Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 7 de 7
Filter
Add more filters










Database
Language
Publication year range
1.
Neurobiol Learn Mem ; 114: 32-9, 2014 Oct.
Article in English | MEDLINE | ID: mdl-24752151

ABSTRACT

Neuronal activity regulates AMPA receptor trafficking, a process that mediates changes in synaptic strength, a key component of learning and memory. This form of plasticity may be induced by stimulation of the NMDA receptor which, among its activities, increases cyclic guanosine monophosphate (cGMP) through the nitric oxide synthase pathway. cGMP-dependent protein kinase type II (cGKII) is ultimately activated via this mechanism and AMPA receptor subunit GluA1 is phosphorylated at serine 845. This phosphorylation contributes to the delivery of GluA1 to the synapse, a step that increases synaptic strength. Previous studies have shown that cGKII-deficient mice display striking spatial learning deficits in the Morris Water Maze compared to wild-type littermates as well as lowered GluA1 phosphorylation in the postsynaptic density of the prefrontal cortex (Serulle et al., 2007; Wincott et al., 2013). In the current study, we show that cGKII knockout mice exhibit impaired working memory as determined using the prefrontal cortex-dependent Radial Arm Maze (RAM). Additionally, we report reduced repetitive behavior in the Marble Burying task (MB), and heightened anxiety-like traits in the Novelty Suppressed Feeding Test (NSFT). These data suggest that cGKII may play a role in the integration of information that conveys both anxiety-provoking stimuli as well as the spatial and environmental cues that facilitate functional memory processes and appropriate behavioral response.


Subject(s)
Anxiety/genetics , Behavior, Animal/physiology , Cyclic GMP-Dependent Protein Kinase Type II/genetics , Memory, Short-Term/physiology , Animals , Anxiety/metabolism , Cyclic GMP-Dependent Protein Kinase Type II/metabolism , Maze Learning/physiology , Mice , Mice, Knockout , Phosphorylation
2.
J Biol Chem ; 288(49): 35297-306, 2013 Dec 06.
Article in English | MEDLINE | ID: mdl-24133208

ABSTRACT

Regulation of striatal medium spiny neuron synapses underlies forms of motivated behavior and pathological drug seeking. A primary mechanism for increasing synaptic strength is the trafficking of α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptors (AMPARs) into the postsynapse, a process mediated by GluA1 AMPAR subunit phosphorylation. We have examined the role of converging glutamate and dopamine inputs in regulating biochemical cascades upstream of GluA1 phosphorylation. We focused on the role of Ca(2+)-permeable AMPARs (CPARs), which lack the GluA2 AMPAR subunit. Under conditions that prevented depolarization, stimulation of CPARs activated neuronal nitric oxide synthase and production of cGMP. CPAR-dependent cGMP production was sufficient to induce synaptic insertion of GluA1, detected by confocal microscopy, through a mechanism dependent on GluA1 Ser-845 phosphorylation. Dopamine D1 receptors, in contrast, stimulate GluA1 extra synaptic insertion. Simultaneous activation of dopamine D1 receptors and CPARs induced additive increases in GluA1 membrane insertion, but only CPAR stimulation augmented CPAR-dependent GluA1 synaptic insertion. This incorporation into the synapse proceeded through a sequential two-step mechanism; that is, cGMP-dependent protein kinase II facilitated membrane insertion and/or retention, and protein kinase C activity was necessary for synaptic insertion. These data suggest a feed-forward mechanism for synaptic priming whereby an initial stimulus acting independently of voltage-gated conductance increases striatal neuron excitability, facilitating greater neuronal excitation by a subsequent stimulus.


