The neuronal circuitryof the cerebellum appears to be relativelysimple and well defined, but the computation performed by this circuitry is not understood. In addition, forms of synaptic plasticityhave been defined in the cerebellum that may be responsiblefor motor learning, but criticalquestions regarding this plasticityare still unanswered. The objective of the proposed research is to address fundamental issues cerebellar circuitry and plasticitythrough a study of the unique cerebellum of mormyridelectricfish. Two features of the mormyrid cerebellum make itwell suitedto address these issues: 1) Purkinjecells and cerebellar output cells (cells of the cerebellar nuclei in mammals) are adjacent to each other in mormyridfish, making possibleexperiments on integrationand plasticityat the important synapse between these two cell types that can not be done in mammals. 2) The regionsof terminationfor climbingfiber and parallel fiber inputs on Purkinjecellsare distinctand well separated in the mormyrid but not inthe mammal. This separation facilitates the determination of intrinsicdifferences between the two dendritic regions and the determination of how the two inputs interactto generate synaptic plasticity. The project has two Specific Aims: 1) to determine the basic synaptic and intrinsicphysiologyof Purkinjeand cerebellar output cells in mormyrid electricfish; and 2) to determine the types of plasticityat parallel fiber and Purkinje cellsynapses in mormyrid electricfish. The primary method will be whole-cell patch recordingin in vitro slices, combined with labelingof recorded elements for morphologicalidentification.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS044961-05
Application #
7162610
Study Section
Integrative, Functional and Cognitive Neuroscience 8 (IFCN)
Program Officer
Chen, Daofen
Project Start
2003-01-01
Project End
2008-12-31
Budget Start
2007-01-01
Budget End
2008-12-31
Support Year
5
Fiscal Year
2007
Total Cost
$188,452
Indirect Cost
Name
Oregon Health and Science University
Department
Type
Schools of Medicine
DUNS #
096997515
City
Portland
State
OR
Country
United States
Zip Code
97239
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Meek, Johannes; Yang, Jianji Y; Han, Victor Z et al. (2008) Morphological analysis of the mormyrid cerebellum using immunohistochemistry, with emphasis on the unusual neuronal organization of the valvula. J Comp Neurol 510:396-421
Bell, Curtis C; Han, Victor; Sawtell, Nathaniel B (2008) Cerebellum-like structures and their implications for cerebellar function. Annu Rev Neurosci 31:1-24
Shi, Zhigang; Zhang, Yueping; Meek, Johannes et al. (2008) The neuronal organization of a unique cerebellar specialization: the valvula cerebelli of a mormyrid fish. J Comp Neurol 509:449-73
Zhang, Yueping; Han, Phil F; Han, Victor Z (2008) Local circuitry in the anterior caudal lobe of the mormyrid cerebellum: a study of intracellular recording and labeling. J Comp Neurol 509:1-22
Han, Victor Z; Zhang, Yueping; Bell, Curtis C et al. (2007) Synaptic plasticity and calcium signaling in Purkinje cells of the central cerebellar lobes of mormyrid fish. J Neurosci 27:13499-512
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Han, Victor Z; Meek, Johannes; Campbell, Holly R et al. (2006) Cell morphology and circuitry in the central lobes of the mormyrid cerebellum. J Comp Neurol 497:309-25
Han, Victor Z; Bell, Curtis C (2003) Physiology of cells in the central lobes of the mormyrid cerebellum. J Neurosci 23:11147-57