Search bioRxiv⌕ Search

Biology subjects

Pirez, N.

Publications and source records attributed to Pirez, N..

2 recordsLinked to original sources

Developmental Olfactory Experience Dissociates Hedonic Valence from Exploratory Arousal in Drosophila melanogaster

Insects rely on olfactory cues to navigate complex environments, with many innate behaviors governed by evolutionary hardwired neural circuits. However, the extent to which early-life sensory experience can recalibrate these innate responses remains a subject of intense debate. Here, we investigate how chronic exposure to odorants of varying innate valences during development and early adulthood modulates olfactory preference and exploratory drive in Drosophila melanogaster. Using a high-resolution two-choice assay, we demonstrate a fundamental functional dissociation in olfactory plasticity: while the innate hedonic valence of most odorants remains remarkably resilient to developmental environmental manipulation, early-life experience profoundly reprograms exploratory dynamics. Specifically, chronic exposure to propionic acid and benzaldehyde induced sex-specific shifts in locomotor arousal and trap-entry decisions without altering the intrinsic hedonic valuation of the stimuli. Conversely, general exploratory drive toward 1-octanol and isoamyl acetate remained rigidly hardwired, although 1-octanol exhibited subtle, experience-dependent habituation in odor preference. This resilience of innate valence suggests that the olfactory circuit actively prioritizes functional stability to ensure that critical ecological cues remain reliably encoded. Our findings reveal that Drosophila employs a modular adaptive strategy to integrate chronic sensory information: unreinforced early-life experience selectively reconfigures motor reactivity to scale navigational intensity to familiar landscapes, while leaving primary sensory-driven valences largely intact.

neuroscience↗

Sensory adaptation modulates coding and perceptual quality of odor mixtures

The sensitivity of the sensory systems must be dynamic in order to allow animals to adjust their behavior based on experience to optimize detection of relevant information while ignoring stimuli with no predictive value. In this context, one of the main phenomena that modulate the olfactory system is sensory adaptation. It is usually defined as a decrease in the sensitivity or response to a stimulus after a sustained exposure to it. Adaptation may occur in brief intervals of time and depends on the immediate prior experience. Here, we investigate aspects of the function and neurobiology of sensory adaptation in olfaction using the honeybee Apis mellifera. By means of electroantennograms we set stimulation protocols that induced sensory adaptation. We show that activation patterns that encode mixtures of odorants in the antennal lobe are drastically altered after sensory adaptation, favoring the representation of stimuli that are present at sub-threshold concentrations. We investigate the effects that sensory adaptation has on the perception of odorant mixtures and show that adapting animals to one of the components of a binary mixture, reduces the appetitive learning of the adapted stimulus and enhances the detection and learning of the non-adapted stimulus in cases in which it would stay normally occluded. These results suggest that olfactory sensory adaptation is critical to allow detection of minor components present in complex mixtures, emphasizing its role as a fundamental mechanism to improve sensitivity to discrete stimuli.

neuroscience↗