Direct interaction with 14–3-3γ promotes surface expression of Best1 channel in astrocyte
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A. Pae | S. Oh | Eunju Kim | Junsung Woo | E. Hwang | Nam-Chul Cho | Jae-Yong Park | Young-Sun Lee | C. Justin Lee | Minhee Cho
[1] S. Oh,et al. Distribution and Function of the Bestrophin-1 (Best1) Channel in the Brain , 2017, Experimental neurobiology.
[2] B. Schwappach,et al. A dual phosphorylation switch controls 14-3-3-dependent cell surface expression of TASK-1 , 2016, Journal of Cell Science.
[3] Y. Bae,et al. Channel-mediated astrocytic glutamate modulates hippocampal synaptic plasticity by activating postsynaptic NMDA receptors , 2015, Molecular Brain.
[4] S. Long,et al. Structure and insights into the function of a Ca2+-activated Cl− channel , 2014, Nature.
[5] Burkhard Rost,et al. Structure and selectivity in bestrophin ion channels , 2014, Science.
[6] Eunju Kim,et al. Depletion of 14-3-3γ reduces the surface expression of Transient Receptor Potential Melastatin 4b (TRPM4b) Channels and attenuates TRPM4b-mediated glutamate-induced neuronal cell death , 2014, Molecular Brain.
[7] Yong Jeong,et al. GABA from reactive astrocytes impairs memory in mouse models of Alzheimer's disease , 2014, Nature Medicine.
[8] S. Oh,et al. High glutamate permeability and distal localization of Best1 channel in CA1 hippocampal astrocyte , 2013, Molecular Brain.
[9] A. Fournier,et al. Neuroprotective Function of 14-3-3 Proteins in Neurodegeneration , 2013, BioMed research international.
[10] Sukwoo Choi,et al. Channel-mediated astrocytic glutamate release via Bestrophin-1 targets synaptic NMDARs , 2013, Molecular Brain.
[11] S. Oh,et al. Protease activated receptor 1-induced glutamate release in cultured astrocytes is mediated by Bestrophin-1 channel but not by vesicular exocytosis , 2012, Molecular Brain.
[12] Y. Bae,et al. TREK-1 and Best1 Channels Mediate Fast and Slow Glutamate Release in Astrocytes upon GPCR Activation , 2012, Cell.
[13] T. Pawson,et al. Sequence-Specific Recognition of a PxLPxI/L Motif by an Ankyrin Repeat Tumbler Lock , 2012, Science Signaling.
[14] Hee-Sup Shin,et al. Channel-Mediated Tonic GABA Release from Glia , 2010, Science.
[15] S. Traynelis,et al. Bestrophin-1 Encodes for the Ca2+-Activated Anion Channel in Hippocampal Astrocytes , 2009, The Journal of Neuroscience.
[16] W. Walker,et al. An Obligatory Heterodimer of 14-3-3β and 14-3-3ϵ Is Required for Aldosterone Regulation of the Epithelial Sodium Channel* , 2008, Journal of Biological Chemistry.
[17] H. C. Hartzell,et al. Molecular physiology of bestrophins: multifunctional membrane proteins linked to best disease and other retinopathies. , 2008, Physiological reviews.
[18] G. Perea,et al. Astrocytes Potentiate Transmitter Release at Single Hippocampal Synapses , 2007, Science.
[19] C. J. Lee,et al. Astrocytic control of synaptic NMDA receptors , 2007, The Journal of physiology.
[20] Michael M. Halassa,et al. The tripartite synapse: roles for gliotransmission in health and disease. , 2007, Trends in molecular medicine.
[21] G. Carmignoto,et al. Astrocyte control of synaptic transmission and neurovascular coupling. , 2006, Physiological reviews.
[22] R. Frizzell,et al. 14-3-3 Isoforms Are Induced by Aldosterone and Participate in Its Regulation of Epithelial Sodium Channels* , 2006, Journal of Biological Chemistry.
[23] T. Takano,et al. Astrocytic Ca2+ signaling evoked by sensory stimulation in vivo , 2006, Nature Neuroscience.
[24] J. Meldolesi,et al. Astrocytes, from brain glue to communication elements: the revolution continues , 2005, Nature Reviews Neuroscience.
[25] Stephen F Traynelis,et al. Activation of Protease-Activated Receptor-1 Triggers Astrogliosis after Brain Injury , 2005, The Journal of Neuroscience.
[26] C. MacKintosh,et al. Dynamic interactions between 14-3-3 proteins and phosphoproteins regulate diverse cellular processes. , 2004, The Biochemical journal.
[27] P. Sharp,et al. Cre-lox-regulated conditional RNA interference from transgenes. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[28] D. Morrison,et al. Unlocking the code of 14-3-3 , 2004, Journal of Cell Science.
[29] D. Berg,et al. 14-3-3 proteins in the nervous system , 2003, Nature Reviews Neuroscience.
[30] A. Karschin,et al. Interaction with 14‐3‐3 proteins promotes functional expression of the potassium channels TASK‐1 and TASK‐3 , 2002, The Journal of physiology.
[31] J. Crabb,et al. Bestrophin Interacts Physically and Functionally with Protein Phosphatase 2A* , 2002, The Journal of Biological Chemistry.
[32] Chang‐Deng Hu,et al. Visualization of interactions among bZIP and Rel family proteins in living cells using bimolecular fluorescence complementation. , 2002, Molecular cell.
[33] L. Lin,et al. The chaperone protein 14-3-3eta interacts with the nicotinic acetylcholine receptor alpha 4 subunit. Evidence for a dynamic role in subunit stabilization. , 2001, The Journal of biological chemistry.
[34] H. Criss Hartzell,et al. Bimodal Control of a Ca2+-Activated Cl− Channel by Different Ca2+ Signals , 2000, The Journal of general physiology.
[35] Y. Jan,et al. A New ER Trafficking Signal Regulates the Subunit Stoichiometry of Plasma Membrane KATP Channels , 1999, Neuron.
[36] M. Yaffe,et al. The Structural Basis for 14-3-3:Phosphopeptide Binding Specificity , 1997, Cell.
[37] P. Allen,et al. Interaction of 14-3-3 with Signaling Proteins Is Mediated by the Recognition of Phosphoserine , 1996, Cell.
[38] Y. W. Fung,et al. Selective regulation of 14‐3‐3η in primary culture of cerebral cortical neurons and astrocytes during development , 2005, Journal of neuroscience research.
[39] S. Masters,et al. 14-3-3 proteins: structure, function, and regulation. , 2000, Annual review of pharmacology and toxicology.