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Updated: Aug 15, 2026

Manipulation of Ploidy in Caenorhabditis elegans
Published on: March 15, 2018
A threefold genetic allee effect: population size affects cross-compatibility, inbreeding depression and drift load
Yvonne Willi1, Josh Van Buskirk, Markus Fischer
1Institute of Environmental Sciences, University of Zürich, Switzerland. williy@uwinst.unizh.ch
Abstract:
A decline in population size can lead to the loss of allelic variation, increased inbreeding, and the accumulation of genetic load through drift. We estimated the fitness consequences of these processes in offspring of controlled within-population crosses from 13 populations of the self-incompatible, clonal plant Ranunculus reptans. We used allozyme allelic richness as a proxy for long-term population size, which was positively correlated with current population size. Crosses between plants of smaller populations were less likely to be compatible. Inbreeding load, assessed as the slope of the relationship between offspring performance and parental kinship coefficients, was not related to population size, suggesting that deleterious mutations had not been purged from small populations. Offspring from smaller populations were on average more inbred, so inbreeding depression in clonal fitness was higher in small populations. We estimated variation in drift load from the mean fitness of outbred offspring and found enhanced drift load affecting female fertility within small populations. We conclude that self-incompatibility systems do not necessarily prevent small populations from suffering from inbreeding depression and drift load and may exacerbate the challenge of finding suitable mates.
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