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When is the Allele-sharing Dissimilarity Between Two Populations Exceeded by the Allele-sharing Dissimilarity of a Population with Itself?

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Abstract

Allele-sharing statistics for a genetic locus measure the dissimilarity between two populations as a mean of the dissimilarity between random pairs of individuals, one from each population. Owing to within-population variation in genotype, allele-sharing dissimilarities can have the property that they have a nonzero value when computed between a population and itself. We consider the mathematical properties of allele-sharing dissimilarities in a pair of populations, treating the allele frequencies in the two populations parametrically. Examining two formulations of allele-sharing dissimilarity, we obtain the distributions of within-population and between-population dissimilarities for pairs of individuals. We then mathematically explore the scenarios in which, for certain allele-frequency distributions, the within-population dissimilarity - the mean dissimilarity between randomly chosen members of a population - can exceed the dissimilarity between two populations. Such scenarios assist in explaining observations in population-genetic data that members of a population can be empirically more genetically dissimilar from each other on average than they are from members of another population. For a population pair, however, the mathematical analysis finds that at least one of the two populations always possesses smaller within-population dissimilarity than the value of the between-population dissimilarity. We illustrate the mathematical results with an application to human population-genetic data.

References
1.
Witherspoon D, Wooding S, Rogers A, Marchani E, Watkins W, Batzer M . Genetic similarities within and between human populations. Genetics. 2007; 176(1):351-9. PMC: 1893020. DOI: 10.1534/genetics.106.067355. View

2.
Tal O . Two complementary perspectives on inter-individual genetic distance. Biosystems. 2012; 111(1):18-36. DOI: 10.1016/j.biosystems.2012.07.005. View

3.
Rosenberg N . A population-genetic perspective on the similarities and differences among worldwide human populations. Hum Biol. 2012; 83(6):659-84. PMC: 3531797. DOI: 10.3378/027.083.0601. View

4.
Edge M, Ramachandran S, Rosenberg N . Celebrating 50 years since Lewontin's apportionment of human diversity. Philos Trans R Soc Lond B Biol Sci. 2022; 377(1852):20200405. PMC: 9014183. DOI: 10.1098/rstb.2020.0405. View

5.
Gao X, Martin E . Using allele sharing distance for detecting human population stratification. Hum Hered. 2009; 68(3):182-91. PMC: 2869072. DOI: 10.1159/000224638. View