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Re-Classification of Drosophila Melanogaster Trichoid and Intermediate Sensilla Using Fluorescence-Guided Single Sensillum Recording

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Journal PLoS One
Date 2015 Oct 3
PMID 26431203
Citations 29
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Abstract

Drosophila olfactory receptor neurons are found within specialized sensory hairs on antenna and maxillary palps. The linking of odorant-induced responses to olfactory neuron activities is often accomplished via Single Sensillum Recordings (SSR), in which an electrode inserted into a single sensory hair records the neuronal activities of all the neurons housed in that sensillum. The identification of the recorded sensillum requires matching the neuronal responses with known odor-response profiles. To record from specific sensilla, or to systematically screen all sensillar types, requires repetitive and semi-random SSR experiments. Here, we validate an approach in which the GAL4/UAS binary expression system is used for targeting specific sensilla for recordings. We take advantage of available OrX-Gal4 lines, in combination with recently generated strong membrane targeted GFP reporters, to guide electrophysiological recordings to GFP-labeled sensilla. We validate a full set of reagents that can be used to rapidly screen the odor-response profiles of all basiconic, intermediate, and trichoid sensilla. Fluorescence-guided SSR further revealed that two antennal trichoid sensilla types should be re-classified as intermediate sensilla. This approach provides a simple and practical addition to a proven method for investigating olfactory neurons, and can be extended by the addition of UAS-geneX effectors for gain-of-function or loss-of-function studies.

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References
1.
Dobritsa A, van der Goes van Naters W, Warr C, Steinbrecht R, Carlson J . Integrating the molecular and cellular basis of odor coding in the Drosophila antenna. Neuron. 2003; 37(5):827-41. DOI: 10.1016/s0896-6273(03)00094-1. View

2.
Vosshall L, Amrein H, Morozov P, Rzhetsky A, Axel R . A spatial map of olfactory receptor expression in the Drosophila antenna. Cell. 1999; 96(5):725-36. DOI: 10.1016/s0092-8674(00)80582-6. View

3.
Klapoetke N, Murata Y, Kim S, Pulver S, Birdsey-Benson A, Cho Y . Independent optical excitation of distinct neural populations. Nat Methods. 2014; 11(3):338-46. PMC: 3943671. DOI: 10.1038/nmeth.2836. View

4.
Kurtovic A, Widmer A, Dickson B . A single class of olfactory neurons mediates behavioural responses to a Drosophila sex pheromone. Nature. 2007; 446(7135):542-6. DOI: 10.1038/nature05672. View

5.
Vosshall L, Wong A, Axel R . An olfactory sensory map in the fly brain. Cell. 2000; 102(2):147-59. DOI: 10.1016/s0092-8674(00)00021-0. View