Molecular Mechanism of Citalopram and Cocaine Interactions with Neurotransmitter Transporters
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[1] C. B. Roth,et al. Structure of MsbA from E. coli: a homolog of the multidrug resistance ATP binding cassette (ABC) transporters. , 2001, Science.
[2] Satoshi Murakami,et al. Crystal structure of bacterial multidrug efflux transporter AcrB , 2002, Nature.
[3] H. Betz,et al. Distinct Effects of Imipramine on 5‐Hydroxytryptamine Uptake Mediated by the Recombinant Rat Serotonin Transporter SERT1 , 1998, Journal of neurochemistry.
[4] R. Blakely,et al. Pharmacological profile of antidepressants and related compounds at human monoamine transporters. , 1997, European journal of pharmacology.
[5] K. Rice,et al. [3H]cocaine labels a binding site associated with the serotonin transporter in guinea pig brain: Allosteric modulation by paroxetine , 1992, Neurochemical Research.
[6] N. Varney,et al. Psychopharmacology: The Fourth Generation of Progress. , 1996 .
[7] T. N. Bhat,et al. The Protein Data Bank , 2000, Nucleic Acids Res..
[8] R. Blakely,et al. High Affinity Recognition of Serotonin Transporter Antagonists Defined by Species-scanning Mutagenesis , 1998, The Journal of Biological Chemistry.
[9] R. Blakely,et al. Interactions of tryptamine derivatives with serotonin transporter species variants implicate transmembrane domain I in substrate recognition. , 2001, Molecular pharmacology.
[10] B. S. Park,et al. Importance of valine at position 152 for the substrate transport and 2beta-carbomethoxy-3beta-(4-fluorophenyl)tropane binding of dopamine transporter. , 2000, Molecular pharmacology.
[11] Eric L. Barker,et al. Transmembrane Domain I Contributes to the Permeation Pathway for Serotonin and Ions in the Serotonin Transporter , 1999, The Journal of Neuroscience.
[12] K. Palczewski,et al. Crystal Structure of Rhodopsin: A G‐Protein‐Coupled Receptor , 2000, Science.
[13] Jing Chen,et al. Determination of External Loop Topology in the Serotonin Transporter by Site-directed Chemical Labeling* , 1998, The Journal of Biological Chemistry.
[14] S Kitayama,et al. Dopamine transporter site-directed mutations differentially alter substrate transport and cocaine binding. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[15] G. Uhl,et al. Dopamine transporter: transmembrane phenylalanine mutations can selectively influence dopamine uptake and cocaine analog recognition. , 1999, Molecular pharmacology.
[16] R. Blakely,et al. Antidepressant- and cocaine-sensitive human serotonin transporter: molecular cloning, expression, and chromosomal localization. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[17] C. Nemeroff,et al. Second-generation SSRIs: human monoamine transporter binding profile of escitalopram and R-fluoxetine. , 2001, Biological psychiatry.
[18] J Hoflack,et al. Three-dimensional models of neurotransmitter G-binding protein-coupled receptors. , 1991, Molecular pharmacology.
[19] Ingebrigt Sylte,et al. Molecular model of the neural dopamine transporter , 2003, J. Comput. Aided Mol. Des..
[20] G. Rudnick,et al. The Third Transmembrane Domain of the Serotonin Transporter Contains Residues Associated with Substrate and Cocaine Binding* , 1997, The Journal of Biological Chemistry.
[21] S Kitayama,et al. Dissection of Dopamine and Cocaine Binding Sites on the Rat Dopamine Transporter Expressed in COS Cells a , 1996, Annals of the New York Academy of Sciences.
[22] I. Sylte,et al. Ligand induced conformational states of the 5-HT(1A) receptor. , 2001, European journal of pharmacology.
[23] K. Williams,et al. Three-dimensional structure of the ion-coupled transport protein NhaA , 2000, Nature.
[24] G. Rudnick,et al. Functional Role of Critical Stripe Residues in Transmembrane Span 7 of the Serotonin Transporter , 2001, The Journal of Biological Chemistry.
[25] F. Bloom,et al. Psychopharmacology: The Fourth Generation of Progress , 1995 .
[26] O. V. Mortensen,et al. Species‐scanning mutagenesis of the serotonin transporter reveals residues essential in selective, high‐affinity recognition of antidepressants , 2001, Journal of neurochemistry.
[27] L. Bryan-Lluka,et al. Tyrosine residue 271 of the norepinephrine transporter is an important determinant of its pharmacology. , 2001, Brain research. Molecular brain research.
[28] Conrad C. Huang,et al. The MIDAS display system , 1988 .
[29] S G Dahl,et al. Molecular model of the Escherichia coli Na1/H1 antiporter NhaA. , 2001, Receptors & channels.
[30] Rolf Apweiler,et al. The SWISS-PROT protein sequence data bank and its supplement TrEMBL , 1997, Nucleic Acids Res..
[31] H. Kaback,et al. From membrane to molecule to the third amino acid from the left with a membrane transport protein , 1997, Quarterly Reviews of Biophysics.
[32] S Kitayama,et al. Tyrosine-533 of rat dopamine transporter: involvement in interactions with 1-methyl-4-phenylpyridinium and cocaine. , 1998, Brain research. Molecular brain research.
[33] G. Rudnick,et al. Critical Amino Acid Residues in Transmembrane Span 7 of the Serotonin Transporter Identified by Random Mutagenesis* , 1998, The Journal of Biological Chemistry.
[34] A. Ravna,et al. A putative three-dimensional arrangement of the human serotonin transporter transmembrane helices: a tool to aid experimental studies. , 2001, Journal of molecular graphics & modelling.
[35] F I Carroll,et al. Biophysical Characterization of the Cocaine Binding Pocket in the Serotonin Transporter Using a Fluorescent Cocaine Analogue as a Molecular Reporter* , 2001, The Journal of Biological Chemistry.
[36] E. Padan,et al. Topological Analysis of NhaA, a Na+/H+ Antiporter from Escherichia coli* , 1996, The Journal of Biological Chemistry.
[37] J. Hyttel. Pharmacological characterization of selective serotonin reuptake inhibitors (SSRIs) , 1994, International clinical psychopharmacology.
[38] M. Saier,et al. A functional superfamily of sodium/solute symporters. , 1994, Biochimica et biophysica acta.
[39] Richard A. Lerner,et al. Crystal structure of a bacterial cocaine esterase , 2002, Nature Structural Biology.
[40] J. Berg,et al. Molecular dynamics simulations of biomolecules , 2002, Nature Structural Biology.
[41] P. Kollman,et al. A Second Generation Force Field for the Simulation of Proteins, Nucleic Acids, and Organic Molecules J. Am. Chem. Soc. 1995, 117, 5179−5197 , 1996 .