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Gene swamping alters evolution during range expansions in the protist Tetrahymena thermophila
- Source :
- Biology Letters, Biology Letters, Royal Society, The, 2020, 16 (6), pp.20200244. ⟨10.1098/rsbl.2020.0244⟩, Biology Letters, 2020, 16 (6), pp.20200244. ⟨10.1098/rsbl.2020.0244⟩, Biol Lett
- Publication Year :
- 2020
- Publisher :
- HAL CCSD, 2020.
-
Abstract
- At species’ range edges, individuals often face novel environmental conditions that may limit range expansion until populations adapt. The potential to adapt depends on genetic variation upon which selection can act. However, populations at species’ range edges are often genetically depauperate. One mechanism increasing genetic variation is reshuffling existing variation through sex. Sex, however, can potentially limit adaptation by breaking up existing beneficial allele combinations (recombination load). The gene swamping hypothesis predicts this is specifically the case when populations expand along an abiotic gradient and asymmetric dispersal leads to numerous maladapted dispersers from the range core swamping the range edge. We used the ciliate Tetrahymena thermophila as a model for testing the gene swamping hypothesis. We performed replicated range expansions in landscapes with or without a pH-gradient, while simultaneously manipulating the occurrence of gene flow and sexual versus asexual reproduction. We show that sex accelerated evolution of local adaptation in the absence of gene flow, but hindered it in the presence of gene flow. However, sex affected adaptation independently of the pH-gradient, indicating that both abiotic gradients and the biotic gradient in population density lead to gene swamping. Overall, our results show that gene swamping alters adaptation in life-history strategies.
- Subjects :
- 0106 biological sciences
1101 Agricultural and Biological Sciences (miscellaneous)
Range (biology)
[SDV]Life Sciences [q-bio]
1100 General Agricultural and Biological Sciences
medicine.disease_cause
010603 evolutionary biology
01 natural sciences
Tetrahymena thermophila
Gene flow
UFSP13-7 Evolution in Action: From Genomes to Ecosystems
10127 Institute of Evolutionary Biology and Environmental Studies
03 medical and health sciences
Reproduction, Asexual
Genetic variation
medicine
Ph gradient
Humans
sex
Gene
range expansion
pH gradient
ComputingMilieux_MISCELLANEOUS
Local adaptation
030304 developmental biology
Population Density
Abiotic component
2. Zero hunger
Evolutionary Biology
0303 health sciences
biology
Tetrahymena
Protist
15. Life on land
biology.organism_classification
Adaptation, Physiological
Agricultural and Biological Sciences (miscellaneous)
Evolutionary biology
570 Life sciences
590 Animals (Zoology)
Biological dispersal
Adaptation
gene swamping
General Agricultural and Biological Sciences
gene flow
Subjects
Details
- Language :
- English
- ISSN :
- 17449561
- Database :
- OpenAIRE
- Journal :
- Biology Letters, Biology Letters, Royal Society, The, 2020, 16 (6), pp.20200244. ⟨10.1098/rsbl.2020.0244⟩, Biology Letters, 2020, 16 (6), pp.20200244. ⟨10.1098/rsbl.2020.0244⟩, Biol Lett
- Accession number :
- edsair.doi.dedup.....27a676e5863e0f8e201e4af0a1e8d1e5