Related Experiment Video
Updated: May 7, 2026

Resurrection of Dormant Daphnia magna: Protocol and Applications
Published on: January 19, 2018
Stage-structured cycles promote genetic diversity in a predator-prey system of Daphnia and algae
William A Nelson1, Edward McCauley, Frederick J Wrona
1Ecology Division, University of Calgary, Calgary, Alberta T2N 1N4, Canada. wanelson@ucalgary.ca
Abstract:
Competition theory predicts that population fluctuations can promote genetic diversity when combined with density-dependent selection. However, this stabilizing mechanism has rarely been tested, and was recently rejected as an explanation for maintaining diversity in natural populations of the freshwater herbivore Daphnia pulex. The primary limitation of competition theory is its failure to account for the alternative types of population cycles that are caused by size- or stage-dependent population vital rates--even though such structure both explains the fluctuating dynamics of many species and may alter the outcome of competition. Here we provide the first experimental test of whether alternative types of cycles affect natural selection in predator-prey systems. Using competing Daphnia genotypes, we show that internally generated, stage-structured cycles substantially reduce the magnitude of selection (thereby contributing to the maintenance of genetic diversity), whereas externally forced cycles show rapid competitive exclusion. The change in selection is ecologically significant, spanning the observed range in natural populations. We argue that structured cycles reduce selection through a combination of stalled juvenile development and stage-specific mortality. This potentially general fitness-equalizing mechanism may reduce the need for strong stabilizing mechanisms to explain the maintenance of genetic diversity in natural systems.
Related Concept Videos
Positive Regulator Molecules
Life Histories
Energy Budgets
Mutation, Gene Flow, and Genetic Drift
Predator-Prey Interactions
Diversity of Protists IV

