Olfactory neurons have the unique ability to reinnervate the adult CNS in mammals. The replacement of olfactory neurons throughout life suggests that mechanisms used in development, turnover and post-lesion reinnervation are fundamentally similar. However, while neurogenesis and axon outgrowth may be similar in these three processes, the target-environment presented by the olfactory bulb in development, turnover and regeneration are profoundly different. Preliminary results from this laboratory, taken with other new findings, suggest that glial cells are fundamental to the composition of the target environment and play a critical role in the development of neural connections and the formation of local circuits. By contrast, adult glial cells react to injury/deafferentation and contribute to the hostile environment that prevents reinnervation. Since olfactory axons do successfully reinnervate the bulb, bulb astrocytes, olfactory neurons or both may have unique properties. LM-EM immunohistochemical studies will characterize the properties of olfactory neurons and glia and their interactions during development, following deafferentiation and during reinnervation. Neural transplantation experiments will be used to contrast neuron-glial interactions during development and reinnervation, test the ability of bulb astrocytes to support reinnervation by ectopic neurons and determine whether olfactory neurons can grow through or modify glial scars in the spinal cord. The goal of this research is to test novel hypotheses of the developmental and regenerative capacities of olfactory neurons and their interactions with olfactory glial cells. Understanding how olfactory neurons innervate the adult CNS may suggest new approaches for treating developmental disorders and provide new clues for promoting regenerative repair of the damaged brain.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS029218-03
Application #
3415993
Study Section
Neurology B Subcommittee 2 (NEUB)
Project Start
1991-03-01
Project End
1994-04-30
Budget Start
1993-03-01
Budget End
1994-04-30
Support Year
3
Fiscal Year
1993
Total Cost
Indirect Cost
Name
University of Cincinnati
Department
Type
Schools of Medicine
DUNS #
City
Cincinnati
State
OH
Country
United States
Zip Code
45221
Rizvi, T A; Murphy, A Z; Ennis, M et al. (1998) Fos expression in rat pontine tegmental neurons following activation of the medial preoptic area. Brain Res 789:256-62
Ennis, M; Xu, S J; Rizvi, T A (1997) Discrete subregions of the rat midbrain periaqueductal gray project to nucleus ambiguus and the periambigual region. Neuroscience 80:829-45
Ennis, M; Zimmer, L A; Shipley, M T (1996) Olfactory nerve stimulation activates rat mitral cells via NMDA and non-NMDA receptors in vitro. Neuroreport 7:989-92
Gong, Q; Liu, W L; Srodon, M et al. (1996) Olfactory epithelial organotypic slice cultures: a useful tool for investigating olfactory neural development. Int J Dev Neurosci 14:841-52
Nickell, W T; Shipley, M T; Behbehani, M M (1996) Orthodromic synaptic activation of rat olfactory bulb mitral cells in isolated slices. Brain Res Bull 39:57-62
Rizvi, T A; Murphy, A Z; Ennis, M et al. (1996) Medial preoptic area afferents to periaqueductal gray medullo-output neurons: a combined Fos and tract tracing study. J Neurosci 16:333-44
Gong, Q; Shipley, M T (1996) Expression of extracellular matrix molecules and cell surface molecules in the olfactory nerve pathway during early development. J Comp Neurol 366:1-14
Gong, Q; Shipley, M T (1995) Evidence that pioneer olfactory axons regulate telencephalon cell cycle kinetics to induce the formation of the olfactory bulb. Neuron 14:91-101
Rizvi, T A; Ennis, M; Aston-Jones, G et al. (1994) Preoptic projections to Barrington's nucleus and the pericoerulear region: architecture and terminal organization. J Comp Neurol 347:1-24
Nickell, W T; Behbehani, M M; Shipley, M T (1994) Evidence for GABAB-mediated inhibition of transmission from the olfactory nerve to mitral cells in the rat olfactory bulb. Brain Res Bull 35:119-23

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