Abstract
<jats:p> Most genetic diversity stems from spontaneous mutations, that is, errors in DNA repair or replication. But for dozens of organisms across the tree of life, mutations at specific loci are not spontaneous but developmentally programmed: effectively, some organisms edit their own DNA sequences. This is perhaps most common among pathogens and parasites, many of which use editing to diversify genes that produce important antigens. Plant-parasitic potato cyst nematodes are damaging agricultural pests that establish a lifelong feeding site inside the root of their host plant. We previously observed extensive diversity of rare alleles at <jats:italic>HYP1</jats:italic> , the most highly expressed gene that encodes a protein secreted by potato cyst nematodes during parasitism. Importantly, <jats:italic>HYP1</jats:italic> alleles differ from each other by complex, in-frame rearrangements of short repeated sequence motifs within a single exon. Combining several lines of evidence, we previously hypothesized that potato cyst nematodes use developmentally-programmed mutations, or editing, to diversify <jats:italic>HYP1</jats:italic> alleles in the soma. In the current work, we now test this hypothesis. We employ highly accurate long-read DNA sequencing of a simplified genetic system to identify potential rare edited alleles, we use a transgenic yeast system to describe large <jats:italic>de novo</jats:italic> mutations at <jats:italic>HYP1</jats:italic> , and we interpret our findings in light of key population genetic parameters as well as the genetic diversity surrounding <jats:italic>HYP1</jats:italic> and across the genome. </jats:p>