The major goal of this proposal is to investigate the role of the polyphosphoinositide-protein-kinase-C (PI-PKC) second-messenger system in the mammalian brain using the hippocampus as a model system. A number of important functions have been suggested for this system, including regulation of calcium- and potassium- dependent currents, transmitter release and long-term potentiation. Until now the system has primarily been studied using phorbol esters, plant-derived tumor- promoting compounds that activate PKC. Of particular interest in this phase of the project is the role of endogenous activation of PKC by acetylcholine and its analogs. Little is known about physiological effects of neurotransmitter activation of the PI PKC system. Electrophysiological responses of hippocampal neurons to cholinergic agents will be studied with intracellular recording in the slice preparation. In acutely dissociated and tissue-cultured neurons, whole-cell voltage- and patch-clamp techniques will be used. Direct activation of PKC by synthetic diacylglycerols and phorbol esters, in addition to direct intracellular injection of purified PKC, will be used to define which ionic currents are affected and how they are affected. We will also study the responses to injection of the other product of polyphosphoinositide breakdown, inositol-1,4,5-triphosphate. A variety of the known and suspected consequences of PKC activation imply that it is involved in control of neuronal excitability under normal circumstances. Malfunction in excitability control is a major problem in several neurological diseases, including epilepsy, Parkinson's and Huntington's diseases. Deficits in cholinergic systems have been implicated in Alzheimer's disease. Defining the roles of the PI-PKC system in excitability control may not only lead to better understanding of the disease states, but also contribute to rational design of drug therapy.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS022010-06
Application #
3403839
Study Section
Neurological Sciences Subcommittee 1 (NLS)
Project Start
1985-04-01
Project End
1993-03-31
Budget Start
1990-04-01
Budget End
1991-03-31
Support Year
6
Fiscal Year
1990
Total Cost
Indirect Cost
Name
University of Maryland Baltimore
Department
Type
Schools of Medicine
DUNS #
003255213
City
Baltimore
State
MD
Country
United States
Zip Code
21201
Varma, Namita; Brager, Darrin; Morishita, Wade et al. (2002) Presynaptic factors in the regulation of DSI expression in hippocampus. Neuropharmacology 43:550-62
Morishita, W; Alger, B E (2000) Differential effects of the group II mGluR agonist, DCG-IV, on depolarization-induced suppression of inhibition in hippocampal CA1 and CA3 neurons. Hippocampus 10:261-8
Morishita, W; Alger, B E (1999) Evidence for endogenous excitatory amino acids as mediators in DSI of GABA(A)ergic transmission in hippocampal CA1. J Neurophysiol 82:2556-64
Martin, L A; Alger, B E (1999) Muscarinic facilitation of the occurrence of depolarization-induced suppression of inhibition in rat hippocampus. Neuroscience 92:61-71
Morishita, W; Kirov, S A; Alger, B E (1998) Evidence for metabotropic glutamate receptor activation in the induction of depolarization-induced suppression of inhibition in hippocampal CA1. J Neurosci 18:4870-82
Lenz, R A; Wagner, J J; Alger, B E (1998) N- and L-type calcium channel involvement in depolarization-induced suppression of inhibition in rat hippocampal CA1 cells. J Physiol 512 ( Pt 1):61-73
Beau, F E; Alger, B E (1998) Transient suppression of GABAA-receptor-mediated IPSPs after epileptiform burst discharges in CA1 pyramidal cells. J Neurophysiol 79:659-69
Lenz, R A; Pitler, T A; Alger, B E (1997) High intracellular Cl- concentrations depress G-protein-modulated ionic conductances. J Neurosci 17:6133-41
Morishita, W; Kirov, S A; Pitler, T A et al. (1997) N-ethylmaleimide blocks depolarization-induced suppression of inhibition and enhances GABA release in the rat hippocampal slice in vitro. J Neurosci 17:941-50
Engisch, K L; Wagner, J J; Alger, B E (1996) Whole-cell voltage-clamp investigation of the role of PKC in muscarinic inhibition of IAHP in rat CA1 hippocampal neurons. Hippocampus 6:183-91

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