Na+, Cl−, and pH Dependence of the Human Choline Transporter (hCHT) in Xenopus Oocytes: The Proton Inactivation Hypothesis of hCHT in Synaptic Vesicles
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[1] D. Loo,et al. Role of Cl− in Electrogenic Na+-coupled Cotransporters GAT1 and SGLT1* , 2000, The Journal of Biological Chemistry.
[2] R. Edwards,et al. A Leucine-based Motif Mediates the Endocytosis of Vesicular Monoamine and Acetylcholine Transporters* , 1998, The Journal of Biological Chemistry.
[3] Jonathan A Javitch,et al. Amphetamine induces dopamine efflux through a dopamine transporter channel. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[4] M. Kuhar. Sodium-dependent high affinity choline uptake. , 1979, Progress in brain research.
[5] D. D. Perrin. Dissociation Constants of Organic Bases in Aqueous Solution , 1965 .
[6] E. Wright,et al. Na+-to-sugar stoichiometry of SGLT3. , 2001, American journal of physiology. Renal physiology.
[7] H. Lester,et al. Ion Binding and Permeation at the GABA Transporter GAT1 , 1996, The Journal of Neuroscience.
[8] Christian C. Felder,et al. Use of M1–M5 Muscarinic Receptor Knockout Mice as Novel Tools to Delineate the Physiological Roles of the Muscarinic Cholinergic System , 2003, Neurochemical Research.
[9] S. Parsons,et al. Kinetic parameters for the vesicular acetylcholine transporter: two protons are exchanged for one acetylcholine. , 1998, Biochemistry.
[10] H. Noda,et al. Choline uptake systems of rat brain synaptosomes. , 1973, Biochimica et biophysica acta.
[11] M. Quick. Regulating the Conducting States of a Mammalian Serotonin Transporter , 2003, Neuron.
[12] J. Coyle,et al. Rapid regulation of [3H]hemicholinium-3 binding sites in the rat brain , 1986, Brain Research.
[13] J. Rossier,et al. Inhibition by hemicholinium-3 of (14C)acetylcholine synthesis and (3H)choline high-affinity uptake in rat striatal synaptosomes. , 1973, Molecular pharmacology.
[14] Nathan Nelson,et al. The significance of molecular slips in transport systems , 2002, Nature Reviews Molecular Cell Biology.
[15] M. Kavanaugh,et al. Multiple Ionic Conductances of the Human Dopamine Transporter: The Actions of Dopamine and Psychostimulants , 1997, The Journal of Neuroscience.
[16] B. López-Corcuera,et al. Calcium- and Syntaxin 1-mediated Trafficking of the Neuronal Glycine Transporter GLYT2* , 2001, The Journal of Biological Chemistry.
[17] H. Lester,et al. H+ Permeation and pH Regulation at a Mammalian Serotonin Transporter , 1997, The Journal of Neuroscience.
[18] M. Biasi,et al. Cellular mechanisms of nicotine addiction , 2001, Pharmacology Biochemistry and Behavior.
[19] T. Okuda,et al. Ultrastructural localization of high‐affinity choline transporter in the rat neuromuscular junction: Enrichment on synaptic vesicles , 2004, Synapse.
[20] Martin Sarter,et al. Choline transporters, cholinergic transmission and cognition , 2005, Nature Reviews Neuroscience.
[21] E. Wright,et al. A glucose sensor hiding in a family of transporters , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[22] V. Prado,et al. The “ins” and “outs” of the high‐affinity choline transporter CHT1 , 2006, Journal of neurochemistry.
[23] J. Coyle,et al. Characterization of [3H]hemicholinium-3 binding associated with neuronal choline uptake sites in rat brain membranes , 1985, Brain Research.
[24] T. Haga,et al. [The high-affinity choline transporter]. , 2000, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[25] L. DeFelice,et al. Serotonin Transporter Function and Pharmacology Are Sensitive to Expression Level , 2002, The Journal of Biological Chemistry.
[26] J. Tapia,et al. Lethal impairment of cholinergic neurotransmission in hemicholinium-3-sensitive choline transporter knockout mice. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[27] H. Lester,et al. Amino Acid Residues that Control pH Modulation of Transport-Associated Current in Mammalian Serotonin Transporters , 1998, The Journal of Neuroscience.
[28] R. Vandenberg,et al. Molecular basis for proton regulation of glycine transport by glycine transporter subtype 1b. , 2000, Molecular pharmacology.
[29] S. Snyder,et al. Choline: High-Affinity Uptake by Rat Brain Synaptosomes , 1972, Science.
[30] S. Paul,et al. Cholinergic dysfunction in a mouse model of Alzheimer disease is reversed by an anti-A beta antibody. , 2006, The Journal of clinical investigation.
[31] Takashi Okuda,et al. Identification and characterization of the high-affinity choline transporter , 2000, Nature Neuroscience.
