Blocking Adenylyl Cyclase Inhibits Olfactory Generator Currents Induced by “IP3-Odors”
- 1 July 2000
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 84 (1) , 575-580
- https://doi.org/10.1152/jn.2000.84.1.575
Abstract
Vertebrate olfactory receptor neurons (ORNs) transduce odor stimuli into electrical signals by means of an adenylyl cyclase/cAMP second messenger cascade, but it remains widely debated whether this cAMP cascade mediates transduction for all odorants or only certain odor classes. To address this problem, we have analyzed the generator currents induced by odors that failed to produce cAMP in previous biochemical assays but instead produced IP3 (“IP3-odors”). We show that in single salamander ORNs, sensory responses to “cAMP-odors” and IP3-odors are not mutually exclusive but coexist in the same cells. The currents induced by IP3-odors exhibit identical biophysical properties as those induced by cAMP odors or direct activation of the cAMP cascade. By disrupting adenylyl cyclase to block cAMP formation using two potent antagonists of adenylyl cyclase, SQ22536 and MDL12330A, we show that this molecular step is necessary for the transduction of both odor classes. To assess whether these results are also applicable to mammals, we examine the electrophysiological responses to IP3-odors in intact mouse main olfactory epithelium (MOE) by recording field potentials. The results show that inhibition of adenylyl cyclase prevents EOG responses to both odor classes in mouse MOE, even when “hot spots” with heightened sensitivity to IP3-odors are examined.Keywords
This publication has 25 references indexed in Scilit:
- Neuronal Ca2+-activated Cl− channels — homing in on an elusive channel speciesProgress in Neurobiology, 2000
- Mice Deficient in Golf Are AnosmicNeuron, 1998
- Scentsational Ion ChannelsNeuron, 1996
- General Anosmia Caused by a Targeted Disruption of the Mouse Olfactory Cyclic Nucleotide–Gated Cation ChannelNeuron, 1996
- Modulation by cyclic GMP of the odour sensitivity of vertebrate olfactory receptor cellsProceedings Of The Royal Society B-Biological Sciences, 1996
- Cyclic Nucleotide-Gated Ion Channels and Sensory Transduction in Olfactory Receptor NeuronsAnnual Review of Biophysics, 1994
- Signaling pathways in odorant detectionNeuron, 1992
- Activation of the sensory current in salamander olfactory receptor neurons depends on a G protein-mediated cAMP second messenger systemNeuron, 1991
- Odorants of the same odor class activate different second messenger pathwaysChemical Senses, 1991
- Odor-Induced Membrane Currents in Vertebrate-Olfactory Receptor NeuronsScience, 1989