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First Class Lecture notes Concepts in Evolution

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Population structure and migration lecture notes

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POPULATION STRUCTURE AND MIGRATION
POPULATION STRUCTURE
 Population structure: the location in which individuals are observed (e.g. islands) matters in terms of genetic
variation.
 Recall the island example in which isolated populations fixed different alleles by genetic drift
 The resulting set of subpopulations represent a ‘structured population’ in which allele frequencies
vary across subpopulations
 How does structure arise, what reduces structure and how can we describe structure?
ORIGINS OF POPULATION STRUCTURE
 Genetic drift - isolated populations drift independently to different allele frequencies.
 Selection in which different subpopulations experience selection
favouring different alleles
DRIFT
 If nothing else happens (no migration/ selection), islands are
expected to become genetically different. Drift is a background
process.
 An event separates populations into sub-populations.



MEASURING POPULATION STRUCTURE
 We saw ‘F’ when we considered inbreeding
 F = measure of distribution of alleles in a population into genotypes (proportion of homo/heterozygotes)
 Wright created a series of F statistics to describe various deviations from Hardy-Weinberg expectations:
- H-W predicts that random mating leads to a certain distribution of genotype frequencies (p2, q2, 2pq)
 For a set of subpopulations, compare the level of heterozygosity expected if they were a single random
mating population (HT) to what we actually observe (HS)

, - In metapopulations, different populations have different allele frequencies therefore H-W proportions are
not seen.
- F measures deviation from these H-W proportions: how different are allele frequencies from p2, q2, 2pq?
F AND INBREEDING:
 We saw F is the proportional reduction in heterozygosity due to inbreeding (compared to that expected in a
random mating population) – alleles being sampled to make individuals
- Heterozygosity just means allelic variation/ genetic diversity ( H Exp  H Obs )
 - This is FIS:
F IS 
H Exp
 Heterozygosity expected if population was randomly mating – heterozygosity
observed when population is inbreeding / expected heterozygosity


F AND POPULATION STRUCTURE:
 FST is the variance in allele frequencies across populations: how
much of the variation is within populations and how much is
between populations?
 FST = heterozygosity expected if individuals were all part of the
same population – heterozygosity observed when separated into
sub-populations/ expected heterozygosity
 If no heterozygosity is observed (HS = 0), this means that all the
variation is between H  HS
populations rather FST  T than var( p ) within, so FST = 1. This is a structured
population. H T
FST 
 FST as a reduction in heterozygosity:
pq

 FST as a measure of differences (variation in allele
frequencies) between populations

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