| Literature DB >> 29706992 |
María Verónica Baez1, Magalí Cecilia Cercato1, Diana Alicia Jerusalinsky1.
Abstract
NMDA ionotropic glutamate receptors (NMDARs) are crucial in activity-dependent synaptic changes and in learning and memory. NMDARs are composed of two GluN1 essential subunits and two regulatory subunits which define their pharmacological and physiological profile. In CNS structures involved in cognitive functions as the hippocampus and prefrontal cortex, GluN2A and GluN2B are major regulatory subunits; their expression is dynamic and tightly regulated, but little is known about specific changes after plasticity induction or memory acquisition. Data strongly suggest that following appropriate stimulation, there is a rapid increase in surface GluN2A-NMDAR at the postsynapses, attributed to lateral receptor mobilization from adjacent locations. Whenever synaptic plasticity is induced or memory is consolidated, more GluN2A-NMDARs are assembled likely using GluN2A from a local translation and GluN1 from local ER. Later on, NMDARs are mobilized from other pools, and there are de novo syntheses at the neuron soma. Changes in GluN1 or NMDAR levels induced by synaptic plasticity and by spatial memory formation seem to occur in different waves of NMDAR transport/expression/degradation, with a net increase at the postsynaptic side and a rise in expression at both the spine and neuronal soma. This review aims to put together that information and the proposed hypotheses.Entities:
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Year: 2018 PMID: 29706992 PMCID: PMC5863338 DOI: 10.1155/2018/5093048
Source DB: PubMed Journal: Neural Plast ISSN: 1687-5443 Impact factor: 3.599
Figure 1Schematic representation of the proposed model for NMDAR localization and expression after plasticity induction. After a stimulus that would elicit long-term plasticity, there is a rapid increase in surface GluN2A-NMDAR at the postsynaptic side, which is likely due to lateral receptor mobilization from adjacent locations (step 1). Whenever plasticity was effectively induced, more GluN2A-NMDARs would be assembled using GluN2A from local translation and GluN1 retained in local ER (step 2). As more NMDARs are needed, mobilization from other pools would contribute to enhance NMDAR expression at synapses (step 3). As nonsynaptic pools decrease, some signals should activate NMDAR subunits expression at the neuronal soma, which would lead to a transient increase in subunits level there (steps 4-5).
Changes in NMDAR subunits after memory acquisition. Changes in NMDAR subunits after training different animals in various behavioral paradigms.
| Animal model (age) | Task | Structure analyzed | Method | Timing | NMDAR changes | Ref. |
|---|---|---|---|---|---|---|
| Domestic chicks (one day) | Passive avoidance | Forebrain | Quantitative autoradiography of ligand-receptor binding | 30 min after training | Increased binding of glutamate and MK-801 tritiated to NMDA receptors. | [ |
| Long Evans rats raised in complete darkness (21–23 days) | Light exposure | Visual cortex | WB of synaptosomes | Immediately after exposure to 0.5, 1, 1.5, or 2 h of a normal-lighted environment | 1 h of light exposure is enough to produce an increase of GluN2A, without changes in GluN1 and GluN2B. | [ |
| Wistar rats (2 months) | Inhibitory avoidance (step down) | Hippocampus | WB of whole homogenates and synaptic plasma membranes (SPM) | 0, 30, and 120 min after training | Increase of GluN1 at 30 min in SPM though not in homogenates; returning to naive and control levels 120 min after training. | [ |
| Adult Wistar rats | Inhibitory avoidance (step through) | Hippocampus | WB of whole homogenates and membrane-enriched protein extracts | 1 h after training | Increase of GluN1 in membranes, though not in homogenates. | [ |
| Adult Long Evans rats | Single-pellet reaching | Motor cortex | WB of whole homogenates | 1 week after training | Increase of GluN1 and GluN2A. | [ |
| Wistar rats (2 months) | Open field | Hippocampus | WB of whole homogenates | 0, 30, 70 min and 24 hs after training; 0 and 70 min after TEST | Increase of GluN1 and GluN2A, but not GluN2B, at 70 min after training. | [ |
| Sprague-Dawley rats (10–14 weeks) | Radial arm maze | Frontal cortex and hippocampus | BN PAGE WB of synaptic membranes | 6 h after training | Increase of GluN1 and GluN2A in both structures. | [ |
| Sprague-Dawley rats (6 days) | Odor preference | Anterior piriform cortex | WB of synaptic membranes | 3 h after training | Downregulation of GluN1 surface expression. | [ |
| Adult | Context signal memory | Central brain and thoracic ganglion | WB of BS3-treated homogenates (cross-linking assay) | 0, 3, and 24 h after training | Downregulation of GluN1 surface expression in central brain immediately after training; upregulation 3 h later; no difference from naive and controls at 24 h. | [ |
| Adult Sprague-Dawley rats | Fear conditioning | Hippocampal CA1 region | WB of whole homogenates and synaptic membranes | 5–10 min after training | Increase of GluN1 and GluN2B, but not GluN2A, in membranes. | [ |
| Wistar rats (1, 2, and 3 months old) | Open field | Hippocampus, amygdala and CPF | WB of whole homogenates | 0, 70, 90, 120, 180, and 240 min after training | Transient increase, lasting 90 min or less, of GluN1 and GluN2A, but not of GluN2B 70 min after training, in the hippocampus at all ages. | [ |
| Wistar rats (3 months old) | Object recognition | Hippocampus and CPF | WB of whole homogenates | 0 and 70 min after training and after TEST | Increase of GluN1 and GluN2A, but not GluN2B, 70 min after training in the hippocampus, without changes in CPF. |
Changes in NMDAR subunits after plasticity induction. Changes in NMDAR expression or in NMDAR subunits level after inducing plasticity in several experimental models.
