Skip to main navigation Skip to search Skip to main content

Selection against Heteroplasmy Explains the Evolution of Uniparental Inheritance of Mitochondria

Research output: Contribution to journalArticlepeer-review

38 Citations (Scopus)

Abstract

Why are mitochondria almost always inherited from one parent during sexual reproduction? Current explanations for this evolutionary mystery include conflict avoidance between the nuclear and mitochondrial genomes, clearing of deleterious mutations, and optimization of mitochondrial-nuclear coadaptation. Mathematical models, however, fail to show that uniparental inheritance can replace biparental inheritance under any existing hypothesis. Recent empirical evidence indicates that mixing two different but normal mitochondrial haplotypes within a cell (heteroplasmy) can cause cell and organism dysfunction. Using a mathematical model, we test if selection against heteroplasmy can lead to the evolution of uniparental inheritance. When we assume selection against heteroplasmy and mutations are neither advantageous nor deleterious (neutral mutations), uniparental inheritance replaces biparental inheritance for all tested parameter values. When heteroplasmy involves mutations that are advantageous or deleterious (non-neutral mutations), uniparental inheritance can still replace biparental inheritance. We show that uniparental inheritance can evolve with or without pre-existing mating types. Finally, we show that selection against heteroplasmy can explain why some organisms deviate from strict uniparental inheritance. Thus, we suggest that selection against heteroplasmy explains the evolution of uniparental inheritance.
Original languageEnglish
Article numbere1005112
Pages (from-to)1-30
JournalPLoS Genetics
Volume11
Issue number4
DOIs
Publication statusPublished - 2015

Keywords

  • Population, Ecological and Evolutionary Genetics
  • Biological Mathematics

Fingerprint

Dive into the research topics of 'Selection against Heteroplasmy Explains the Evolution of Uniparental Inheritance of Mitochondria'. Together they form a unique fingerprint.

Cite this