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Lebedev, E.

Publications and source records attributed to Lebedev, E..

2 recordsLinked to original sources

Multisensory inputs control the regulation of time investment for mating by sexual experience in male Drosophila melanogaster

Males have finite resources to spend on reproduction. Thus, males rely on a time investment strategy to maximize their reproductive success. For example, male Drosophila melanogaster extends their mating duration when surrounded by conditions enriched with rivals. Here we report a novel form of behavioral plasticity whereby male fruit flies exhibit a shortened duration of mating when they are sexually experienced; we refer to this plasticity as shorter-mating-duration (SMD). SMD is a plastic behavior and requires sexually dimorphic taste neurons. We identified several neurons in the male foreleg and midleg that express specific sugar, pheromone and mechanosensory receptors. Using a cost-benefit model and behavioral experiments, we further show that SMD behavior exhibits adaptive behavioral plasticity in male flies. Thus, our study delineates the molecular and cellular basis of the sensory inputs required for SMD; this represents a plastic interval timing behavior that could serve as a model system to study how multisensory inputs converge to modify interval timing behavior for improved adaptation. ONE SENTENCE SUMMARYMale flies use information derived from their previous sexual experiences from multiple sensory inputs to optimize their investment in mating.

neuroscience↗

Antibacterial Action of Gliotoxin Realized Through Interaction with Tiol-containing Proteins

Gliotoxin is a secondary metabolite of various fungi belonging to the class of epipolythiodioxopiperazines. The mechanism of gliotoxin cytotoxic activity on eukaryotes is established, while the precise interaction between gliotoxin and bacteria has not been clarified yet. The aim of this study was evaluating the gliotoxin action on model Gram-positive and Gram-negative bacteria. It was found that gliotoxin uptake rate was higher in S. epidermidis than E.coli. However, for Gram-negative bacteria, the bactericidal effect is achieved at higher doses of gliotoxin (10-100 g/ml), compared to Gram-positive ones (0.75-6.25 g/ml). Bactericidal effect had developed in 4 hours, which was the same for both E. coli MG1655 and S. epidermidis. Novel chip-based bioluminescent sensor with gel-immobilized E.coli MG1655 pKatG-lux revealed oxidative stress. However, pre-incubation of bacteria with Trolox did not affect the bactericidal properties of gliotoxin, while 2-merkaptoethanol and reduced glutathione significantly reduced gliotoxins bactericidal property. Another bioluminescent sensor E.coli MG1655 pIbpA-lux revealed heat shock stress in bacteria treated with gliotoxin. At the cellular level, exposure bacteria with gliotoxin accompanied by disruption of bacterial membranes.

microbiology↗