Page 76 - AN-1-2
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Advanced Neurology                                               NMDA receptors in neuropsychiatric diseases



                NMDA receptors during trafficking in neurons before   surface dynamics of extrasynaptic NMDA receptors.  Cell
                synapse formation. J Neurosci, 24(38): 8253–8264.   Death Dis, 7(11): e2466.
                https://doi.org/10.1523/JNEUROSCI.2555-04.2004     https://doi.org/10.1038/cddis.2016.279
            110.  Suh YH, Terashima A, Petralia RS, et al., 2010, A neuronal   121.  Michaluk P, Groc L, Mikasova L, et al., 2009, Matrix
                role  for  SNAP-23  in  postsynaptic  glutamate  receptor   metalloproteinase-9 controls NMDA receptor surface
                trafficking. Nat Neurosci, 13(3): 338–343.         diffusion through integrin beta1 signaling.  J  Neurosci,
                                                                   29(18): 6007–6012.
                https://doi.org/10.1038/nn.2488
                                                                   https://doi.org/10.1523/JNEUROSCI.5346-08.2009
            111.  Tovar KR, Westbrook GL, 2002, Mobile NMDA receptors at
                hippocampal synapses. Neuron, 34(2): 255–264.   122.  Mikasova L, Xiong H, Kerkhofs A, et al., 2017, Stress
                                                                   hormone rapidly tunes synaptic NMDA receptor through
                https://doi.org/10.1016/s0896-6273(02)00658-x
                                                                   membrane dynamics and mineralocorticoid signalling. Sci
            112.  Groc L, Heine M, Cousins SL, et al., 2006, NMDA receptor   Rep, 7: 8053.
                surface mobility depends on NR2A-2B subunits. Proc Natl
                Acad Sci U S A, 103(49): 18769–18774.              https://doi.org/10.1038/s41598-017-08695-3
                                                               123.  Potier M, Georges F, Brayda-Bruno L, et al., 2016, Temporal
                https://doi.org/10.1073/pnas.0605238103
                                                                   memory and its enhancement by estradiol requires surface
            113.  Dupuis JP, Ladepeche L, Seth H,  et  al., 2014, Surface   dynamics of hippocampal CA1 N-methyl-D-aspartate
                dynamics of GluN2B-NMDA receptors controls plasticity   receptors. Biol Psychiatry, 79: 735–745.
                of maturing glutamate synapses. EMBO J, 33(8): 842–861.
                                                                   https://doi.org/1016/j.biopsych.2015.07.017
                https://doi.org/10.1002/embj.201386356
                                                               124.  Roche KW, Standley S, McCallum J, et al., 2001, Molecular
            114.  Ferreira JS, Papouin T, Ladépêche L, et al., 2017, Co-agonists   determinants of NMDA receptor internalization.  Nature
                differentially tune GluN2B-NMDA receptor trafficking at   Neurosci, 4: 794–802.
                hippocampal synapses. ELife 6: e25492.
                                                                   https://doi.org/1038/90498
                https://doi.org/10.7554/eLife.25492
                                                               125.  Lavezzari G, McCallum J, Dewey CM, et al., 2004, Subunit-
            115.  Sun YJ, Xu YG, Chen XK, et al., 2018, The differences   specific regulation of NMDA receptor endocytosis.
                between GluN2A and GluN2B signaling in the brain. J   J Neurosci, 24: 6383–6391.
                Neuro Res, 96: 1430–1443.
                                                                   https://doi.org/1523/JNEUROSCI.1890-04.2004
                https://doi.org/10.1002/jnr.24251
                                                               126.  Blanpied TA, Scott DB, Ehlers MD, 2002, Dynamics and
            116.  Kellermayer B, Ferreira JS, Dupuis J, et al., 2018, Differential   regulation of clathrin coats at specialized endocytic zones of
                nanoscale topography and functional role of GluN2-NMDA   dendrites and spines. Neuron, 36: 435–449.
                receptor subtypes at glutamatergic synapses. Neuron, 100(1):
                106–119. e107.                                     https://doi.org/1016/s0896-6273(02)00979-0
                                                               127.  Prybylowski K, Chang K, Sans N, et al., 2005, The synaptic
                https://doi.org/10.1016/j.neuron.2018.09.012
                                                                   localization  of  NR2B-containing  NMDA  receptors  is
            117.  Bard L, Sainlos M, Bouchet D, et al., 2010, Dynamic and   controlled by interactions with PDZ proteins and AP-2.
                specific interaction between synaptic NR2-NMDA receptor   Neuron, 47: 845–857.
                and PDZ proteins.  Proc Natl Acad Sci U S A, 107(45):      https://doi.org/1016/j.neuron.2005.08.016
                19561–19566.
                                                               128.  Lavezzari G, McCallum J, Lee R, et al., 2003, Differential
                https://doi.org/10.1073/pnas.1002690107
                                                                   binding of the AP-2 adaptor complex and PSD-95 to the
            118.  Chung HJ, Huang YH, Lau LF, et al., 2004, Regulation of   C-terminus of the NMDA receptor subunit NR2B regulates
                the NMDA receptor complex and trafficking by activity-  surface expression. Neuropharmacology, 45: 729–737.
                dependent phosphorylation of the NR2B subunit  PDZ      https://doi.org/1016/s0028-3908(03)00308-3
                ligand. J Neurosci, 24: 10248–10259.
                                                               129.  Scott DB, Michailidis I, Mu Y,  et al., 2004, Endocytosis
                https://doi.org/10.1523/JNEUROSCI.0546-04.2004
                                                                   and degradative sorting of NMDA receptors by conserved
            119.  Chiu AM, Wang J, Fiske MP, et al., 2019, NMDAR-Activated   membrane-proximal signals. J Neurosci, 24: 7096–7109.
                PP1 Dephosphorylates GluN2B to Modulate NMDAR      https://doi.org/1523/JNEUROSCI.0780-04.2004
                Synaptic Content. Cell Rep, 28(2): 332–341 e335.
                                                               130.  Bliss TV, Lomo T, 1973, Long-lasting potentiation of synaptic
                https://doi.org/10.1016/j.celrep.2019.06.030
                                                                   transmission in the dentate area of the anaesthetized rabbit
            120.  Lesept F, Chevilley A, Jezequel J, et al., 2016, Tissue-type   following  stimulation  of  the  perforant  path.  J  Physiol,
                plasminogen activator controls neuronal death by raising   232: 331–356.


            Volume 1 Issue 2 (2022)                         20                      https://doi.org/10.36922/an.v1i2.148
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