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Speciation is the evolutionary process resulting in the formation of new, distinct species—groups of reproductively isolated populations.The genetics of speciation involves the different traits or isolating mechanisms preventing gene exchange, leading to reproductive isolation. Reproductive isolation can be due to reproductive barriers that have effects either before or after the formation of a zygote. Pre-zygotic mechanisms prevent fertilization from occurring, and post-zygotic mechanisms...
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Related Experiment Video

Updated: Jun 6, 2026

Following the Dynamics of Structural Variants in Experimentally Evolved Populations
04:52

Following the Dynamics of Structural Variants in Experimentally Evolved Populations

Published on: February 3, 2023

Population-specific links between heterozygosity and the rate human microsatellite evolution.

William Amos1

  • 1Department of Zoology, University of Cambridge, Downing Street, Cambridge CB2 3EJ, UK. w.amos@zoo.cam.ac.uk

Journal of Molecular Evolution
|December 17, 2010
PubMed
Summary

Human microsatellite evolution shows predictable length variations linked to population size and heterozygosity. Larger populations with higher genetic diversity exhibit longer microsatellites during expansion and shorter ones during contraction, revealing insights into historical demography.

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Last Updated: Jun 6, 2026

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Area of Science:

  • Genetics
  • Human Evolution
  • Population Genetics

Background:

  • Microsatellites are abundant DNA sequences widely used as genetic markers.
  • Human microsatellite length shows a predictable decline with distance from Africa, correlating with reduced genetic variability during global colonization.
  • Previous studies suggest heterozygosity influences microsatellite evolution rates.

Purpose of the Study:

  • To test if variations in demographic history cause individual populations to lead or lag global trends in microsatellite length.
  • To investigate the relationship between population size, heterozygosity, and microsatellite evolution rates.

Main Methods:

  • Analysis of microsatellite length variation across global human populations.
  • Statistical modeling to assess the impact of heterozygosity and population size on microsatellite evolution.
  • Controlling for the stepwise decline in heterozygosity and allele lengths globally.

Main Results:

  • Microsatellite length variation predictably correlates with population size and local heterozygosity.
  • Larger populations with higher heterozygosity show longer microsatellites during expansion and shorter ones during contraction.
  • These patterns persist even after accounting for global trends in genetic variability.

Conclusions:

  • Human genetic variability distribution may be discontinuous.
  • Individual populations exhibit distinct average rates of microsatellite evolution.
  • Microsatellite evolution patterns offer a novel approach to studying historical human demography.