An introgressed gene causes meiotic drive in Neurospora sitophila

Jesper Svedberg1,2, Aaron A Vogan3, Nicholas A Rhoades4

  • 1Department of Organismal Biology, Evolutionary Biology Centre (EBC), Uppsala University, 752 36 Uppsala, Sweden; jsvedberg@gmail.com hanna.johannesson@ebc.uu.se.

Insights

Researchers identified the Spk-1 gene in Neurospora sitophila responsible for spore killing via meiotic drive. This gene acts as both a poison and an antidote, influencing fungal population genetics and evolution.

Area of Science:

  • Genetics
  • Evolutionary Biology
  • Mycology

Background:

  • Meiotic drive elements bias inheritance.
  • Spore killing is a form of meiotic drive in fungi.
  • The Sk-1 element is prevalent in Neurospora sitophila populations.

Purpose of the Study:

  • Identify the gene underlying the Sk-1 spore killer element in N. sitophila.
  • Characterize the function and origin of the identified gene.
  • Investigate the interaction of spore killing with host genome defense mechanisms.

Main Methods:

  • Long- and short-read genomic data generation.
  • Genome-wide association testing.
  • Molecular dissection and phylogenetic analysis.
  • Investigation of meiotic silencing by unpaired DNA.

Main Results:

  • The gene Spk-1 was identified as responsible for Sk-1 spore killing.
  • Spk-1 encodes a single open reading frame producing a dual-action poison-antidote.
  • Phylogenetic analysis suggests Spk-1 originated from N. hispaniola.
  • Spore killing is suppressed by the meiotic silencing by unpaired DNA pathway.
  • Spk-1 is evolutionarily distinct from other known meiotic drive genes.

Conclusions:

  • Spk-1 represents a novel class of meiotic drive genes within the Neurospora genus.
  • The study elucidates the genetic basis, origin, and evolutionary dynamics of a fungal meiotic drive system.
  • Interactions between meiotic drive and host genome defense pathways are highlighted.

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