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Wechsler, S. P.

Publications and source records attributed to Wechsler, S. P..

2 recordsLinked to original sources

Behaviors resulting from the activation of single olfactory receptor neuron class depends on multiple second-order neuron types

Animals rely on olfactory cues to guide critical behaviors such as foraging, mate selection, and predator avoidance. Animals discriminate between different odors because each odor binds to a distinct set of olfactory receptor neurons (ORNs). The relationship between the activated ORN class and resulting behavior is an intensely studied problem. Genetic tools in the Drosophila olfactory system make it particularly suitable for understanding this relationship. In this study, we investigate how activity in Or7a-expressing ORNs (Or7a-ORNs) which projects to the DL5 glomerulus, is transformed into aversive behavior. We find that optogenetically activating Or7a-ORNs causes an increase in locomotion speed which results in mild aversion. Surprisingly, silencing the synaptically connected second-order neuron called DL5PN increases the aversion. Silencing DL5PN has no effect on the increase in speed. The increased aversion results from the flies returning to the stimulated area less often. When DL5PN is left intact, flies return more frequently to the stimulated area. Patch-clamp recordings from PNs other than DL5PNs suggest they are activated when Or7a-ORNs are activated. These results suggest that the behavioral effect downstream of a given ORN class is mediated by multiple PN classes. This work advances our understanding of how aversion is encoded and transmitted through early sensory circuits to shape behavior.

neuroscience↗

Sensorimotor transformation underlying odor-modulated locomotion in walking Drosophila

Most real-world behaviors are performed with incomplete information. Odor-guided locomotion, an ecologically important behavior essential to an animals survival, is an example of such a behavior. Different odors activate different patterns of olfactory receptor neuron (ORN) classes providing information about which odor is present but does not provide any navigational information. In this study, we investigate the sensorimotor transformation that relates ORN activation to locomotion changes in Drosophila by optogenetically activating different combinations of ORN classes and measuring the resulting changes in locomotion. Three features describe this sensorimotor transformation: First, locomotion depends on both the instantaneous firing frequency (f) and its change (df); the two together serve as short-term memory that allows the fly to automatically adapt its motor program to sensory context. Second, the mapping between f-df and locomotor parameters such as speed or curvature is distinct for each pattern of activated ORNs. Finally, the sensorimotor mapping changes with time after odor exposure allowing integration of information over a longer timescale.

neuroscience↗