Cellular and biophysical evidence for interactions between adenosine triphosphate and P-glycoprotein substrates: functional implications for adenosine triphosphate/drug cotransport in P-glycoprotein overexpressing tumor cells and in P-glycoprotein low-level expressing erythrocytes.
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P. Okunieff | T. Litman | R. Arceci | G. Guidotti | E. Abraham | A. Salikhova | K. M. Sterling | S. Scala | B. Shrivastav | K. Chan | N. Johnston | K. Steiglitz | L. Herscher | L. Herscher
[1] J. Aleu,et al. ATP Crossing the Cell Plasma Membrane Generates an Ionic Current in Xenopus Oocytes* , 2000, The Journal of Biological Chemistry.
[2] Collin Thomas,et al. A Role for Ectophosphatase in Xenobiotic Resistance , 2000, Plant Cell.
[3] Z. Sauna,et al. Evidence for a requirement for ATP hydrolysis at two distinct steps during a single turnover of the catalytic cycle of human P-glycoprotein. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[4] P. Roepe. What is the precise role of human MDR 1 protein in chemotherapeutic drug resistance? , 2000, Current pharmaceutical design.
[5] Patricia D. Christie,et al. Targeted disruption of cd39/ATP diphosphohydrolase results in disordered hemostasis and thromboregulation , 1999, Nature Medicine.
[6] H. Issaq,et al. Peptide mobility and peptide mapping in capillary zone electrophoresis. Experimental determination and theoretical simulation. , 1999, Journal of chromatography. A.
[7] S. Dzekunov,et al. Intracellular pH and Multidrug Resistance Regulate Complement-mediated Cytotoxicity of Nucleated Human Cells* , 1999, The Journal of Biological Chemistry.
[8] A. Schinkel,et al. P-Glycoprotein, a gatekeeper in the blood-brain barrier. , 1999, Advanced drug delivery reviews.
[9] B. Masereel,et al. P-glycoprotein inhibition by glibenclamide and related compounds , 1999, Pflügers Archiv.
[10] A. Terzic,et al. Physical association between recombinant cardiac ATP-sensitive K+ channel subunits Kir6.2 and SUR2A. , 1999, Journal of molecular and cellular cardiology.
[11] P. Kuchel,et al. Mechanism of action of P-glycoprotein in relation to passive membrane permeation. , 1999, International review of cytology.
[12] I. Pastan,et al. Biochemical, cellular, and pharmacological aspects of the multidrug transporter. , 1999, Annual review of pharmacology and toxicology.
[13] D. Benos,et al. CFTR is a conductance regulator as well as a chloride channel. , 1999, Physiological reviews.
[14] S. Seino,et al. ATP-sensitive potassium channels: structures, functions, and pathophysiology. , 1998, The Japanese journal of physiology.
[15] I. Pastan,et al. Contribution to substrate specificity and transport of nonconserved residues in transmembrane domain 12 of human P-glycoprotein. , 1998, Biochemistry.
[16] A. M. George,et al. A New Structural Model for P-Glycoprotein , 1998, The Journal of Membrane Biology.
[17] Sreenivas Devidas,et al. Cystic Fibrosis Transmembrane Conductance Regulator–associated ATP Release Is Controlled by a Chloride Sensor , 1998, The Journal of cell biology.
[18] A. Schroit,et al. Transbilayer movement of NBD-labeled phospholipids in red blood cell membranes: outward-directed transport by the multidrug resistance protein 1 (MRP1). , 1998, Biochemistry.
[19] G. Guidotti,et al. The Transmembrane Domains of Ectoapyrase (CD39) Affect Its Enzymatic Activity and Quaternary Structure* , 1998, The Journal of Biological Chemistry.
[20] W. T. Beck,et al. Effect of modulators on the ATPase activity and vanadate nucleotide trapping of human P-glycoprotein. , 1998, Biochemical pharmacology.
[21] G. Guidotti,et al. Widespread expression of ecto-apyrase (CD39) in the central nervous system , 1998, Brain Research.
[22] H. Cantiello,et al. Electrodiffusional ATP movement through the cystic fibrosis transmembrane conductance regulator. , 1998, The American journal of physiology.
[23] J. Foskett,et al. CFTR Cl− channel and CFTR‐associated ATP channel: distinct pores regulated by common gates , 1998, The EMBO journal.
[24] K. Kunjilwar,et al. Toward understanding the assembly and structure of KATP channels. , 1998, Physiological reviews.
[25] C. Nichols,et al. Octameric Stoichiometry of the KATP Channel Complex , 1997, The Journal of general physiology.
[26] S. Ledoux,et al. Overexpression of ecto-5'-nucleotidase promotes P-glycoprotein expression in renal epithelial cells. , 1997, Kidney international.
[27] T. Tsuruo,et al. Interaction of cyclosporin derivatives with the ATPase activity of human P‐glycoprotein , 1997, British journal of pharmacology.
[28] S. Ambudkar,et al. Relation Between the Turnover Number for Vinblastine Transport and for Vinblastine-stimulated ATP Hydrolysis by Human P-glycoprotein* , 1997, The Journal of Biological Chemistry.
[29] K. Linton,et al. Structure of the multidrug resistance P-glycoprotein. , 1997, Seminars in cancer biology.
[30] K. Kunjilwar,et al. Association and Stoichiometry of KATP Channel Subunits , 1997, Neuron.
[31] P. Borst,et al. Normal viability and altered pharmacokinetics in mice lacking mdr1-type (drug-transporting) P-glycoproteins. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[32] H. Cantiello. Nucleotide Transport Through the Cystic Fibrosis Transmembrane Conductance Regulator , 1997, Bioscience reports.
