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1.
Neuropsychopharmacology ; 42(3): 707-715, 2017 02.
Article in English | MEDLINE | ID: mdl-27468917

ABSTRACT

The increase in dopamine (DA) neurotransmission stimulated by in vivo cocaine exposure is tempered by G protein-dependent inhibitory feedback mechanisms in DA neurons of the ventral tegmental area (VTA). G protein-gated inwardly rectifying K+ (GIRK/Kir3) channels mediate the direct inhibitory effect of GABAB receptor (GABABR) and D2 DA receptor (D2R) activation in VTA DA neurons. Here we examined the effect of the DA neuron-specific loss of GIRK channels on D2R-dependent regulation of VTA DA neuron excitability and on cocaine-induced, reward-related behaviors. Selective ablation of Girk2 in DA neurons did not alter the baseline excitability of VTA DA neurons but significantly reduced the magnitude of D2R-dependent inhibitory somatodendritic currents and blunted the impact of D2R activation on spontaneous activity and neuronal excitability. Mice lacking GIRK channels in DA neurons exhibited increased locomotor activation in response to acute cocaine administration and an altered locomotor sensitization profile, as well as increased responding for and intake of cocaine in an intravenous self-administration test. These mice, however, showed unaltered cocaine-induced conditioned place preference. Collectively, our data suggest that feedback inhibition to VTA DA neurons, mediated by GIRK channel activation, tempers the locomotor stimulatory effect of cocaine while also modulating the reinforcing effect of cocaine in an operant-based self-administration task.


Subject(s)
Behavior, Animal/drug effects , Cocaine/pharmacology , Dopaminergic Neurons/metabolism , G Protein-Coupled Inwardly-Rectifying Potassium Channels/metabolism , Learning/drug effects , Receptors, Dopamine D2/metabolism , Reward , Ventral Tegmental Area/metabolism , Animals , Dopaminergic Neurons/drug effects , G Protein-Coupled Inwardly-Rectifying Potassium Channels/drug effects , Mice , Mice, Transgenic , Receptors, Dopamine D2/drug effects , Ventral Tegmental Area/drug effects
2.
Biol Psychiatry ; 80(10): 796-806, 2016 11 15.
Article in English | MEDLINE | ID: mdl-26612516

ABSTRACT

BACKGROUND: Cognitive dysfunction occurs in many debilitating conditions including Alzheimer's disease, Down syndrome, schizophrenia, and mood disorders. The dorsal hippocampus is a critical locus of cognitive processes linked to spatial and contextual learning. G protein-gated inwardly rectifying potassium ion (GIRK/Kir3) channels, which mediate the postsynaptic inhibitory effect of many neurotransmitters, have been implicated in hippocampal-dependent cognition. Available evidence, however, derives primarily from constitutive gain-of-function models that lack cellular specificity. METHODS: We used constitutive and neuron-specific gene ablation models targeting an integral subunit of neuronal GIRK channels (GIRK2) to probe the impact of GIRK channels on associative learning and memory. RESULTS: Constitutive Girk2-/- mice exhibited a striking deficit in hippocampal-dependent (contextual) and hippocampal-independent (cue) fear conditioning. Mice lacking GIRK2 in gamma-aminobutyric acid neurons (GAD-Cre:Girk2flox/flox mice) exhibited a clear deficit in GIRK-dependent signaling in dorsal hippocampal gamma-aminobutyric acid neurons but no evident behavioral phenotype. Mice lacking GIRK2 in forebrain pyramidal neurons (CaMKII-Cre(+):Girk2flox/flox mice) exhibited diminished GIRK-dependent signaling in dorsal, but not ventral, hippocampal pyramidal neurons. CaMKII-Cre(+):Girk2flox/flox mice also displayed a selective impairment in contextual fear conditioning, as both cue fear and spatial learning were intact in these mice. Finally, loss of GIRK2 in forebrain pyramidal neurons correlated with enhanced long-term depression and blunted depotentiation of long-term potentiation at the Schaffer collateral/cornu ammonis 1 synapse in the dorsal hippocampus. CONCLUSIONS: Our data suggest that GIRK channels in dorsal hippocampal pyramidal neurons are necessary for normal learning involving aversive stimuli and support the contention that dysregulation of GIRK-dependent signaling may underlie cognitive dysfunction in some disorders.


