Olfactory neurons and taste cells are continuously replaced throughout life. Chemosensory systems, therefore, have evolved unique cellular and molecular strategies to maintain their functional integrity. The capacity to reinnervate the adult mammalian CNS is unique to olfactory neurons. Olfactory neurons induce the development and maintain the expression of transmitter phenotypes in the olfactory bulb. The initial induction and continued development of the bulb may be trophically dependent on neurons and other cells of the olfactory placode. Gustatory nerves induce and trophically maintain taste cells. The seven projects of this program focus on these unique developmental, regenerative and trophic properties of chemosensory cells. Novel hypotheses of the specific molecular and cell-cell interactions that regulate the expression of these unique properties will be tested. The Program has matured from its phenomenological, technique-driven beginnings to a hypothesis-based experiment-driven stage. Inter-project collaborations are far more extensive than four years ago. Antibodies and gene probes will be used to pinpoint hypothesized sequences of cell-cell, and cell-molecular interactions which underlie similarities and differences among development, turnover and regeneration of olfactory and taste cells. Neural transplants and tissue culture systems will pit olfactory cells and molecules against non-olfactory cells and molecules to determine whether the factors that specify pathway development, or permit reinnervation are unique to chemosensory cells or are properties expressed by other cells at certain stages of their development. Cell and ciliary patch and intracellular recording techniques will define the development of channels and membrane coupling events that are associated with maturation of transduction processes in cultured and dissociated cells. Immunoelectron microscope analysis of recently characterized transduction- coupling molecules will be coordinated with the membrane biophysical studies. Newly discovered genetic mutants, neural transplantation and tissue culture methods will be used to determine the specificity and molecular bases of olfactory nerve trophic actions on the development of the bulb and its transmitter phenotypes. Similar approaches will be used to isolate the role of bulb cells in the functional maturation of olfactory neurons. Understanding the developmental and regenerative strategies evolved to cope with receptor turnover, is one of the fundamental goals of chemosensory neuroscience. Achievement of this goal may provide new direction to the prevention and treatment of developmental and degenerative disorders in other parts of the CNS.

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
Research Program Projects (P01)
Project #
2P01DC000347-06
Application #
3094840
Study Section
Special Emphasis Panel (SRC (04))
Project Start
1991-01-01
Project End
1993-12-31
Budget Start
1991-01-01
Budget End
1991-12-31
Support Year
6
Fiscal Year
1991
Total Cost
Indirect Cost
Name
University of Cincinnati
Department
Type
Schools of Medicine
DUNS #
City
Cincinnati
State
OH
Country
United States
Zip Code
45221
Laaris, Nora; Puche, Adam; Ennis, Matthew (2007) Complementary postsynaptic activity patterns elicited in olfactory bulb by stimulation of mitral/tufted and centrifugal fiber inputs to granule cells. J Neurophysiol 97:296-306
Weiler, Elke (2005) Postnatal development of the rat vomeronasal organ. Chem Senses 30 Suppl 1:i127-8
Weiler, Elke; Farbman, Albert I (2003) The septal organ of the rat during postnatal development. Chem Senses 28:581-93
Farbman, A I; Ezeh, P I (2000) TGF-alpha and olfactory marker protein enhance mitosis in rat olfactory epithelium in vivo. Neuroreport 11:3655-8
Suzuki, Y; Farbman, A I (2000) Tumor necrosis factor-alpha-induced apoptosis in olfactory epithelium in vitro: possible roles of caspase 1 (ICE), caspase 2 (ICH-1), and caspase 3 (CPP32). Exp Neurol 165:35-45
Smith, D V; Som, J; Boughter Jr, J D et al. (1999) Cellular expression of alpha-gustducin and the A blood group antigen in rat fungiform taste buds cross-reinnervated by the IXth nerve. J Comp Neurol 409:118-30
Weiler, E; Apfelbach, R; Farbman, A I (1999) The vomeronasal organ of the male ferret. Chem Senses 24:127-36
Weiler, E; Farbman, A I (1999) Mitral cell loss following lateral olfactory tract transection increases proliferation density in rat olfactory epithelium. Eur J Neurosci 11:3265-75
Weiler, E; McCulloch, M A; Farbman, A I (1999) Proliferation in the vomeronasal organ of the rat during postnatal development. Eur J Neurosci 11:700-11
Carr, V M; Walters, E; Margolis, F L et al. (1998) An enhanced olfactory marker protein immunoreactivity in individual olfactory receptor neurons following olfactory bulbectomy may be related to increased neurogenesis. J Neurobiol 34:377-90

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