No postcopulatory selection against MHC-homozygous offspring: Evidence from a pedigreed captive rhesus macaque colony

E H M Sterck1,2, R E Bontrop3,4, N de Groot3

  • 1Department of Animal Ecology, Utrecht University, Utrecht, The Netherlands.

Molecular Ecology
|April 25, 2017
PubMed

Insights

Increased major histocompatibility complex (MHC) heterozygosity enhances pathogen defense. This study found no selection against MHC-homozygous offspring in rhesus monkeys, but identified altered MHC haplotype inheritance patterns.

Area of Science:

  • Immunogenetics
  • Evolutionary Biology
  • Primate Genetics

Background:

  • Major histocompatibility complex (MHC) heterozygosity is crucial for immune defense against diverse pathogens.
  • Pre- and postcopulatory mechanisms may influence MHC diversity.
  • MHC homozygous offspring could be disfavored in populations with shared MHC haplotypes.

Purpose of the Study:

  • To investigate the role of MHC heterozygosity and postcopulatory selection in a rhesus monkey colony.
  • To determine if MHC-homozygous individuals are selected against.
  • To analyze the inheritance patterns of MHC haplotypes.

Main Methods:

  • Studied a pedigreed, partially consanguineous captive rhesus monkey colony.
  • Determined the incidence of MHC-heterozygous and MHC-homozygous individuals.
  • Utilized Bayesian statistics to analyze MHC haplotype distributions.

Main Results:

  • MHC heterozygosity and homozygosity distributions followed Mendelian expectations when parents shared MHC haplotypes.
  • No evidence of postcopulatory selection against MHC-homozygous individuals was found.
  • Offspring inherited MHC haplotypes differently from mothers versus fathers, with maternal haplotype combinations being underrepresented.

Conclusions:

  • Postcopulatory processes influence MHC haplotype combinations in rhesus monkey offspring.
  • Selection does not appear to prevent low MHC heterozygosity in this population.
  • Inheritance biases suggest complex regulation of MHC haplotype transmission.

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