Wright's shifting balance theory and the diversification of aposematic signals.
Despite accumulating evidence for selection within natural systems, the importance of random genetic drift opposing Wright's and Fisher's views of evolution continue to be a subject of controversy. The geographical diversification of aposematic signals appears to be a suitable system to as...
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doaj-bc1e3df60ddd4e90ad3118a8c2f7bdd42020-11-25T01:45:53ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0173e3402810.1371/journal.pone.0034028Wright's shifting balance theory and the diversification of aposematic signals.Mathieu ChouteauBernard AngersDespite accumulating evidence for selection within natural systems, the importance of random genetic drift opposing Wright's and Fisher's views of evolution continue to be a subject of controversy. The geographical diversification of aposematic signals appears to be a suitable system to assess the factors involved in the process of adaptation since both theories were independently proposed to explain this phenomenon. In the present study, the effects of drift and selection were assessed from population genetics and predation experiments on poison-dart frogs, Ranitomaya imitator, of Northern Peru. We specifically focus on the transient zone between two distinct aposematic signals. In contrast to regions where high predation maintains a monomorphic aposematic signal, the transient zones are characterized by lowered selection and a high phenotypic diversity. As a result, the diversification of phenotypes may occur via genetic drift without a significant loss of fitness. These new phenotypes may then colonize alternative habitats if successfully recognized and avoided by predators. This study highlights the interplay between drift and selection as determinant processes in the adaptive diversification of aposematic signals. Results are consistent with the expectations of the Wright's shifting balance theory and represent, to our knowledge, the first empirical demonstration of this highly contested theory in a natural system.http://europepmc.org/articles/PMC3314693?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mathieu Chouteau Bernard Angers |
spellingShingle |
Mathieu Chouteau Bernard Angers Wright's shifting balance theory and the diversification of aposematic signals. PLoS ONE |
author_facet |
Mathieu Chouteau Bernard Angers |
author_sort |
Mathieu Chouteau |
title |
Wright's shifting balance theory and the diversification of aposematic signals. |
title_short |
Wright's shifting balance theory and the diversification of aposematic signals. |
title_full |
Wright's shifting balance theory and the diversification of aposematic signals. |
title_fullStr |
Wright's shifting balance theory and the diversification of aposematic signals. |
title_full_unstemmed |
Wright's shifting balance theory and the diversification of aposematic signals. |
title_sort |
wright's shifting balance theory and the diversification of aposematic signals. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2012-01-01 |
description |
Despite accumulating evidence for selection within natural systems, the importance of random genetic drift opposing Wright's and Fisher's views of evolution continue to be a subject of controversy. The geographical diversification of aposematic signals appears to be a suitable system to assess the factors involved in the process of adaptation since both theories were independently proposed to explain this phenomenon. In the present study, the effects of drift and selection were assessed from population genetics and predation experiments on poison-dart frogs, Ranitomaya imitator, of Northern Peru. We specifically focus on the transient zone between two distinct aposematic signals. In contrast to regions where high predation maintains a monomorphic aposematic signal, the transient zones are characterized by lowered selection and a high phenotypic diversity. As a result, the diversification of phenotypes may occur via genetic drift without a significant loss of fitness. These new phenotypes may then colonize alternative habitats if successfully recognized and avoided by predators. This study highlights the interplay between drift and selection as determinant processes in the adaptive diversification of aposematic signals. Results are consistent with the expectations of the Wright's shifting balance theory and represent, to our knowledge, the first empirical demonstration of this highly contested theory in a natural system. |
url |
http://europepmc.org/articles/PMC3314693?pdf=render |
work_keys_str_mv |
AT mathieuchouteau wrightsshiftingbalancetheoryandthediversificationofaposematicsignals AT bernardangers wrightsshiftingbalancetheoryandthediversificationofaposematicsignals |
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