Natural selection leaves distinct signatures in the genome that can reveal the targets and history of adaptive evolution. By analysing high-coverage genome sequence data from 4 major colour pattern loci sampled from nearly 600 individuals in 53 populations, we show pervasive selection on wing patterns in the Heliconius adaptive radiation. The strongest signatures correspond to loci with the greatest phenotypic effects, consistent with visual selection by predators, and are found in colour patterns with geographically restricted distributions. These recent sweeps are similar between co-mimics and indicate colour pattern turn-over events despite strong stabilising selection. Using simulations, we compare sweep signatures expected under classic hard sweeps with those resulting from adaptive introgression, an important aspect of mimicry evolution in Heliconius butterflies. Simulated recipient populations show a distinct 'volcano' pattern with peaks of increased genetic diversity around the selected target, characteristic of sweeps of introgressed variation and consistent with diversity patterns found in some populations. Our genomic data reveal a surprisingly dynamic history of colour pattern selection and co-evolution in this adaptive radiation. © 2020 Moest et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. |
publishDate |
2020 |
dc.date.accessioned.none.fl_str_mv |
2020-05-25T23:58:12Z |
dc.date.available.none.fl_str_mv |
2020-05-25T23:58:12Z |
dc.date.created.spa.fl_str_mv |
2020 |
dc.type.eng.fl_str_mv |
article |
dc.type.coarversion.fl_str_mv |
http://purl.org/coar/version/c_970fb48d4fbd8a85 |
dc.type.coar.fl_str_mv |
http://purl.org/coar/resource_type/c_6501 |
dc.type.spa.spa.fl_str_mv |
Artículo |
dc.identifier.doi.none.fl_str_mv |
https://doi.org/10.1371/journal.pbio.3000597 |
dc.identifier.issn.none.fl_str_mv |
15449173 15457885 |
dc.identifier.uri.none.fl_str_mv |
https://repository.urosario.edu.co/handle/10336/22820 |
url |
https://doi.org/10.1371/journal.pbio.3000597 https://repository.urosario.edu.co/handle/10336/22820 |
identifier_str_mv |
15449173 15457885 |
dc.language.iso.spa.fl_str_mv |
eng |
language |
eng |
dc.relation.citationIssue.none.fl_str_mv |
No. 2 |
dc.relation.citationTitle.none.fl_str_mv |
PLoS Biology |
dc.relation.citationVolume.none.fl_str_mv |
Vol. 18 |
dc.relation.ispartof.spa.fl_str_mv |
PLoS Biology, ISSN:15449173, 15457885, Vol.18, No.2 (2020) |
dc.relation.uri.spa.fl_str_mv |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85080846797&doi=10.1371%2fjournal.pbio.3000597&partnerID=40&md5=2f909295e1c38f2f0d9d8efef115ff51 |
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http://purl.org/coar/access_right/c_abf2 |
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Abierto (Texto Completo) |
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Abierto (Texto Completo) http://purl.org/coar/access_right/c_abf2 |
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Public Library of Science |
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Universidad del Rosario |
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