Subject(s)
Neurons/metabolism , Receptors, AMPA/metabolism , Receptors, Dopamine D1/metabolism , Animals , Calcium/metabolism , Cells, Cultured , Corpus Striatum/metabolism , Cyclic GMP/biosynthesis , Phosphorylation , Protein Subunits , Rats , Receptors, AMPA/chemistry , Signal Transduction
3.
Mol Brain ; 6: 32, 2013 Jul 09.
Article in English | MEDLINE | ID: mdl-23835161

ABSTRACT

BACKGROUND: Pain and natural rewards such as food elicit different behavioral effects. Both pain and rewards, however, have been shown to alter synaptic activities in the nucleus accumbens (NAc), a key component of the brain reward system. Mechanisms by which external stimuli regulate plasticity at NAc synapses are largely unexplored. Medium spiny neurons (MSNs) from the NAc receive excitatory glutamatergic inputs and modulatory dopaminergic and cholinergic inputs from a variety of cortical and subcortical structures. Glutamate inputs to the NAc arise primarily from prefrontal cortex, thalamus, amygdala, and hippocampus, and different glutamate projections provide distinct synaptic and ultimately behavioral functions. The family of vesicular glutamate transporters (VGLUTs 1-3) plays a key role in the uploading of glutamate into synaptic vesicles. VGLUT1-3 isoforms have distinct expression patterns in the brain, but the effects of external stimuli on their expression patterns have not been studied. RESULTS: In this study, we use a sucrose self-administration paradigm for natural rewards, and spared nerve injury (SNI) model for chronic pain. We examine the levels of VGLUTs (1-3) in synaptoneurosomes of the NAc in these two behavioral models. We find that chronic pain leads to a decrease of VGLUT1, likely reflecting decreased projections from the cortex. Pain also decreases VGLUT3 levels, likely representing a decrease in projections from GABAergic, serotonergic, and/or cholinergic interneurons. In contrast, chronic consumption of sucrose increases VGLUT3 in the NAc, possibly reflecting an increase from these interneuron projections. CONCLUSION: Our study shows that natural rewards and pain have distinct effects on the VGLUT expression pattern in the NAc, indicating that glutamate inputs to the NAc are differentially modulated by rewards and pain.


Subject(s)
Chronic Pain/metabolism , Nucleus Accumbens/metabolism , Reward , Vesicular Glutamate Transport Proteins/metabolism , Animals , Chronic Pain/pathology , Male , Nerve Tissue/drug effects , Nerve Tissue/metabolism , Nerve Tissue/pathology , Nucleus Accumbens/pathology , Rats , Rats, Sprague-Dawley , Sucrose/pharmacology
4.
J Neurosci ; 33(14): 6123-32, 2013 Apr 03.
Article in English | MEDLINE | ID: mdl-23554493

ABSTRACT

The mechanisms by which natural rewards such as sugar affect synaptic transmission and behavior are largely unexplored. Here, we investigate regulation of nucleus accumbens synapses by sucrose intake. Previous studies have shown that AMPA receptor (AMPAR) trafficking is a major mechanism for regulating synaptic strength, and that in vitro, trafficking of AMPARs containing the GluA1 subunit takes place by a two-step mechanism involving extrasynaptic and then synaptic receptor transport. We report that in rat, repeated daily ingestion of a 25% sucrose solution transiently elevated spontaneous locomotion and potentiated accumbens core synapses through incorporation of Ca(2+)-permeable AMPA receptors (CPARs), which are GluA1-containing, GluA2-lacking AMPARs. Electrophysiological, biochemical, and quantitative electron microscopy studies revealed that sucrose training (7 d) induced a stable (>24 h) intraspinous GluA1 population, and that in these rats a single sucrose stimulus rapidly (5 min) but transiently (<24 h) elevated GluA1 at extrasynaptic sites. CPARs and dopamine D1 receptors were required in vivo for elevated locomotion after sucrose ingestion. Significantly, a 7 d protocol of daily ingestion of a 3% solution of saccharin, a noncaloric sweetener, induced synaptic GluA1 similarly to 25% sucrose ingestion. These findings identify multistep GluA1 trafficking, previously described in vitro, as a mechanism for acute regulation of synaptic transmission in vivo by a natural orosensory reward. Trafficking is stimulated by a chemosensory pathway that is not dependent on the caloric value of sucrose.


