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McDermott, K. L.

Publications and source records attributed to McDermott, K. L..

2 recordsLinked to original sources

Orthologs of an essential orphan gene vary in their capacities for function and subcellular localization in Drosophila melanogaster

Orphan genes evolve rapidly, raising questions about whether their functions remain conserved or diverge across species. To address this, we investigated goddard (gdrd), an orphan gene essential for spermatogenesis in Drosophila melanogaster. Within the Drosophila genus, Gdrd proteins retain a conserved core structure but display substantial variation in length and primary sequence. Here we perform cross-species gene-swap assays in D. melanogaster testes to examine how these lineage-specific changes affect Gdrd function. Strikingly, the highly divergent D. mojavensis ortholog fully rescues fertility in gdrd null flies, suggesting that ancestral Gdrd acted within a conserved spermatogenesis pathway. By contrast, several orthologs, including one from a more closely related species, cannot substitute for the melanogaster gene. Cytological analysis shows that all divergent Gdrd orthologs retain some ability to interact with axonemes and ring centrioles, consistent with the proteins structural conservation, but many non-complementing orthologs display weaker axonemal binding. Furthermore, all tested orthologs exhibit divergent localizations to organellar structures. Using computational analyses and molecular dynamics simulations, we identified intrinsic protein qualities that may account for several observations made in the gene swap assays. Rescuing orthologs bear motifs with shared physicochemical properties in their intrinsically disordered regions, while non-rescuing variants exhibit structural instabilities. Taken together, these findings show that while Gdrds ancestral structure and interactions are conserved, several orthologs have undergone lineage-specific evolutionary changes.

genetics↗

A newly evolved gene is essential for efficient sperm entry into eggs in Drosophila melanogaster

While spermatogenesis has been extensively characterized in the Drosophila melanogaster model system, very little is known about the genes required for fly sperm entry into eggs. We identified a lineage-specific gene, which we named katherine johnson (kj), that is required for efficient fertilization. Males that do not express kj produce and transfer sperm that are stored normally in females, but sperm from these males enter eggs with severely reduced efficiency. Using a tagged transgenic rescue construct, we observed that the KJ protein localizes around the edge of the nucleus at various stages of spermatogenesis but is undetectable in mature sperm. These data suggest that kj exerts an effect on sperm development, the loss of which results in reduced fertilization ability. Interestingly, KJ protein lacks detectable sequence similarity to any other known protein, suggesting that kj could be a lineage-specific orphan gene. While previous bioinformatic analyses indicated that kj was restricted to the melanogaster group of Drosophila, we identified putative orthologs with conserved synteny, male-biased expression, and predicted protein features across the genus, as well as likely instances of gene loss in some lineages. Thus, kj was likely present in the Drosophila common ancestor and subsequently evolved an essential role in fertility in D. melanogaster. Our results demonstrate a new aspect of male reproduction that has been shaped by a lineage-specific gene and provide a molecular foothold for further investigating the mechanism of sperm entry into eggs in Drosophila. Article SummaryHow fruit fly sperm enter eggs is poorly understood. Here, we identify a gene required for efficient fertilization. Sperm from males lacking this genes function cannot enter eggs. The gene appears to act during sperm production, rather than in mature sperm. Interestingly, the gene is undetectable outside of genus Drosophila, and its encoded protein shows no discernable similarity to other proteins. This study provides insights into sperm-egg interactions and illustrates how lineage-specific genes can impact important aspects of reproduction.

genetics↗