[32] D. Loo,et al. Protons drive sugar transport through the Na+/glucose cotransporter (SGLT1). , 1994, The Journal of biological chemistry.
[33] S. Parsons,et al. A critical histidine in the vesicular acetylcholine transporter , 2000, Neurochemistry International.
[34] A. Levey,et al. Vesicular Localization and Activity-Dependent Trafficking of Presynaptic Choline Transporters , 2003, The Journal of Neuroscience.
[35] T. Haga,et al. Functional characterization of the human high‐affinity choline transporter 1 , 2000, FEBS letters.
[36] S. Parsons,et al. Acetylcholine transport, storage, and release. , 1993, International review of neurobiology.
[37] M. Kavanaugh,et al. Ion fluxes associated with excitatory amino acid transport , 1995, Neuron.
[38] V. Pickel,et al. The Mammalian Brain High-Affinity l-Proline Transporter Is Enriched Preferentially in Synaptic Vesicles in a Subpopulation of Excitatory Nerve Terminals in Rat Forebrain , 1999, The Journal of Neuroscience.
[39] L. Eiden. The Cholinergic Gene Locus , 1998, Journal of neurochemistry.
[40] D. Loo,et al. Thyroid Na+/I− Symporter , 1997, The Journal of Biological Chemistry.
[41] R. Blakely,et al. Molecular cloning of a human, hemicholinium-3-sensitive choline transporter. , 2000, Biochemical and biophysical research communications.
[42] M. Kuhar,et al. HIGH AFFINITY CHOLINE UPTAKE: IONIC AND ENERGY REQUIREMENTS , 1976, Journal of neurochemistry.
[43] D. Loo,et al. Surprising versatility of Na+-glucose cotransporters: SLC5. , 2004, Physiology.
[44] V. Ganapathy,et al. Structure and function of mammalian sodium-dependent multivitamin transporter. , 2000, Current opinion in clinical nutrition and metabolic care.
[45] H. Lester,et al. Voltage‐dependent transient currents of human and rat 5‐HT transporters (SERT) are blocked by HEPES and ion channel ligands , 2002, FEBS letters.
[46] D. Loo,et al. Relationships Between Na+/Glucose Cotransporter (SGLT1) Currents and Fluxes , 1998, The Journal of Membrane Biology.
[47] R. Blakely,et al. Patch-clamp and amperometric recordings from norepinephrine transporters: channel activity and voltage-dependent uptake. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[48] R. Blakely,et al. Sodium-dependent norepinephrine-induced currents in norepinephrine-transporter-transfected HEK-293 cells blocked by cocaine and antidepressants. , 1995, The Journal of experimental biology.
[49] E. Wright,et al. The sodium/glucose cotransport family SLC5 , 2003, Pflügers Archiv.
[50] R. Blakely,et al. Molecular cloning and characterization of a murine hemicholinium-3-sensitive choline transporter. , 2001, Biochemical Society transactions.
[51] N. Nelson,et al. Novel Properties of a Mouse γ-Aminobutyric Acid Transporter (GAT4) , 2004, The Journal of Membrane Biology.
[52] S. Cregan,et al. Constitutive high‐affinity choline transporter endocytosis is determined by a carboxyl‐terminal tail dileucine motif , 2005, Journal of neurochemistry.
[53] R. Miledi,et al. Cholinergic and catecholaminergic receptors in the Xenopus oocyte membrane , 1982, The Journal of physiology.
[54] S. Welner,et al. Increased Acetylcholine Synthesis and Release Following Presynaptic Activity in a Sympathetic Ganglion , 1983, Journal of neurochemistry.
[55] M. Kuhar,et al. Impulse-flow regulation of high affinity choline uptake in brain cholinergic nerve terminals , 1975, Nature.
[56] L. DeFelice,et al. Ionic interactions in the Drosophila serotonin transporter identify it as a serotonin channel , 1999, Nature Neuroscience.
[57] H. Lester,et al. Conducting states of a mammalian serotonin transporter , 1994, Neuron.
[58] R. Blakely,et al. Drosophila Serotonin Transporters Have Voltage-Dependent Uptake Coupled to a Serotonin-Gated Ion Channel , 1997, The Journal of Neuroscience.
[59] L. DeFelice,et al. Ionic currents in the human serotonin transporter reveal inconsistencies in the alternating access hypothesis. , 2003, Biophysical journal.
[60] Randy D Blakely,et al. The choline transporter resurfaces: new roles for synaptic vesicles? , 2004, Molecular interventions.
[61] R. Blakely,et al. Dopamine transporters depolarize neurons by a channel mechanism. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[62] S. Amara,et al. Dopamine transporter–mediated conductances increase excitability of midbrain dopamine neurons , 2002, Nature Neuroscience.
[63] S. Wonnacott,et al. Relationship of choline uptake to acetylcholine synthesis and release. , 1979, Progress in brain research.