Massive programmed DNA elimination during embryogenesis in the trioecious nematode Auanema rhodense
Gonzalez de la Rosa, P. M.; Strand, L. G.; Stevens, L.; Keininger, M.; Collins, J.; Johansen, M.; Chan, T. W.; Adams, S.; Villeneuve, A. M.; Pires da Silva, A.; Blaxter, M.
Show abstract
In animals, the germline is usually set aside early in development and its genome is protected to ensure faithful transmission of genetic information to future generations. Genetic alterations in somatic cells are not inherited by progeny, and the somatic genome does not have to be protected from change in the same way. In some species, programmed DNA elimination (PDE) results in the directed loss of genetic material from somatic cells. Here, we report extreme PDE in Auanema rhodense, a free-living nematode with a remarkable, trioecious life history and unusual patterns of sex chromosome inheritance. We find that nearly two thirds of the A. rhodense germline genome is eliminated from somatic cells, with DNA lost from chromosome ends as well as within chromosomes, resulting in fragmentation of the seven germline chromosomes into fourteen somatic chromosomes. Most eliminated DNA comprises multi-megabase tandem repeat blocks. Eliminated DNA on the X chromosome harbours germline-restricted repeats that are distinct from those on the autosomes. The eliminated DNA includes many highly-repeated non-coding RNA loci but few protein-coding genes. Elimination sites are strongly associated with a palindromic sequence motif that likely directs DNA breakage and new telomere repeat array addition. Cytologically, PDE begins at the 12-cell stage of embryogenesis, is synchronous across all chromosomes, and is characterised by the formation of transient micronucleus-like bodies. Together, these findings reveal unusually extensive PDE in a free-living nematode and raise the possibility that germline-restricted repeat architecture may contribute to the atypical sex chromosome inheritance observed in Auanema.
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