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Angus-Henry, A.

Publications and source records attributed to Angus-Henry, A..

2 recordsLinked to original sources

Estimating the additive genetic variance for relative fitness from changes in allele frequency

The rate of adaptation is equal to the additive genetic variance for relative fitness (VA) in the population. Estimating VA typically involves obtaining suitable measures of fitness on a large number of individuals with known pairwise relatedness. Such data are hard to collect and the results are often sensitive to the definition of fitness used. Here, we present a new method for estimating VA that does not involve making measurements of fitness on individuals, but instead tracks changes in the genetic composition of the population. First, we show that VA can readily be expressed as a function of the genome-wide diversity/linkage disequilibrium matrix and genome-wide expected change in allele frequency due to selection. We then show how independent experimental replicates can be used to infer the expected change in allele frequency due to selection and then estimate VA via a linear mixed model. Finally, using individual-based simulations, we demonstrate that our approach yields precise and accurate estimates over a range of biologically plausible scenarios. Article summaryConventional approaches for estimating the heritable component of fitness variation (VA) have steep methodological, statistical, and even definitional challenges. Here, the authors present a new method that overcomes many of these issue by modelling VA using selection-induced changes to a populations genetic composition. The authors develop novel mathematical theory and an inference approach that uses independent experimental populations derived from the same ancestral population. Individual based simulations show that this method provides unbiased and precise estimates of VA. This opens the door for future studies investigating the genomic distribution of VA, a key factor driving Darwinian evolution.

evolutionary biology↗

Decoupled evolution of the Sex Peptide gene family and Sex Peptide Receptor in Drosophilidae

Across internally fertilising species, males transfer ejaculate proteins that trigger wide-ranging changes in female behaviour and physiology. Much theory has been developed to explore the drivers of ejaculate protein evolution. The accelerating availability of high-quality genomes now allows us to test how these proteins are evolving at fine taxonomic scales. Here, we use genomes from 264 species to chart the evolutionary history of Sex Peptide (SP), a potent regulator of female post-mating responses in Drosophila melanogaster. We infer that SP first evolved in the Drosophilinae subfamily and has followed markedly different evolutionary trajectories in different lineages. Outside of the Sophophora-Lordiphosa, SP exists largely as a single-copy gene with independent losses in several lineages. Within the Sophophora-Lordiphosa, the SP gene family has repeatedly and independently expanded. Up to seven copies, collectively displaying extensive sequence variation, are present in some species. Despite these changes, SP expression remains restricted to the male reproductive tract. Alongside, we document considerable interspecific variation in the presence and morphology of seminal microcarriers that, despite the critical role SP plays in microcarrier assembly in D. melanogaster, appear to be independent of changes in the presence/absence or sequence of SP. We end by providing evidence that SPs evolution is decoupled from that of its receptor, SPR, in which we detect no evidence of correlated diversifying selection. Collectively, our work describes the divergent evolutionary trajectories that a novel gene has taken following its origin and finds a surprisingly weak coevolutionary signal between a supposedly sexually antagonistic protein and its receptor. SignificanceIn insects, seminal fluid proteins (SFPs) induce dramatic changes in female behaviour and physiology. How this degree of male influence evolves remains a central question in sexual selection research. Here, we map the origin and diversification of the posterchild insect SFP, the Drosophila Sex Peptide (SP), across 264 Diptera species. We show that SP first evolved at the base of the subfamily Drosophilinae and followed markedly different evolutionary trajectories in different lineages, including accelerated change in sequence, copy number, and genomic position in the lineage leading to D. melanogaster. By contrast, we find only limited, uncorrelated change in the sequence of its receptor, SPR, arguing against a sexually antagonistic coevolutionary arms race between these loci on macroevolutionary time scales.

evolutionary biology↗