Subject(s)
Cognitive Dysfunction/metabolism , Fear/physiology , G Protein-Coupled Inwardly-Rectifying Potassium Channels/physiology , Hippocampus/metabolism , Learning/physiology , Neuronal Plasticity/physiology , Pyramidal Cells/metabolism , Signal Transduction/physiology , Animals , Cognitive Dysfunction/physiopathology , Conditioning, Psychological , Hippocampus/physiopathology , Mice , Mice, Transgenic
3.
J Neurosci ; 35(18): 7131-42, 2015 May 06.
Article in English | MEDLINE | ID: mdl-25948263

ABSTRACT

G-protein-gated inwardly rectifying K(+) (GIRK/Kir3) channel activation underlies key physiological effects of opioids, including analgesia and dependence. GIRK channel activation has also been implicated in the opioid-induced inhibition of midbrain GABA neurons and consequent disinhibition of dopamine (DA) neurons in the ventral tegmental area (VTA). Drug-induced disinhibition of VTA DA neurons has been linked to reward-related behaviors and underlies opioid-induced motor activation. Here, we demonstrate that mouse VTA GABA neurons express a GIRK channel formed by GIRK1 and GIRK2 subunits. Nevertheless, neither constitutive genetic ablation of Girk1 or Girk2, nor the selective ablation of GIRK channels in GABA neurons, diminished morphine-induced motor activity in mice. Moreover, direct activation of GIRK channels in midbrain GABA neurons did not enhance motor activity. In contrast, genetic manipulations that selectively enhanced or suppressed GIRK channel function in midbrain DA neurons correlated with decreased and increased sensitivity, respectively, to the motor-stimulatory effect of systemic morphine. Collectively, these data support the contention that the unique GIRK channel subtype in VTA DA neurons, the GIRK2/GIRK3 heteromer, regulates the sensitivity of the mouse mesolimbic DA system to drugs with addictive potential.


Subject(s)
Analgesics, Opioid/pharmacology , Dopaminergic Neurons/physiology , G Protein-Coupled Inwardly-Rectifying Potassium Channels/physiology , GABAergic Neurons/physiology , Motor Activity/physiology , Animals , Dopaminergic Neurons/drug effects , Dose-Response Relationship, Drug , GABAergic Neurons/drug effects , Mice , Mice, Inbred C57BL , Mice, Knockout , Motor Activity/drug effects , Protein Subunits/physiology , Ventral Tegmental Area/drug effects , Ventral Tegmental Area/physiology
4.
Neuron ; 80(1): 159-70, 2013 Oct 02.
Article in English | MEDLINE | ID: mdl-24094109

ABSTRACT

Repeated cocaine exposure triggers adaptations in layer 5/6 glutamatergic neurons in the medial prefrontal cortex (mPFC) that promote behavioral sensitization and drug-seeking behavior. While suppression of metabotropic inhibitory signaling has been implicated in these behaviors, underlying mechanisms are unknown. Here, we show that Girk/K(IR)3 channels mediate most of the GABA(B) receptor (GABA(B)R)-dependent inhibition of layer 5/6 pyramidal neurons in the mPFC and that repeated cocaine suppresses this pathway. This adaptation was selective for GABA(B)R-dependent Girk signaling in layer 5/6 pyramidal neurons of the prelimbic cortex (PrLC) and involved a D1/5 dopamine receptor- and phosphorylation-dependent internalization of GABA(B)R and Girk channels. Persistent suppression of Girk signaling in layer 5/6 of the dorsal mPFC enhanced cocaine-induced locomotor activity and occluded behavioral sensitization. Thus, the cocaine-induced suppression of GABA(B)R-Girk signaling in layer 5/6 pyramidal neurons of the prelimbic cortex appears to represent an early adaptation critical for promoting addiction-related behavior.


Subject(s)
Cocaine/pharmacology , G Protein-Coupled Inwardly-Rectifying Potassium Channels/metabolism , Neurons/metabolism , Pyramidal Cells/metabolism , Signal Transduction/drug effects , gamma-Aminobutyric Acid/metabolism , Animals , Behavior, Animal/physiology , Drug-Seeking Behavior/physiology , Mice , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Prefrontal Cortex/drug effects , Prefrontal Cortex/metabolism , Pyramidal Cells/drug effects , Receptors, Dopamine D1/metabolism
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