The serotonergic and noradrenergic systems of the hippocampus: their interactions and the effects of antidepressant treatments

Previous reviews have well illustrated how antidepressant treatments can differentially alter several neurotransmitter systems in various brain areas. This review focuses on the effects of distinct classes of antidepressant treatments on the serotonergic and the noradrenergic systems of the hippocam...

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Published inBrain Research Reviews Vol. 23; no. 3; pp. 145 - 195
Main Authors Mongeau, R, Blier, P, de Montigny, C
Format Book Review Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 01.04.1997
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Abstract Previous reviews have well illustrated how antidepressant treatments can differentially alter several neurotransmitter systems in various brain areas. This review focuses on the effects of distinct classes of antidepressant treatments on the serotonergic and the noradrenergic systems of the hippocampus, which is one of the brain limbic areas thought to be relevant in depression: it illustrates the complexity of action of these treatments in a single brain area. First, the basic elements (receptors, second messengers, ion channels, ...) of the serotonergic and noradrenergic systems of the hippocampus are revisited and compared. Second, the extensive interactions occurring between the serotonergic and the noradrenergic systems of the brain are described. Finally, issues concerning the short- and long-term effects of antidepressant treatments on these systems are broadly discussed. Although there are some contradictions, the bulk of data suggests that antidepressant treatments work in the hippocampus by increasing and decreasing, respectively, serotonergic and noradrenergic neurotransmission. This hypothesis is discussed in the context of the purported function of the hippocampus in the formation of memory traces and emotion-related behaviors.
AbstractList Previous reviews have well illustrated how antidepressant treatments can differentially alter several neurotransmitter systems in various brain areas. This review focuses on the effects of distinct classes of antidepressant treatments on the serotonergic and the noradrenergic systems of the hippocampus, which is one of the brain limbic areas thought to be relevant in depression: it illustrates the complexity of action of these treatments in a single brain area. First, the basic elements (receptors, second messengers, ion channels, ...) of the serotonergic and noradrenergic systems of the hippocampus are revisited and compared. Second, the extensive interactions occurring between the serotonergic and the noradrenergic systems of the brain are described. Finally, issues concerning the short- and long-term effects of antidepressant treatments on these systems are broadly discussed. Although there are some contradictions, the bulk of data suggests that antidepressant treatments work in the hippocampus by increasing and decreasing, respectively, serotonergic and noradrenergic neurotransmission. This hypothesis is discussed in the context of the purported function of the hippocampus in the formation of memory traces and emotion-related behaviors.
Author Mongeau, R
de Montigny, C
Blier, P
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  surname: Blier
  fullname: Blier, P
– sequence: 3
  givenname: C
  surname: de Montigny
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BackLink https://www.ncbi.nlm.nih.gov/pubmed/9164669$$D View this record in MEDLINE/PubMed
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Issue 3
Keywords IP 3, inositol-1,4,5-triphosphate
5-CT, 5-carboxyamidotryptamine
NMDA, N-methyl- d-aspartic acid
5,7-DHT, 5,7-dihydroxytrytamine
DOI, 1-(2,5-dimethoxy-4-iodophenyl)-2-aminopropane
Hippocampal formation
LC, locus coeruleus nucleus
NA, noradrenaline
5-HT, 5-hydroxytryptamine, serotonin
Electroconvulsive shocks treatment
TEA, tetraethylammonium
cAMP, cyclic adenosine monophosphate
EPSP, excitatory postsynaptic potential
MAOI, monoamine oxidase inhibitor
MAO, monoamine oxidase
ECS, electroconvulsive shocks treatment
I, current
DSP-4, N-(2-chloroethyl)- N-ethyl-2-bromobenzylamine
GTP, guanosine triphosphate
TFMPP, 1-(3-trifluoromethyl)phenyl)piperazine
Noradrenaline
AHP, afterhyperpolarization
CA, Ammon's horn
5-HTP, 5-hydroxytryptophan
Locus coeruleus
1-PP, 1-(2-pyrimidinyl)-piperazine
Serotonin
Antidepressant drug
SSRI, selective serotonin reuptake inhibitor
MR, median raphe nucleus
GABA, γ-aminobutyric acid
Depression
DR, dorsal raphe nucleus
PCPA, p-chlorophenylalanine
LTP, long-term potentiation
REM, rapid eye movement
LSD, lysergic acid diethylamide
8-OH-DPAT, 8-hydroxy-2(di- n-proylamino)tetralin
MHPG, 3-methoxy-4-hydroxy-phenylglycol
6-OHDA, 6-hydroxydopamine
NALLP, noradrenaline long-lasting potentiation
5-HIAA, 5-hydroxyindoleacetic acid
IPSP, inhibitory postsynaptic potential
TCA, tricyclic antidepressant drug
Raphe nucleus
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Snippet Previous reviews have well illustrated how antidepressant treatments can differentially alter several neurotransmitter systems in various brain areas. This...
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SubjectTerms Animals
Antidepressant drug
Antidepressive Agents - pharmacology
Biogenic Monoamines - physiology
Depression
Depression - drug therapy
Depression - physiopathology
Electroconvulsive shocks treatment
Hippocampal formation
Hippocampus - cytology
Hippocampus - drug effects
Hippocampus - physiology
Humans
Locus coeruleus
Neural Pathways - physiology
Neurons - physiology
Noradrenaline
Norepinephrine - physiology
Raphe nucleus
Serotonin
Serotonin - physiology
Title The serotonergic and noradrenergic systems of the hippocampus: their interactions and the effects of antidepressant treatments
URI https://dx.doi.org/10.1016/S0165-0173(96)00017-3
https://www.ncbi.nlm.nih.gov/pubmed/9164669
https://search.proquest.com/docview/15941395
Volume 23
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