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- W1984399399 abstract "This study used intracerebral microdialysis to monitor the outputs of excitatory amino acids in the entopeduncular nucleus (EPN) of conscious or halothane-anaesthetized rats, in an attempt to obtain direct biochemical evidence for the theory that neuronal inputs to the EPN by the indirect striatal output pathway are glutamatergic and regulated primarily by dopamine D2 receptors in the striatum. In dopamine-intact animals, both glutamate and asparate were readily detectable in EPN dialysates. Recoveries of both amino acids were increased bilaterally by local perfusion with veratridine (100 microM, given under halothane anaesthesia), pretreatment with reserpine (4 mg/kg, i.p., 24 h beforehand), unilateral pretreatment of the medial forebrain bundle with 6-OHDA (8 microg/4 microl), and by the systemic (1 mg/kg, i.p.) or bilateral intrastriatal (7 microg/0.5 microl under halothane anaesthesia) administration of the dopamine D2 receptor antagonist haloperidol, but not raclopride (2 mg/kg, i.p.). The dopamine D1 receptor antagonist SCH 23390 was ineffective both systemically (0.25 mg/kg, i.p.) and intrastriatally (0.125 microg/0.5 microl/side), as also were control intrastriatal injections of saline (0.5 microl/side). By contrast, the dopamine D2/3 receptor agonist quinpirole (4 mg/kg, i.p.) lowered the outputs of glutamate and aspartate in the EPN of reserpine-treated and normal individuals, whilst the dopamine D1 receptor agonist SKF 38393 (30 mg/kg, i.p.) was inactive; however, both drugs caused behavioural arousal. The dopamine D2/3 receptor agonist RU 24213 reversed reserpine-induced akinesia, yet paradoxically increased glutamate (not aspartate) output in the EPN still further. The combination of benserazide (30 mg/kg, i.p.) and L-DOPA (50 mg/kg, i.p.) evoked intense contraversive circling in unilaterally 6-OHDA-lesioned rats, together with a drop in EPN glutamate (but not aspartate) output in the intact but not lesioned hemisphere. These results offer biochemical support for the hypothesis that excitatory neurones innervating the EPN via the indirect striatal output pathway, may utilise glutamate and/or aspartate as their neurotransmitter. They further endorse the view that the EPN receives information from striatal D2 and not D1 receptors via excitatory synapses, which become hyperactive following dopamine depletion or inactivation, and which are subject to control by the contralateral as well as by the ipsilateral hemisphere. The results obtained with RU 24213 and L-DOPA, however, indicate that dopaminergic behaviours can also occur independently of glutamate or aspartate release in the EPN." @default.
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- W1984399399 date "1997-04-01" @default.
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- W1984399399 title "Extracellular levels of glutamate and aspartate in the entopeduncular nucleus of the rat determined by microdialysis: regulation by striatal dopamine D2 receptors via the indirect striatal output pathway?" @default.
- W1984399399 cites W1589264845 @default.
- W1984399399 cites W1917378969 @default.
- W1984399399 cites W1967063692 @default.
- W1984399399 cites W1968474308 @default.
- W1984399399 cites W1970850115 @default.
- W1984399399 cites W1975276395 @default.
- W1984399399 cites W1975814998 @default.
- W1984399399 cites W1976001797 @default.
- W1984399399 cites W1976429984 @default.
- W1984399399 cites W1979098045 @default.
- W1984399399 cites W1979892327 @default.
- W1984399399 cites W1980464693 @default.
- W1984399399 cites W1982386259 @default.
- W1984399399 cites W1985415750 @default.
- W1984399399 cites W1985420205 @default.
- W1984399399 cites W1989686587 @default.
- W1984399399 cites W1991546506 @default.
- W1984399399 cites W1991603311 @default.
- W1984399399 cites W1992092449 @default.
- W1984399399 cites W1993749473 @default.
- W1984399399 cites W1999649044 @default.
- W1984399399 cites W2003179182 @default.
- W1984399399 cites W2016033585 @default.
- W1984399399 cites W2018946524 @default.
- W1984399399 cites W2027541684 @default.
- W1984399399 cites W2027712916 @default.
- W1984399399 cites W2028093765 @default.
- W1984399399 cites W2032242647 @default.
- W1984399399 cites W2033631550 @default.
- W1984399399 cites W2037260025 @default.
- W1984399399 cites W2038783305 @default.
- W1984399399 cites W2041318959 @default.
- W1984399399 cites W2043414219 @default.
- W1984399399 cites W2043859166 @default.
- W1984399399 cites W2044530383 @default.
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- W1984399399 cites W2074402500 @default.
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- W1984399399 cites W2078395143 @default.
- W1984399399 cites W2088495343 @default.
- W1984399399 cites W2089150464 @default.
- W1984399399 cites W2093776198 @default.
- W1984399399 cites W2093899264 @default.
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- W1984399399 doi "https://doi.org/10.1016/s0006-8993(97)00033-4" @default.
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