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Biology subjects

Marston, S.

Publications and source records attributed to Marston, S..

2 recordsLinked to original sources

Female behavioral cues control male courtship plasticity independent of female pheromones in African Drosophila melanogaster

Sexual interactions involve the exchange of information-including olfactory, auditory, and visual cues-that has been shaped by sexual selection to maximize fitness. While these courtship signals and behaviors are often characterized as stereotypical and species-specific, male courtship is plastic and can depend on the population identity of the courted female. The ability of a male to adjust his courtship behavior based on female identity has significant implications for how selection operates on courtship, potentially driving behavioral divergence between populations and the eventual emergence of new species. A major challenge is identifying the cues that males use to adjust their courtship strategy. We used Drosophila melanogaster to investigate the mechanisms facilitating courtship plasticity, focusing on male song production. Male song is often considered the paramount behavior performed by males and is stimulated by female pheromones. Previous observations have focused on cosmopolitan (non-African) genotypes, whereas the singing rate and singing plasticity is highly variable in African populations. In genotypes from Zimbabwe, females have a different major pheromone compound (5,9-HD) compared to non-African females and show strong behavioral preference for Zimbabwe males. We created a Zimbabwe genotype lacking 5,9-HD by disrupting the gene desat2 in the Zimbabwe Z53 strain. We tested the hypothesis that Zimbabwe male courtship plasticity depends on female pheromones by allowing males to court non-African, wild type Z53, and Z53 desat2 null mutant females. We found that males treated Z53 desat2 null females like wild type Z53 females, not using pheromone cues to determine singing and courtship plasticity. This suggests that other female behavioral feedback influences singing plasticity. This courtship plasticity could contribute to the asymmetrical reproductive isolation between these populations and could provide insight to the broad pattern of asymmetrical reproductive isolation across broad taxonomic groups.

evolutionary biology↗

Silybin B, resveratrol and epigallocatechin-3 gallate (EGCG) bind to troponin to restore the loss of lusitropy caused by cardiomyopathy mutations in vitro, in vivo, and in silico

Adrenergic activation of protein kinase A (PKA) targets the thin filaments of the cardiac muscle, specifically phosphorylating cTroponin I Ser22 and Ser23, causing a higher rate of Ca2+ dissociation from cTnC leading to a faster relaxation rate (lusitropy). This modulation is often suppressed by mutations that cause cardiomyopathy (uncoupling) and this could be sufficient to induce cardiomyopathy. A drug that could restore the phosphorylation-dependent modulation of relaxation rate could have the potential for treatment of these pathologies. We found, using single thin filament in vitro motility assays that the small molecules including silybin B, resveratrol, and epigallocatechin-3 gallate (EGCG) can restore coupling. We performed molecular dynamics simulations of the unphosphorylated and phosphorylated cardiac Troponin core with the TNNC1 G159D mutation. We found that silybin B, EGCG, and resveratrol restored the phosphorylation-induced change in the TnC helix A/B angle and the interdomain angle to wild-type values, whilst silybin A and epicatechin gallate (ECG) did not. In unphosphorylated G159D the recoupling molecules were observed to be frequently intercalated between The N terminal peptide of Troponin I and troponin C. In contrast, the controls, silybin A, and ECG bound to the surface. All of the interactions were diminished when troponin I was phosphorylated. We also performed studies with intact transgenic ACTC E99K mouse cells and TNNT2 R92Q-transfected guinea pig cardiomyocytes. The mutations blunt the increase in relaxation speed due to dobutamine; resveratrol, EGCG, and silybin B could restore the dobutamine response whilst silybin A did not. Thus recoupling by small molecules is demonstrated in vitro, in vivo, and in silico.

biophysics↗