[33] J. Foskett,et al. Cystic Fibrosis Transmembrane Conductance Regulator-associated ATP and Adenosine 3′-Phosphate 5′-Phosphosulfate Channels in Endoplasmic Reticulum and Plasma Membranes* , 1997, The Journal of Biological Chemistry.
[34] P. Okunieff,et al. Cystic Fibrosis Transmembrane Conductance Regulator and Adenosine Triphosphate , 1997, Science.
[35] G. Tusnády,et al. Membrane topology distinguishes a subfamily of the ATP‐binding cassette (ABC) transporters , 1997, FEBS letters.
[36] H. Issaq. Capillary electrophoresis of natural products , 1997, Electrophoresis.
[37] M. J. Ehrke,et al. Evidence for the involvement of ecto‐5′‐nucleotidase (CD73) in drug resistance , 1996, International journal of cancer.
[38] H. Cantiello,et al. Expression of Drosophila melanogaster P-glycoproteins is associated with ATP channel activity. , 1996, The American journal of physiology.
[39] I. Pastan,et al. P-glycoprotein and multidrug resistance. , 1996, Current opinion in genetics & development.
[40] P. Roepe,et al. Are altered pHi and membrane potential in hu MDR 1 transfectants sufficient to cause MDR protein-mediated multidrug resistance? , 1996, The Journal of general physiology.
[41] E. Schwiebert,et al. Apical and basolateral ATP stimulates tracheal epithelial chloride secretion via multiple purinergic receptors. , 1996, The American journal of physiology.
[42] C. Bear,et al. Purified Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) Does Not Function as an ATP Channel (*) , 1996, The Journal of Biological Chemistry.
[43] P. Okunieff,et al. Cystic fibrosis hetero–and homozygosity is associated with inhibition of breast cancer growth , 1996, Nature Medicine.
[44] Ting-Fang Wang,et al. CD39 Is an Ecto-(Ca,Mg)-apyrase (*) , 1996, The Journal of Biological Chemistry.
[45] K. Gunderson,et al. Failure of the Cystic Fibrosis Transmembrane Conductance Regulator to Conduct ATP , 1996, Science.
[46] G. Guidotti,et al. Purification and cloning of a soluble ATP-diphosphohydrolase (apyrase) from potato tubers (Solanum tuberosum). , 1996, Biochemical and biophysical research communications.
[47] C. Higgins,et al. The ABC of channel regulation , 1995, Cell.
[48] G. Cutting,et al. CFTR regulates outwardly rectifying chloride channels through an autocrine mechanism involving ATP , 1995, Cell.
[49] L. Greenberger,et al. Functional Evidence That Transmembrane 12 and the Loop between Transmembrane 11 and 12 Form Part of the Drug-binding Domain in P-glycoprotein Encoded by MDR1 (*) , 1995, The Journal of Biological Chemistry.
[50] H. Issaq,et al. Approaches for the optimization of experimental parameters in capillary zone electrophoresis. , 1995, Advances in chromatography.
[51] M. Cianfriglia,et al. Modulation of human P-glycoprotein epitope expression by temperature and/or resistance-modulating agents. , 1994, Anti-cancer drugs.
[52] E. Mihich,et al. Ecto‐5'‐nucleotidase (CD73) in multidrug‐resistant cell lines generated by doxorubicin , 1994, International journal of cancer.
[53] H. Cantiello,et al. The cystic fibrosis transmembrane conductance regulator is a dual ATP and chloride channel. , 1994, The Journal of biological chemistry.
[54] H. Issaq,et al. Analysis of nitrate and nitrite in water and urine by capillary zone electrophoresis. , 1994, Journal of chromatography. B, Biomedical applications.
[55] H. Cantiello,et al. External ATP and its analogs activate the cystic fibrosis transmembrane conductance regulator by a cyclic AMP-independent mechanism. , 1994, The Journal of biological chemistry.
[56] H. Westerhoff,et al. The multidrug-resistance-reverser verapamil interferes with cellular P-glycoprotein-mediated pumping of daunorubicin as a non-competing substrate. , 1994, European journal of biochemistry.
[57] J. Gutheil,et al. Alterations in Ca2+ transport ATPase and P-glycoprotein expression can mediate resistance to thapsigargin. , 1994, The Journal of biological chemistry.
[58] J. A. Barnes,et al. Separation of pyridinecarboxylic acid isomers and related compounds by capillary zone electrophoresis. Effect of cetyltrimethylammonium bromide on electroosmotic flow and resolution. , 1993, Journal of chromatography. A.
[59] R. Arceci,et al. The multidrug resistance (mdr1) gene product functions as an ATP channel. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[60] F. Sharom,et al. Transport properties of P-glycoprotein in plasma membrane vesicles from multidrug-resistant Chinese hamster ovary cells. , 1992, Biochimica et biophysica acta.
[61] R. Boucher,et al. Expression of the human multidrug resistance cDNA in insect cells generates a high activity drug-stimulated membrane ATPase. , 1992, The Journal of biological chemistry.
[62] M. Gottesman,et al. Is the multidrug transporter a flippase? , 1992, Trends in biochemical sciences.
[63] J. González-Ros,et al. Interaction of anthracyclines with nucleotides and related compounds studied by spectroscopy. , 1986, Biochimica et biophysica acta.
[64] E. Hoffmann,et al. Doxorubicin (Adriamycin) transport in Ehrlich ascites tumour cells: comparison with transport in human red blood cells. , 1983, Scandinavian journal of clinical and laboratory investigation.
[65] M. Dalmark,et al. Molecular association between doxorubicin (adriamycin) and DNA-derived bases, nucleosides, nucleotides, other aromatic compounds, and proteins in aqueous solution. , 1982, Molecular pharmacology.