Related Experiment Video
Updated: Mar 23, 2026

Calcium Imaging of Odor-evoked Responses in the Drosophila Antennal Lobe
Published on: March 14, 2012
Multiple sites of adaptation lead to contrast encoding in the Drosophila olfactory system
1Department of Neurobiology, Duke University, Durham, North Carolina Department of Biology, Duke University, Durham, North Carolina jon.cafaro@duke.edu.
Abstract:
Animals often encounter large increases in odor intensity that can persist for many seconds. These increases in the background odor are often accompanied by increases in the variance of the odor stimulus. Previous studies have shown that a persistent odor stimulus (odor background) results in a decrease in the response to brief odor pulses in the olfactory receptor neurons (ORNs). However, the contribution of adapting mechanisms beyond theORNs is not clear. Thus, it is unclear how adaptive mechanisms are distributed within the olfactory circuit and what impact downstream adaptation may have on the encoding of odor stimuli. In this study, adaptation to the same odor stimulus is examined at multiple levels in the well studied and accessibleDrosophilaolfactory system. The responses of theORNs are compared to the responses of the second order, projection neurons (PNs), directly connected to them. Adaptation inPNspike rate was found to be much greater than adaptation in theORNspike rate. This greater adaptation allowsPNs to encode odor contrast (ratio of pulse intensity to background intensity) with little ambiguity. Moreover, distinct neural mechanisms contribute to different aspects of adaptation; adaptation to the background odor is dominated by adaptation in spike generation in bothORNs andPNs, while adaptation to the odor pulse is dominated by changes within olfactory transduction and the glomerulus. These observations suggest that the olfactory system adapts at multiple sites to better match its response gain to stimulus statistics.

