Adenosine has been shown in a number of preparations derived from the central nervous system to inhibit transmitter release, and may do so by inhibiting presynaptic calcium influx. In addition, adenosine has been shown to modulate glycogen metabolism. Despite the potential importance of adenosine as modulator both of neuronal activity and of glial energy metabolism, little is known about the mechanisms by which adenosine accumulates extracellularly in the central nervous system. Adenosine has often been shown to accumulate extracellularly following various methods of stimulation. However, important questions remain to be answered, namely from which cells does adenosine derive; by what mechanisms of release; as a consequence of what signals? It is also unclear whether adenosine itself is transported or whether and to what extent extracellular adenosine derives from adenosine nucleotides. Finally, does adenosine fulfill the requirements for being called an intrinsic neuromodulator as well as a modulator of glial function? the hypothesis to be tested by the experiments to be described in this proposal is that in cerebral cortex adenosine accumulates in the extracellular space by at least two routes: 1) derived from neurons as a consequence of neuronal depolarization: and 2) following adrenergic stimulation which yields adenosine by degradation of secreted cAMP. This research will demonstrate and characterize these mechanisms of extracellular adenosine accumulation and will localize the sources and sinks of adenosine involved. In addition the possibility that anticonvulsant interact with these mechanisms or with adenosine receptors will be tested. The significance of this work is that the accumulation of adenosine or other purines in the extracellular space may subserve a signalling function in the cerebral cortex. This signalling function may be important in mediating some effects of certain neurotransmitters, coordinating neuronal activity and astrocyte metabolism, and providing a safety mechanism for inhibiting synaptic transmission during excessive neuronal discharge, for example during epileptic discharges. It may be particularly relevant to an understanding of seizure termination to understand the mechanisms resulting in extracellular adenosine accumulation. The failure of these mechanisms, either because of the pathophysiology of certain forms of epilepsy, or because of withdrawal from anticonvulsant medication, might be responsible for status epilepticus. The model system for these studies will be rat cerebral cortex in dissociated cell culture, ideal for combining biochemical and physiological approaches.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS026830-03
Application #
3412891
Study Section
Neurology A Study Section (NEUA)
Project Start
1989-08-01
Project End
1993-04-27
Budget Start
1991-08-01
Budget End
1993-04-27
Support Year
3
Fiscal Year
1991
Total Cost
Indirect Cost
Name
Children's Hospital Boston
Department
Type
DUNS #
076593722
City
Boston
State
MA
Country
United States
Zip Code
02115
Wang, T F; Rosenberg, P A; Guidotti, G (1997) Characterization of brain ecto-apyrase: evidence for only one ecto-apyrase (CD39) gene. Brain Res Mol Brain Res 47:295-302
Pawlikowska, L; Cottrell, S E; Harms, M B et al. (1996) Extracellular synthesis of cADP-ribose from nicotinamide-adenine dinucleotide by rat cortical astrocytes in culture. J Neurosci 16:5372-81
Rosenberg, P A; Li, Y (1996) Forskolin evokes extracellular adenosine accumulation in rat cortical cultures. Neurosci Lett 211:49-52
Newcomer, T A; Rosenberg, P A; Aizenman, E (1995) Iron-mediated oxidation of 3,4-dihydroxyphenylalanine to an excitotoxin. J Neurochem 64:1742-8
Newcomer, T A; Rosenberg, P A; Aizenman, E (1995) TOPA quinone, a kainate-like agonist and excitotoxin is generated by a catecholaminergic cell line. J Neurosci 15:3172-7
Rosenberg, P A; Li, Y (1995) Vasoactive intestinal peptide regulates extracellular adenosine levels in rat cortical cultures. Neurosci Lett 200:93-6
Rosenberg, P A; Li, Y (1995) Adenylyl cyclase activation underlies intracellular cyclic AMP accumulation, cyclic AMP transport, and extracellular adenosine accumulation evoked by beta-adrenergic receptor stimulation in mixed cultures of neurons and astrocytes derived from rat cerebra Brain Res 692:227-32
Aizenman, E; Jensen, F E; Gallop, P M et al. (1994) Further evidence that pyrroloquinoline quinone interacts with the N-methyl-D-aspartate receptor redox site in rat cortical neurons in vitro. Neurosci Lett 168:189-92
Rosenberg, P A; Knowles, R; Knowles, K P et al. (1994) Beta-adrenergic receptor-mediated regulation of extracellular adenosine in cerebral cortex in culture. J Neurosci 14:2953-65
Newcomer, T A; Palmer, A M; Rosenberg, P A et al. (1993) Nonenzymatic conversion of 3,4-dihydroxyphenylalanine to 2,4,5-trihydroxyphenylalanine and 2,4,5-trihydroxyphenylalanine quinone in physiological solutions. J Neurochem 61:911-20

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