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McCormick, B. K.

Publications and source records attributed to McCormick, B. K..

3 recordsLinked to original sources

A method to screen for meiotic drive using embryonic markers

Meiotic drivers are selfish elements which co-opt gametogenesis to increase their own transmission. Driving alleles may spread in a population even if harmful to overall fitness, requiring the emergence of host suppressors to ameliorate these costs. In some cases, intense co-evolutionary arms races between drivers and their host genomes may occur. These conflicts have been invoked to explain the rapid evolution of karyotypes and reproduction-associated proteins across the tree of life. Despite their evolutionary importance, relatively few meiotic drivers have been well-characterized, in large part due to the difficulties inherent to detecting meiotic drivers, distinguishing them from viability effects, and performing systematic screens. To address these gaps, we present an approach to driver detection at the embryo stage in wild-derived D. melanogaster. By combining fluorescent markers with a method to induce embryonic arrest at a standard developmental stage, we detect transmission of wild-derived alleles as compared to their fluorescently marked homologs in early embryos, before most fitness differences among alleles (which may mimic drive) manifest. We provide proof-of-concept for the approach and identify several areas for future improvement.

genetics↗

Correlated Gene Copy Number Changes in a Seminal Fluid Protein Network in Drosophila

Reproductive proteins often diverge rapidly between species, yet network function must be maintained. Shared selective pressures on network members and compensatory changes between members can drive their parallel evolutionary trajectories. Indeed, correlated evolutionary rates of amino acid sequence change have been observed for interacting reproductive proteins. But whether gene copy number changes also correlate has not been widely studied. Here, we investigated copy number variation (CNV) of genes in the Drosophila Sex Peptide Seminal Fluid Protein (Sfp) network. Previous research analyzed CNV of the Sfp Sex Peptide (SP) in Drosophila species. We focus on 9 other Sfps whose function is required to mediate the binding of SP to sperm in D. melanogaster which is required for persistence of female post-mating responses. To exhaustively annotate CNV of genes, we developed a computational pipeline pairing iterative protein queries to genome sequence searches with phylogenetic clustering to resolve homology relationships. We observed that the Sfp networks genes are ancestral to Drosophila and that there were repeated duplications and losses of network members across the genus. We detect statistically significant correlations in gene duplication or loss events among network proteins, and show this can be used to identify new members of the network. We also investigated CNV of female-derived proteins that act downstream of the SP sperm-binding network to modulate SP function, these proteins showed no significant correlation of gene turnover events with SP or its network. Our results provide insight into how evolving reproductive genes tolerate duplication and loss, and how network relationships could constrain reproductive protein evolution. Significance StatementReproductive proteins often diverge rapidly between species, yet network function must be maintained. Shared selective pressures on network members and compensatory changes between members can drive their parallel evolutionary trajectories. We report correlated gene duplication and loss among members of the Drosophila Sex Peptide seminal fluid protein network, suggesting that duplication or loss events may drive corresponding events in other network genes. This work is a natural extension of the idea of evolutionary rate covariation, but instead of scoring rates of substitution it tracks correlated duplication and loss events on the phylogeny. Applied to the Sex Peptide network, the method reveals striking patterns, especially for coordinated loss, and identifies a new network gene that is experimentally confirmed.

evolutionary biology↗

The Stellate meiotic drive system of Drosophila melanogaster is active in contemporary populations

Meiotic drivers are selfish elements that bias their own transmission so that they are overrepresented among the functional gametes produced. The selective costs imposed by drivers on their hosts may trigger intragenomic conflict, promoting the evolution of suppressors and fueling an ongoing arms race between drivers and suppressors. Stellate (Ste) is an X-linked tandemly arrayed multicopy gene. Its copy number ranges from 3 to more than 300 among Drosophila melanogaster strains from the Global Diversity Lines. In wild-type animals, Ste expression is usually suppressed by homologous piRNAs produced from the Suppressor of Stellate (Su(Ste)) array on the Y chromosome. Derepression of Ste in the absence of Su(Ste) results in the formation of proteinaceous crystals in spermatocytes, chromatin compaction defects, reductions in fertility, and female-biased sex ratios arising from under-recovery of Y-bearing sperm. Despite extensive study, the function of the Stellate array and evolutionary significance of its persistence in the genome have remained elusive. It has been suggested to be a now-inactive relic of an ancient meiotic drive system, as perturbations in lab stocks can produce Ste-mediated meiotic distortions. Meiotic drive occurring among natural variants, however, has not been reported. We established crosses between females with high Ste copy number X chromosomes and males carrying low Su(Ste) copy number Y chromosomes and found that the male progeny displayed non-Mendelian sex chromosome transmission. Importantly, deletion of the euSte array in an otherwise matched genetic background rescues this phenotype, demonstrating that Stellate is an active driver in contemporary populations.

evolutionary biology↗