The aim of this project is to study in depth (using a multidisciplinary approach) some fundamental mechanisms responsible for the onset of activity and neuron behavior in sensory systems. Thus, seven independent but closely integrated projects are presented: 1) A study of the functional properties of the basement membrane which is common to nerves, muscles, synaptic and sensory junctions; 2) Basic membrane properties of photoreceptors which will be studied with intracellular techniques, voltage clamping and ion-sensitive photodyes; 3) Studies on the electrical and trophic properties of sensory synapses in carotid body chemoreceptors by using adult synapses and tissue culture; 4) Biochemistry of carotid body sensory synapses with emphasis on content and release of putative neurotransmitters and the enzymatic systems responsible for their synthesis; 5) Neuroanatomy and electrophysiology of the vertebrate retina to study the basic processes of color coding and orientation selectivity at this level. Intracellular recordings, Golgi and HRP staining of recorded cells will be employed; 6) How the sensation of itch is signaled to the CNS and how pruritus can be inhibited. This study will employ recordings from single C afferent fibers from the skin; and 7) An analysis of responses evoked in the somatosensory cortex by skin stimulation before and after regeneration of injured skin nerves. It is hoped to determine whether or not somatotopic localization is altered. The purpose of this group is to establish a better understanding of basic sensory mechanisms both at the receptor and CNS levels. The group has enough cohesion to attain these objectives. In addition, this multidisciplinary approach will be conducted in well equipped laboratories manned by competent investigators, having access to excellent core facilities which include electrophysiological, neuroanatomical, neurochemical, computational and service laboratories.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Program Projects (P01)
Project #
5P01NS007938-19
Application #
3099296
Study Section
Neurological Disorders Program Project Review B Committee (NSPB)
Project Start
1978-06-01
Project End
1988-06-30
Budget Start
1987-06-01
Budget End
1988-06-30
Support Year
19
Fiscal Year
1987
Total Cost
Indirect Cost
Name
University of Utah
Department
Type
Schools of Medicine
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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