Effects of fine-scale population structure on the distribution of heterozygosity in a long-term study of Antirrhinum majus

Author:

Surendranadh Parvathy1ORCID,Arathoon Louise1ORCID,Baskett Carina A1ORCID,Field David L2ORCID,Pickup Melinda13ORCID,Barton Nicholas H1ORCID

Affiliation:

1. IST Austria , 3400 Klosterneuburg, Austria

2. School of Science, Edith Cowan University , Joondalup WA 6027, Australia

3. Greening Australia , Perth, WA 6000, Australia

Abstract

Abstract Many studies have quantified the distribution of heterozygosity and relatedness in natural populations, but few have examined the demographic processes driving these patterns. In this study, we take a novel approach by studying how population structure affects both pairwise identity and the distribution of heterozygosity in a natural population of the self-incompatible plant Antirrhinum majus. Excess variance in heterozygosity between individuals is due to identity disequilibrium, which reflects the variance in inbreeding between individuals; it is measured by the statistic g2. We calculated g2 together with FST and pairwise relatedness (Fij) using 91 SNPs in 22,353 individuals collected over 11 years. We find that pairwise Fij declines rapidly over short spatial scales, and the excess variance in heterozygosity between individuals reflects significant variation in inbreeding. Additionally, we detect an excess of individuals with around half the average heterozygosity, indicating either selfing or matings between close relatives. We use 2 types of simulation to ask whether variation in heterozygosity is consistent with fine-scale spatial population structure. First, by simulating offspring using parents drawn from a range of spatial scales, we show that the known pollen dispersal kernel explains g2. Second, we simulate a 1,000-generation pedigree using the known dispersal and spatial distribution and find that the resulting g2 is consistent with that observed from the field data. In contrast, a simulated population with uniform density underestimates g2, indicating that heterogeneous density promotes identity disequilibrium. Our study shows that heterogeneous density and leptokurtic dispersal can together explain the distribution of heterozygosity.

Funder

Marie Curie COFUND Doctoral Fellowship and Austrian Science Fund FWF

Publisher

Oxford University Press (OUP)

Subject

Genetics

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