Rapid Evolution of Reproductive Isolation in the Wild: Evidence from Introduced Salmon
Colonization of new environments should promote rapid speciation as a by-product of adaptation to divergent selective regimes. Although this process of ecological speciation is known to have occurred over millennia or centuries, nothing is known about how quickly reproductive isolation actually evol...
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Published in: | Science (American Association for the Advancement of Science) Vol. 290; no. 5491; pp. 516 - 518 |
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Main Authors: | , , , , |
Format: | Journal Article |
Language: | English |
Published: |
Washington, DC
American Society for the Advancement of Science
20-10-2000
American Association for the Advancement of Science The American Association for the Advancement of Science |
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Abstract | Colonization of new environments should promote rapid speciation as a by-product of adaptation to divergent selective regimes. Although this process of ecological speciation is known to have occurred over millennia or centuries, nothing is known about how quickly reproductive isolation actually evolves when new environments are first colonized. Using DNA microsatellites, population-specific natural tags, and phenotypic variation, we tested for reproductive isolation between two adjacent salmon populations of a common ancestry that colonized divergent reproductive environments (a river and a lake beach). We found evidence for the evolution of reproductive isolation after fewer than 13 generations. |
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AbstractList | Colonization of new environments should promote rapid speciation as a by-product of adaptation to divergent selective regimes. Although this process of ecological speciation is known to have occurred over millennia or centuries, nothing is known about how quickly reproductive isolation actually evolves when new environments are first colonized. Colonization of new environments should promote rapid speciation as a by-product of adaptation to divergent selective regimes. Although this process of ecological speciation is known to have occurred over millennia or centuries, nothing is known about how quickly reproductive isolation actually evolves when new environments are first colonized. Using DNA microsatellites, population-specific natural tags, and phenotypic variation, we tested for reproductive isolation between two adjacent salmon populations of a common ancestry that colonized divergent reproductive environments (a river and a lake beach). We found evidence for the evolution of reproductive isolation after fewer than 13 generations. Colonization of new environments should promote rapid speciation as a byproduct of adaptation to divergent selective regimes. Although this process of ecological speciation is known to have occurred over millennia or centuries, nothing is known about how quickly reproductive isolation actually evolves when new environments are first colonized. Using DNA microsatellites, population-specific natural tags, and phenotypic variation, we tested for reproductive isolation between two adjacent salmon populations of a common ancestry that colonized divergent reproductive environments (a river and a lake beach). We found evidence for the evolution of reproductive isolation after fewer than 13 generations. Experts believe that colonization of new environments will act to encourage rapid speciation due to adaptive responses to diverse selective regimes. This process of ecological speciation has occurred over millennia or centuries. However, little is known concerning how quickly reproductive isolation evolves following initial colonization of new environments. Findings are presented from a study investigating the development of reproductive isolation between two adjacent populations of salmon of a common ancestry that colonized different reproductive environments. Data considered in the project included information from DNA microsatellites, population-specific natural tags, and phenotypic isolation. Reproductive isolation may occur in as little as 13 generations. |
Audience | Academic |
Author | Quinn, Thomas P. Hendry, Andrew P. Wenburg, John K. Volk, Eric C. Bentzen, Paul |
Author_xml | – sequence: 1 givenname: Andrew P. surname: Hendry fullname: Hendry, Andrew P. – sequence: 2 givenname: John K. surname: Wenburg fullname: Wenburg, John K. – sequence: 3 givenname: Paul surname: Bentzen fullname: Bentzen, Paul – sequence: 4 givenname: Eric C. surname: Volk fullname: Volk, Eric C. – sequence: 5 givenname: Thomas P. surname: Quinn fullname: Quinn, Thomas P. |
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Keywords | Salmonidae Oncorhynchus nerka Vertebrata Introduced species Reproductive isolation Pisces Biological evolution Animal population Speciation |
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Snippet | Colonization of new environments should promote rapid speciation as a by-product of adaptation to divergent selective regimes. Although this process of... Colonization of new environments should promote rapid speciation as a byproduct of adaptation to divergent selective regimes. Although this process of... Experts believe that colonization of new environments will act to encourage rapid speciation due to adaptive responses to diverse selective regimes. This... |
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SubjectTerms | Adaptation (Biology) Adults Alleles Animal populations Animal reproduction Animals Beaches Biological and medical sciences Biological Evolution Breeding Deoxyribonucleic acid DNA Ecosystem Evidence Evolution Evolutionary adaptation Female Fish Freshwater Fundamental and applied biological sciences. Psychology Gene flow Genetic loci Genetic Variation Genetics Genetics of eukaryotes. Biological and molecular evolution Genetics, Population Immigration Individualized Instruction Isolating mechanisms Laboratory Experiments Male Marine Microsatellite Repeats Migration Oncorhynchus nerka Phenotype Porosity Reproduction Reproduction (Biology) Reproductive isolating mechanisms Reproductive isolation Salmon Salmon - genetics Salmon - physiology Salmonidae Sand soils Sedimentary soils Sexual Behavior, Animal Soil pore systems Speciation Washington |
Title | Rapid Evolution of Reproductive Isolation in the Wild: Evidence from Introduced Salmon |
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