| Animal model (age) | Experimental protocol | Structure analyzed | Method | Timing | NMDAR changes | Ref. |
|---|---|---|---|---|---|---|
| Adult Sprague-Dawley rats | LTP | Dentate gyrus | WB of whole homogenates | 0, 0.20, 1, 4, and 48 hs and 2 weeks after LTP induction | Increase of GluNB and GluN2A at 20 and 48 hs after LTP induction. | [ |
| Sprague-Dawley rats (6–8 weeks) | LTP induction in CA1 minislices | Hippocampal CA1 region | (i) WB of synaptosomal membrane and light membrane fractions from minislices | 30 min after LTP induction (subcellular fractionation assay) | Enhanced surface expression of GluN1 and GluN2A at 30 min after stimulation, with a significant decrease in the intracellular pools. There is no change in total NMDAR level (both methods). | [ |
| (ii) WB of BS3-treated homogenates (cross-linking assay) from minislices | 0, 30, 60, 90, 120, 150, and 180 min (cross-linking assay) | The increase of GluN1 and GluN2A starts at 15 min and persists for at least 3 h after LTP induction (cross-linking assay). | ||||
| Rats (6-7 days) | LTP induction in organotypic cultures of hippocampal slices | Hippocampal CA1 region | Whole-cell recordings | GluN2A-NMDAR increase. | [ | |
| Adult Sprague-Dawley rats | LTP | Dentate gyrus | WB of whole homogenates and synaptoneurosomes | 0.20, 4, 8, and 48 h and 2 weeks after LTP induction (whole homogenates assay) | Increase of GluN1 at 8 and 48 h after LTP induction (whole homogenate assay). | [ |
| 0.20 and 48 h (synaptoneurosomes assay) | Increase of GluN2B at 0.20 and 48 h following LTP induction. Increase of GluN1 at 48 h, but not at 20 min, post LTP induction (synaptoneurosomes assay). | |||||
| Sprague-Dawley rats (2 to 21 days) | LTP induction in hippocampal slices | Hippocampal CA1 region | NMDA EPSCs recordings | Milliseconds to seconds | Rapid synaptic shift from GluN2B-NMDAR to GluN2A-NMDAR in young, but not in adult, animals, after LTP induction. | [ |
| Adult Sprague-Dawley rats | LTP | Dentate gyrus | WB of synaptoneurosomes, biotin-tagged synaptic surface extracts and PSD fractions | 20 h and 2 weeks after LTP induction | Increase of GluN1 in the surface-membrane fraction and synaptoneurosomes, but not in PSD fractions, at 48 h post LTP induction. | [ |
| Sprague-Dawley rat embryos (E18) | Glycine stimulation in hippocampal neuron cultures (21–24 DIV) | Hippocampus | (i) WB of homogenates from biotinylated primary cultures | 30 min after glycine stimulation | Enhanced surface expression of GluN1 and GluN2A after stimulation, without change in GluN2B. | [ |
| Sprague-Dawley rat embryos (E18) | NMDA stimulation in hippocampal neuron cultures (21–24 DIV) | Hippocampus | (i) WB of homogenates from primary cultures | From immediately 30 min after stimulation | Enhanced surface expression of GluN1 and GluN2A after stimulation, without change in GluN2B. | [ |
| Wistar rats (P 42–60) | LTP induction in hippocampal slices | Hippocampus | WB of whole-slice homogenates | 0, 30, and 70 min after LTP induction | Increase of GluN1 and GluN2A, but not GluN2B, at 70 min after LTP induction. | [ |