Subject(s)
Neurons/metabolism , Receptors, AMPA/metabolism , Sucrose/administration & dosage , Sweetening Agents/administration & dosage , Animals , Carrier Proteins , Conditioning, Operant/physiology , Dopamine beta-Hydroxylase/metabolism , Excitatory Postsynaptic Potentials/drug effects , In Vitro Techniques , Locomotion/physiology , Male , Microscopy, Electron, Transmission , Neurons/drug effects , Nucleus Accumbens/cytology , Phosphoproteins/metabolism , Post-Synaptic Density/metabolism , Post-Synaptic Density/ultrastructure , Protein Transport/drug effects , Rats , Rats, Sprague-Dawley , Subcellular Fractions/metabolism , Synaptosomes/metabolism , Synaptosomes/ultrastructure
5.
Neurobiol Learn Mem ; 99: 32-7, 2013 Jan.
Article in English | MEDLINE | ID: mdl-23103773

ABSTRACT

Activity-dependent trafficking of AMPA receptors to synapses regulates synaptic strength. Activation of the NMDA receptor induces several second messenger pathways that contribute to receptor trafficking-dependent plasticity, including the NO pathway, which elevates cGMP. In turn, cGMP activates the cGMP-dependent protein kinase type II (cGKII), which phosphorylates the AMPA receptor subunit GluA1 at serine 845, a critical step facilitating synaptic delivery in the mechanism of activity-dependent synaptic potentiation. Since cGKII is expressed in the striatum, amygdala, cerebral cortex, and hippocampus, it has been proposed that mice lacking cGKII may present phenotypic differences compared to their wild-type littermates in emotion-dependent tasks, learning and memory, and drug reward salience. Previous studies have shown that cGKII KO mice ingest higher amounts of ethanol as well as exhibit elevated anxiety levels compared to wild-type (WT) littermates. Here, we show that cGKII KO mice are significantly deficient in spatial learning while exhibiting facilitated motor coordination, demonstrating a clear dependence of memory-based tasks on cGKII. We also show diminished GluA1 phosphorylation in the postsynaptic density (PSD) of cGKII KO prefrontal cortex while in hippocampal PSD fractions, phosphorylation was not significantly altered. These data suggest that the role of cGKII may be more robust in particular brain regions, thereby impacting complex behaviors dependent on these regions differently.


Subject(s)
Cyclic GMP-Dependent Protein Kinase Type II/physiology , Hippocampus/physiology , Maze Learning/physiology , Memory Disorders/physiopathology , Motor Skills/physiology , Prefrontal Cortex/physiology , Animals , Cyclic GMP/metabolism , Cyclic GMP-Dependent Protein Kinase Type II/deficiency , Cyclic GMP-Dependent Protein Kinase Type II/genetics , Hippocampus/metabolism , Memory Disorders/genetics , Memory Disorders/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , Phosphorylation/physiology , Post-Synaptic Density/metabolism , Prefrontal Cortex/metabolism , Receptors, AMPA/metabolism , Rotarod Performance Test , Sensory Gating
6.
Anesthesiology ; 115(4): 812-21, 2011 Oct.
Article in English | MEDLINE | ID: mdl-21934410

