The long-range goal of this research is to understand how cellular and molecular mechanisms operate in the context of neuronal circuitry to mediate the normal performance and adaptive plasticity of the vestibulo- ocular reflex (VOR). The VOR prevents blurred vision during self-motion by producing eye movements that precisely compensate for motion of the head. Neuronal m3echanisms of plasticity enable the COR to perform accurately in the face of development, trauma, and disease. Although the contributions of identified classes of neurons to signal transformations and plasticity have been elucidated, little is understood about the cellular mechanisms that underlie the day-to-day performance and adaptive capabilities of the VOR. The objective of the proposed research is to elucidate how intrinsic cellular mechanisms control the firing properties of brainstem neurons that are critical for ensuring image stability during head movement. In particular, the studies aim to identify the role of distinct sources of intracellular calcium in regulating the firing properties of identified classes of neurons in the medial vestibular nucleus (MVN) and nucleus prepositus hypoglossi nuclei (NPH). The dynamic properties of spike generation (the transformation from neuronal inputs into time-varying patterns of action potentials) will be examined in NPH and MVN neurons recorded intracellularly in living brainstem slices. Specific pharmacological agonists and antagonists of voltage-sensitive calcium channels, intracellular calcium release mechanisms, and NMDA and metabotropic glutamate receptors will be used to assess how the spontaneous firing rate and the gain and dynamics of spike generation are regulated by calcium-dependent mechanisms. The correspondence between neurons recorded in vitro and cell classes that have been identified automatically and physiologically in vivo will be determined by labeling neurons intracellularly with dye, targeting neurons for recording that have been retrogradely labeled from the cerebellar flocculus and abducens nucleus, and activating synaptic inputs from the cerebellum and vestibular nerve. These studies will provide foundations for targeted investigations of the molecular mechanisms that underlie vestibulo-ocular reflex plasticity as well as for pharmacological treatments for oculomotor disorders that cause nystagmus.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
2R01EY011027-05
Application #
2859887
Study Section
Special Emphasis Panel (ZRG1-IFCN-6 (01))
Project Start
1994-09-01
Project End
2003-03-31
Budget Start
1999-04-01
Budget End
2000-03-31
Support Year
5
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Salk Institute for Biological Studies
Department
Type
DUNS #
005436803
City
La Jolla
State
CA
Country
United States
Zip Code
92037
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Kodama, Takashi; du Lac, Sascha (2016) Adaptive Acceleration of Visually Evoked Smooth Eye Movements in Mice. J Neurosci 36:6836-49
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Kodama, Takashi; Guerrero, Shiloh; Shin, Minyoung et al. (2012) Neuronal classification and marker gene identification via single-cell expression profiling of brainstem vestibular neurons subserving cerebellar learning. J Neurosci 32:7819-31
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Shin, Minyoung; Moghadam, Setareh H; Sekirnjak, Chris et al. (2011) Multiple types of cerebellar target neurons and their circuitry in the vestibulo-ocular reflex. J Neurosci 31:10776-86
van Welie, Ingrid; du Lac, Sascha (2011) Bidirectional control of BK channel open probability by CAMKII and PKC in medial vestibular nucleus neurons. J Neurophysiol 105:1651-9
Kolkman, Kristine E; Moghadam, Setareh H; du Lac, Sascha (2011) Intrinsic physiology of identified neurons in the prepositus hypoglossi and medial vestibular nuclei. J Vestib Res 21:33-47
Gittis, Aryn H; Moghadam, Setareh H; du Lac, Sascha (2010) Mechanisms of sustained high firing rates in two classes of vestibular nucleus neurons: differential contributions of resurgent Na, Kv3, and BK currents. J Neurophysiol 104:1625-34

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