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Related Concept Videos

Gene Flow02:39

Gene Flow

Gene flow is the transfer of genes among populations, resulting from either the dispersal of gametes or from the migration of individuals.
Migration00:53

Migration

Migration is long-range, seasonal movement from one region or habitat to another. This common strategy, carried out by many different organisms around the world, is an adaptive response that typically corresponds to changes in an organism’s environment, like resource availability or climate. Migrations can involve huge groups of thousands of animals as well as single individuals traveling alone and can range from thousands of kilometers to just a few hundred meters.
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Genetic Drift

Natural selection—probably the most well-known evolutionary mechanism—increases the prevalence of traits that enhance survival and reproduction. However, evolution does not merely propagate favorable traits, nor does it always benefit populations.Life is not fair. A deer grazing contentedly in a field can have her meal cut tragically short by a bolt of lightning. If the doomed doe is one of only three in the population, 1/3 of the population’s gene pool is lost. Random events like this can...
What are Populations and Communities?00:30

What are Populations and Communities?

Populations are groups of individuals of the same species that inhabit a shared environment. Communities include multiple co-existing, interacting populations of different species. Metapopulations span multiple populations of the same species that occupy different areas. Metapopulations interact through immigration and emigration, providing genetic diversity that lends resilience to harsh environments. Population size and density can be estimated using quadrat and mark and recapture...
Mutation, Gene Flow, and Genetic Drift01:09

Mutation, Gene Flow, and Genetic Drift

In a population that is not at Hardy-Weinberg equilibrium, the frequency of alleles changes over time. Therefore, any deviations from the five conditions of Hardy-Weinberg equilibrium can alter the genetic variation of a given population. Conditions that change the genetic variability of a population include mutations, natural selection, non-random mating, gene flow, and genetic drift (small population size).Mechanisms of Genetic VariationThe original sources of genetic variation are mutations,...
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Population Growth

Population size is dynamic, increasing with birth rates and immigration, and decreasing with death rates and emigration. In ideal conditions with unlimited resources, populations can increase exponentially, which plots as a J-shaped growth rate curve of population size against time. This type of curve is characteristic of newly-introduced invasive species, or populations that have suffered catastrophic declines and are rebounding.However, realistic environmental conditions limit the number of...

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Evolution of dispersal in metapopulations with local density dependence and demographic stochasticity.

Journal of evolutionary biology·2003
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Invasion dynamics and attractor inheritance.

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Predicting the Effectiveness of Population Replacement Strategy Using Mathematical Modeling
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Published on: July 4, 2007

Evolution of migration in a metapopulation.

K Parvinen1

  • 1Institute of Applied Mathematics, University of Turku, FIN-20014 Turku, Finland. kalparvi@utu.fi

Bulletin of Mathematical Biology
|September 22, 2007
PubMed
Summary

This study analyzes metapopulation dynamics using adaptive dynamics. Results show selection favors low migration, especially with low survival probability, but high survival can lead to evolutionary branching.

Area of Science:

  • Ecology
  • Evolutionary Biology
  • Mathematical Biology

Background:

  • Metapopulation models are crucial for understanding species persistence in fragmented habitats.
  • Adaptive dynamics provides a framework for studying evolutionary change within ecological models.

Purpose of the Study:

  • To analyze a general deterministic discrete-time metapopulation model using adaptive dynamics.
  • To analytically prove conditions under which migration strategies evolve.

Main Methods:

  • Analysis of a general deterministic discrete-time metapopulation model.
  • Application of adaptive dynamics principles.
  • Analytical proofs and numerical simulations.

Main Results:

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  • No migration is an evolutionarily stable strategy when resident populations are at a fixed point.
  • Low migration is favored under small mutational steps and low survival probability.
  • High survival probability can lead to evolutionary branching and coexistence of types, particularly in two-cyclic orbit cases.
  • Conclusions:

    • Migration strategies in metapopulations are sensitive to population dynamics and survival probabilities.
    • Adaptive dynamics can analytically predict evolutionary outcomes in complex ecological systems.
    • Environmental factors like survival rates significantly influence the evolution of dispersal and biodiversity.