Mitonuclear Mismatch is Associated With Increased Male Frequency, Outcrossing, and Male Sperm Size in

Brent W Bever1, Zachary P Dietz1, Jennifer A Sullins1

  • 1Department of Biology, Portland State University, Portland, OR, United States.

Frontiers in Genetics
|April 1, 2022
PubMed

Insights

Mitonuclear mismatch in C. elegans can drive the evolution of increased male frequency and outcrossing, especially in selfing populations. This adaptation may help populations with low ancestral fitness overcome mitochondrial dysfunction.

Area of Science:

  • Evolutionary Biology
  • Genetics
  • Mitochondrial Biology

Background:

  • Mitonuclear interactions are crucial for cellular function, and their mismatch can impact organismal fitness.
  • The mitonuclear sex hypothesis proposes that mitonuclear incompatibility influences sexual selection and reproductive strategies.
  • Previous studies suggest electron transport chain (ETC) gene mutations can affect C. elegans fitness and reproductive traits.

Purpose of the Study:

  • To partially test the mitonuclear sex hypothesis by examining the evolution of male frequencies and outcrossing rates.
  • To investigate the effects of mitonuclear mismatch on populations with different sexual systems (facultative outcrossing, obligate selfing, obligate outcrossing).
  • To determine if reproductive mode influences the evolutionary dynamics of mitonuclear genomes and adaptation to mitochondrial dysfunction.

Main Methods:

  • Evolved replicate lineages of C. elegans with nuclear or mitochondrial ETC gene mutations under three sexual systems.
  • Monitored male frequencies, outcrossing rates, male sperm size, mating success, and self-crossed reproductive fitness over generations.
  • Utilized wildtype, obligately selfing, and obligately outcrossing strains, including specific ETC mutants (isp-1, cox-1, ctb-1) and mitonuclear double mutants.

Main Results:

  • Facultatively outcrossing lines with ETC mutations evolved increased male frequency, which facilitated outcrossing in some cases.
  • Male frequency evolution was dependent on ancestral fitness; beneficial in low-fitness lines (gas-1) but less so or deleterious in higher-fitness lines (cox-1).
  • Obligately selfing lines showed substantial fitness increases, while obligately outcrossing lines showed no significant fitness evolution, suggesting reproductive mode impacts adaptation.

Conclusions:

  • Reproductive mode significantly affects the evolutionary response to mitonuclear mismatch and mitochondrial dysfunction.
  • Increased male frequency and outcrossing can be adaptive strategies for populations with low ancestral fitness facing mitochondrial challenges.
  • This study provides a foundation for testing compensatory mutation effects and the broader role of reproductive strategies in mitonuclear genome evolution.

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