AI Article Synopsis

  • Conflict is significant in the evolution of social interactions, potentially increasing diversity and speeding up evolution, but its effects on the evolution of social genes are not well understood.
  • A study of 67 Dictyostelium discoideum strains found that social genes show higher variations and accelerated evolution, but these changes are due to relaxed purifying selection rather than conflict.
  • The findings suggest that social interactions’ conditional nature weakens selection pressure on these genes over generations, allowing genetic drift to play a more substantial role, a phenomenon termed the Red King process.

Article Abstract

Conflict is thought to play a critical role in the evolution of social interactions by promoting diversity or driving accelerated evolution. However, despite our sophisticated understanding of how conflict shapes social traits, we have limited knowledge of how it impacts molecular evolution across the underlying social genes. Here we address this problem by analyzing the genome-wide impact of social interactions using genome sequences from 67 Dictyostelium discoideum strains. We find that social genes tend to exhibit enhanced polymorphism and accelerated evolution. However, these patterns are not consistent with conflict driven processes, but instead reflect relaxed purifying selection. This pattern is most likely explained by the conditional nature of social interactions, whereby selection on genes expressed only in social interactions is diluted by generations of inactivity. This dilution of selection by inactivity enhances the role of drift, leading to increased polymorphism and accelerated evolution, which we call the Red King process.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6650454PMC
http://dx.doi.org/10.1038/s41467-019-11237-2DOI Listing

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