A Review of Suggested Mechanisms of MHC Odor Signaling

Manfred Milinski1

  • 1Max Planck Institute for Evolutionary Biology, 24306 Plön, Germany.

Biology
|August 26, 2022
PubMed

Insights

Mice and humans prefer mates with dissimilar immune genes (MHC). This preference is signaled by MHC-derived peptides, not by gut bacteria, guiding mate selection for optimal offspring immunity.

Area of Science:

  • Immunogenetics
  • Behavioral Ecology
  • Olfactory Neuroscience

Background:

  • Mate choice significantly impacts offspring immunity and survival.
  • Major Histocompatibility Complex (MHC) genes influence individual resistance and mate preference.
  • The chemical signals mediating MHC-dependent mate choice have been debated, with microbiota and MHC molecules as candidates.

Purpose of the Study:

  • To identify the specific chemical cues responsible for MHC-dependent mate choice.
  • To test the 'MHC peptide hypothesis' against alternative explanations like microbiota signaling.
  • To understand the mechanism by which olfactory perception conveys MHC information.

Main Methods:

  • Experiments with inbred mice demonstrating preference for MHC-dissimilar mates.
  • Testing the role of microbiota by using germ-free mice.
  • Synthesizing and presenting MHC peptides and their variants to assess their effect on mate choice.
  • Investigating human brain responses to self-peptides.

Main Results:

  • Mice consistently prefer MHC-dissimilar mates, a preference maintained even without microbiota.
  • Synthesized MHC peptides, but not mutated versions, significantly influence mate choice.
  • Human brains detect smelled synthesized self-peptides.
  • MHC-compatible sperm selection observed in sticklebacks optimizes offspring genetic combinations.

Conclusions:

  • MHC-derived peptides are the key info-chemicals for MHC-dependent mate choice.
  • The olfactory system perceives MHC identity through peptide anchors in a 'key-lock' mechanism.
  • This precise signaling ensures selection of mates that maximize offspring heterozygosity and resistance.

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