ABSTRACT

BACKGROUND: Chronic pain is associated with depression. In rodents, pain is often assessed by sensory hypersensitivity, which does not sufficiently measure affective responses. Low-dose ketamine has been used to treat both pain and depression, but it is not clear whether ketamine can relieve depression associated with chronic pain and whether this antidepressant effect depends on its antinociceptive properties. METHODS: The authors examined whether the spared nerve injury model of neuropathic pain induces depressive behavior in rats, using sucrose preference test and forced swim test, and tested whether a subanesthetic dose of ketamine treats spared nerve injury-induced depression. RESULTS: Spared nerve injury-treated rats, compared with control rats, showed decreased sucrose preference (0.719 ± 0.068 (mean ± SEM) vs. 0.946 ± 0.010) and enhanced immobility in the forced swim test (107.3 ± 14.6s vs. 56.2 ± 12.5s). Further, sham-operated rats demonstrated depressive behaviors in the acute postoperative period (0.790 ± 0.062 on postoperative day 2). A single subanesthetic dose of ketamine (10 mg/kg) did not alter spared nerve injury-induced hypersensitivity; however, it treated spared nerve injury-associated depression-like behaviors (0.896 ± 0.020 for ketamine vs. 0.663 ± 0.080 for control rats 1 day after administration; 0.858 ± 0.017 for ketamine vs. 0.683 ± 0.077 for control rats 5 days after administration). CONCLUSIONS: Chronic neuropathic pain leads to depression-like behaviors. The postoperative period also confers vulnerability to depression, possibly due to acute pain. Sucrose preference test and forced swim test may be used to compliment sensory tests for assessment of pain in animal studies. Low-dose ketamine can treat depression-like behaviors induced by chronic neuropathic pain.


Subject(s)
Anesthetics, Dissociative/pharmacology , Antidepressive Agents , Depression/etiology , Depression/psychology , Ketamine/pharmacology , Neuralgia/drug therapy , Neuralgia/psychology , Animals , Behavior, Animal/drug effects , Cold Temperature , Corticosterone/blood , Dose-Response Relationship, Drug , Hyperalgesia/psychology , Male , Neuralgia/complications , Pain Measurement/drug effects , Physical Stimulation , Rats , Rats, Sprague-Dawley , Sucrose , Swimming/psychology , Taste/drug effects
7.
J Neurosci ; 27(13): 3445-55, 2007 Mar 28.
Article in English | MEDLINE | ID: mdl-17392461

ABSTRACT

Postsynaptic nitric oxide (NO) production affects synaptic plasticity and neuronal cell death. Ca2+ fluxes through the NMDA receptor (NMDAR) stimulate the production of NO by neuronal nitric oxide synthase (nNOS). However, the mechanisms by which nNOS activity is regulated are poorly understood. We evaluated the effect of neuronal stimulation with glutamate on the phosphorylation of nNOS. We show that, in cortical neurons, a low glutamate concentration (30 microM) induces rapid and transient NMDAR-dependent phosphorylation of S1412 by Akt, followed by sustained phosphorylation of S847 by CaMKII (calcium-calmodulin-dependent kinase II). We demonstrate that phosphorylation of S1412 by Akt is necessary for activation of nNOS by the NMDAR. nNOS mutagenesis confirms that these phosphorylations respectively activate and inhibit nNOS and, thus, transiently activate NO production. A constitutively active (S1412D), but not a constitutively repressed (S847D) nNOS mutant elevated surface glutamate receptor 2 levels, demonstrating that these phosphorylations can control AMPA receptor trafficking via NO. Notably, an excitotoxic stimulus (150 microM glutamate) induced S1412, but not S847 phosphorylation, leading to deregulated nNOS activation. S1412D did not kill neurons; however, it enhanced the excitotoxicity of a concomitant glutamate stimulus. We propose a swinging domain model for the regulation of nNOS: S1412 phosphorylation facilitates electron flow within the reductase module of nNOS, increasing nNOS sensitivity to Ca2+-calmodulin. These findings suggest a critical role for a kinetically complex and novel series of regulatory nNOS phosphorylations induced by the NMDA receptor for the in vivo control of nNOS.


Subject(s)
Cell Death/physiology , Neurons/enzymology , Nitric Oxide Synthase/metabolism , Receptors, AMPA/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , Animals , Cells, Cultured , Cerebral Cortex/embryology , Cerebral Cortex/metabolism , Glutamic Acid/metabolism , Hippocampus/embryology , Hippocampus/metabolism , Phosphorylation , Protein Transport/physiology , Rats
SELECTION OF CITATIONS
SEARCH DETAIL
...