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Tytuł pozycji:

Electrophysiological and biochemical responses of noradrenergic neurons to a non-amphetamine CNS stimulant.

Tytuł:
Electrophysiological and biochemical responses of noradrenergic neurons to a non-amphetamine CNS stimulant.
Autorzy:
German DC
Sanghera MK
Kiser RS
McMillen BA
Shore PA
Źródło:
Brain research [Brain Res] 1979 Apr 27; Vol. 166 (2), pp. 331-9.
Typ publikacji:
Journal Article; Research Support, U.S. Gov't, P.H.S.
Język:
English
Imprint Name(s):
Original Publication: Amsterdam Elsevier/North-Holland Biomedical Press.
MeSH Terms:
Naphthyridines/*pharmacology
Norepinephrine/*metabolism
Receptors, Adrenergic/*drug effects
Animals ; Desipramine/pharmacology ; Dextroamphetamine/pharmacology ; Evoked Potentials/drug effects ; Female ; Haloperidol/pharmacology ; Hindlimb/innervation ; Locus Coeruleus/drug effects ; Locus Coeruleus/physiology ; Mechanoreceptors/drug effects ; Methoxyhydroxyphenylglycol/metabolism ; Neurons/drug effects ; Rats ; Receptors, Dopamine/drug effects
Substance Nomenclature:
0 (Naphthyridines)
0 (Receptors, Adrenergic)
0 (Receptors, Dopamine)
534-82-7 (Methoxyhydroxyphenylglycol)
J6292F8L3D (Haloperidol)
TG537D343B (Desipramine)
TZ47U051FI (Dextroamphetamine)
X4W3ENH1CV (Norepinephrine)
Entry Date(s):
Date Created: 19790427 Date Completed: 19790626 Latest Revision: 20190613
Update Code:
20240104
DOI:
10.1016/0006-8993(79)90218-x
PMID:
427592
Czasopismo naukowe
Amfonelic acid (AFA), a potent non-amphetamine CNS stimulant, has been shown previously to have marked effects on dopamine (DA) metabolism and DA neuronal activity, but no effect on norepinephrine (NE) metabolism. AFA is known to inhibit the NE neuronal uptake mechanism. Other NE uptake inhibitors, such as desipramine (DMI), have been shown to decrease the firing rate of NE-containing locus coeruleus (LC) neurons. The purpose of the present study was to compare the actions of AFA and DMI electrophysiologically on LC neurons, and biochemically on NE metabolism in whg rate, with DMI being more potent. Brain NE metabolism was not influenced by either AFA or DMI at doses considerably higher than those which were effective in reducing NE neuronal impulse flow. Thus, NE uptake inhibition coupled with a decrease in impulse flow results in no net change in NE metabolite formation. The effects of AFA on LC unit activity do not seem to be due to its marked effects on brain DA, since DA receptor blockade with haloperidol had little effect on LC unit responsiveness to AFA (or amphetamine). Whereas AFA has dramatic effects on DA metabolism via enhanced release per impulse, the drug has minimal effects on NE metabolism, and this specificity of action may be related to differences in NE and DA transmitter storage mechanisms. It is concluded that the effects of AFA on NE neuronal firing rate are likely due to the drug's DMI-like action and not to enhanced NE release per impulse.

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