The """"""""transmitter hypothesis of chemoreception"""""""" postulates that the sensory discharge frequency of carotid nerve"""""""" fibers is governed by neurotransmitters released from glomus cells (GCs) in response to """"""""natural stimuli (hypoxia, hypercapnia and acidity). Such transmitters cross the synaptic cleft between GCs and carotid nerve endings (NEs) to depolarize and excite the terminals. The main problem with this hypothesis is that specific synaptic blockers (while blocking the effects of exogenously applied to transmitters) do not block, only depress the sensory discharge elicited by natural stimuli. Thus, factors other than transmitter release should be involved in chemotransduction. We propose that GCs and NEs are coupled both by electrical and by chemical synapses as occurs in the avian ciliary ganglion and in several central nervous system synapses. Supporting this view is the recent study by Kondo & Iwasa showing that gap functions unite NEs to GCs. According to our hypothesis, most GC-NE junctions would be closed or non- functional at rest. During natural stimulation, the gap junctions would open, allowing ions and molecules to flow from cells to nerves. This hypothetical situation is the opposite of what occurs between apposed glomus cells (GC-GC channels) where natural stimuli mostly close intercellular channels. Specific transmitter antagonist that depress or eliminate activation of certain chemical synapses would not affect GC-NE gap junctions. Thus, elimination of chemical transmission still leaves intact GC-NE electrical transmission to signal changes in pO2 and pCO2. This idea will be tested in the rat carotid body with physiological and morphological experiments. We will measure macroscopic junctional conductance and intercellular channel activity between GCs and NES at rest and during stimulation using twin current and voltage clamping of GCs and NEs. Light and electron microscopy will establish whether transfer of markers occurs between these coupled structures during basal and stimulated conditions. Immunocytochemistry and freeze substitution ultrastructural techniques will determine the incidence of gap junctions between NEs and apposed GCs. This dual approach should establish the extent of interaction and physiological significance of electrical GC-NE gap junction synapses during carotid body activation.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Program Projects (P01)
Project #
5P01NS007938-29
Application #
6500827
Study Section
Special Emphasis Panel (ZNS1)
Project Start
2001-09-01
Project End
2002-08-31
Budget Start
Budget End
Support Year
29
Fiscal Year
2001
Total Cost
Indirect Cost
Name
University of Utah
Department
Type
DUNS #
City
Salt Lake City
State
UT
Country
United States
Zip Code
84112
He, L; Liu, X; Chen, J et al. (2010) Modulation of chronic hypoxia-induced chemoreceptor hypersensitivity by NADPH oxidase subunits in rat carotid body. J Appl Physiol (1985) 108:1304-10
Mobley, Arie Sitthichai; Michel, William C; Lucero, Mary T (2008) Odorant responsiveness of squid olfactory receptor neurons. Anat Rec (Hoboken) 291:763-74
Mobley, Arie Sitthichai; Lucero, Mary T; Michel, William C (2008) Cross-species comparison of metabolite profiles in chemosensory epithelia: an indication of metabolite roles in chemosensory cells. Anat Rec (Hoboken) 291:410-32
Abudara, Veronica; Eyzaguirre, Carlos (2008) Mechanical sensitivity of carotid body glomus cells. Respir Physiol Neurobiol 161:210-3
Zhang, Jie; Tuckett, Robert P (2008) Comparison of paclitaxel and cisplatin effects on the slowly adapting type I mechanoreceptor. Brain Res 1214:50-7
Dinger, B; He, L; Chen, J et al. (2007) The role of NADPH oxidase in carotid body arterial chemoreceptors. Respir Physiol Neurobiol 157:45-54
Edwards, Jeffrey G; Greig, Ann; Sakata, Yoko et al. (2007) Cholinergic innervation of the zebrafish olfactory bulb. J Comp Neurol 504:631-45
Mobley, Arie Sitthichai; Mahendra, Gandham; Lucero, Mary T (2007) Evidence for multiple signaling pathways in single squid olfactory receptor neurons. J Comp Neurol 501:231-42
Vogalis, Fivos; Hegg, Colleen C; Lucero, Mary T (2005) Electrical coupling in sustentacular cells of the mouse olfactory epithelium. J Neurophysiol 94:1001-12
Jiang, R G; Eyzaguirre, C (2004) Effects of hypoxia and putative transmitters on [Ca2+]i of rat glomus cells. Brain Res 995:285-96

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