Related Experiment Video
Updated: Jan 19, 2026
Mutation, Gene Flow, and Genetic Drift
Genetic drift during the spread phase of a biological invasion
Nadège Bélouard1,2, Jean-Marc Paillisson1, Adrien Oger1
1UMR ECOBIO, CNRS, Université de Rennes 1, Rennes, France.
Abstract:
Recent theoretical and experimental models have revealed the role played by evolution during species spread, and in particular have questioned the influence of genetic drift at range edges. By investigating the spread of an aquatic invader in patchy habitats, we quantified genetic drift and explored its consequences for genetic diversity and fitness. We examined the interplay of gene flow and genetic drift in 36 populations of the red swamp crayfish, Procambarus clarkii, in a relatively recently invaded wetland area (30 years, Brière, northwest France). Despite the small spatial scale of our study (15 km2 ), populations were highly structured according to the strong barrier of land surfaces and revealed a clear pattern of colonization through watercourses. Isolated populations exhibited small effective sizes and low dispersal rates that depended on water connectivity, suggesting that genetic drift dominated in the evolution of allele frequencies in these populations. We also observed a significant decrease in the genetic diversity of isolated populations over only a 2-year period, but failed to demonstrate an associated fitness cost using fluctuating asymmetry. This study documents the possible strong influence of genetic drift during the spread of a species, and such findings provide critical insights into the current context of profound rearrangements in species distributions due to global change.
Related Concept Videos
Mutation, Gene Flow, and Genetic Drift
Genetic Drift
Hardy-Weinberg and Genetic Drift
For example, changes to the frequency of genetic...
Hardy-Weinberg and Genetic Drift
Mathematical ModelingExpand
Hardy-Weinberg and Genetic Drift
ExpandBegin by opening a new spreadsheet file. Following the Hardy-Weinberg equation where p is the frequency of a dominant allele A in a population, and q is defined as the frequency of a recessive allele B, input frequency p of allele A into cell B2, and frequency q of allele B into cell B3.
Assign the value 0.5 to cell C2.
Following the 1 – p = q equation, enter the formula “= 1 – C2” into cell C3 to calculate the frequency q of allele B. NOTE: Cells...
17:50Preventing the Spread of Malaria and Dengue Fever Using Genetically Modified Mosquitoes