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PMID: 20197755 Published · epublish English Journal Article Research Support, N.I.H., Extramural Video-Audio Media

Analyzing responses of mouse olfactory sensory neurons using the air-phase electroolfactogram recording.

Cygnar KD, Stephan AB, Zhao H

Abstract

Animals depend on olfaction for many critical behaviors, such as finding food sources, avoiding predators, and identifying conspecifics for mating and other social interactions. The electroolfactogram (EOG) recording is an informative, easy to conduct, and reliable method to assay olfactory function at the level of the olfactory epithelium. Since the 1956 description of the EOG by Ottoson in frogs, the EOG recording has been applied in many vertebrates including salamanders, rabbits, rats, mice, and humans (reviewed by Scott and Scott-Johnson, 2002, ref. 2). The recent advances in genetic modification in mice have rekindled interest in recording the EOG for physiological characterization of olfactory function in knock-out and knock-in mice. EOG recordings have been successfully applied to demonstrate the central role of olfactory signal transduction components, and more recently to characterize the contribution of certain regulatory mechanisms to OSN responses. Odorant detection occurs at the surface of the olfactory epithelium on the cilia of OSNs, where a signal transduction cascade leads to opening of ion channels, generating a current that flows into the cilia and depolarizes the membrane. The EOG is the negative potential recorded extracellularly at the surface of the olfactory epithelium upon odorant stimulation, resulting from a summation of the potential changes caused by individual responsive OSNs in the recording field. Comparison of the amplitude and kinetics of the EOG thus provide valuable information about how genetic modification and other experimental manipulations influence the molecular signaling underlying the OSN response to odor. Here we describe an air-phase EOG recording on a preparation of mouse olfactory turbinates. Briefly, after sacrificing the mouse, the olfactory turbinates are exposed by bisecting the head along the midline and removing the septum. The turbinate preparation is then placed in the recording setup, and a recording electrode is placed at the surface of the olfactory epithelium on one of the medial turbinates. A reference electrode is electrically connected to the tissue through a buffer solution. A continuous stream of humidified air is blown over the surface of the epithelium to keep it moist. The vapor of odorant solutions is puffed into the stream of humidified air to stimulate the epithelium. Responses are recorded and digitized for further analysis.

MeSH Terms
Animals Electrodes Electrophysiology/instrumentation,methods Mice Odorants Olfactory Mucosa/physiology Olfactory Receptor Neurons/physiology
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Cygnar Katherine D
Biology, Johns Hopkins University, USA.
Stephan Aaron B
Zhao Haiqing
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17 references, click to expand
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Article Info
Journal
Journal of visualized experiments : JoVE
Abbr.
J Vis Exp
ISSN
1940-087X
Published
2010-03-02
Epub
2010-00-02
Language
English
Region
United States
NLM ID
101313252
PMCID
PMC3125698
Subset
IM
Grants
NIDCD NIH HHS · R01 DC007395 · United States
NIDCD NIH HHS · R01 DC009946 · United States
NIDCD NIH HHS · DC009946 · United States
NIDCD NIH HHS · DC007395 · United States
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