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Chapman, J. R.

Publications and source records attributed to Chapman, J. R..

2 recordsLinked to original sources

Balancing selection drives maintenance of geneticvariation in Drosophila antimicrobial peptides

Genes involved in immune defense against pathogens provide some of the most well-known examples of both directional and balancing selection. Antimicrobial peptides (AMPs) are innate immune effector genes, playing a key role in pathogen clearance in many species, including Drosophila. Conflicting lines of evidence have suggested AMPs may be under directional, balancing or purifying selection. Here, we use a case-control gene approach to show that balancing selection is an important force shaping AMP diversity in two species of Drosophila. In D. melanogaster, this is most clearly observed in ancestral African populations. Furthermore, the signature of balancing selection is even clearer once background selection has been accounted for. Balancing selection also acts on AMPs in D. mauritiana, an isolated island endemic separated from D. melanogaster by about 4 million years of evolution. This suggests that balancing selection may be acting to maintain adaptive diversity in AMPs in insects as it does in other taxa.

evolutionary biology

Human PRDM9 Can Bind And Activate Promoters, And Other Zinc-Finger Proteins Associate With Reduced Recombination In cis

Across mammals, PRDM9 binding localizes almost all meiotic recombination hotspots. However, most PRDM9 motif sequence matches are not bound, and most PRDM9-bound loci do not become hotspots. To explore factors that affect binding and subsequent recombination outcomes, we mapped human and chimp PRDM9 binding sites in a human cell line, and measured PRDM9-induced H3K4me3 and gene expression changes. These data revealed varied DNA-binding modalities of PRDM9, and histone modifications that predict binding. At sites where PRDM9 binds, specific cis sequence motifs associated with TRIM28 recruitment, and histone modifications, predict whether recombination subsequently occurs. These results implicate the large family of KRAB-ZNF genes in consistent, localized meiotic recombination suppression. PRDM9 affects gene expression for a small number of genes including CTCFL and VCX, by binding nearby. Finally, we show that PRDM9s DNA-binding zinc finger domain strongly impacts the formation of multimers, with a pair of highly diverged alleles multimerizing less efficiently.

genetics