A comparison of commonly used polyethoxylated pharmaceutical excipients on their ability to inhibit P-glycoprotein activity in vitro.
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Ronald T Borchardt | Philip S Burton | K. Audus | R. Borchardt | P. S. Burton | E. Hugger | Erin D Hugger | Barbara L Novak | Kenneth L Audus | B. Novak | Erin D. Hugger
[1] G. Parnaud,et al. Cytostatic effect of polyethylene glycol on human colonic adenocarcinoma cells , 2001, International journal of cancer.
[2] J. Tolan,et al. MDCK (Madin-Darby canine kidney) cells: A tool for membrane permeability screening. , 1999, Journal of pharmaceutical sciences.
[3] R. Borchardt,et al. Mechanistic roles of neutral surfactants on concurrent polarized and passive membrane transport of a model peptide in Caco-2 cells. , 1997, Journal of pharmaceutical sciences.
[4] R. Conradi,et al. A biophysical model of passive and polarized active transport processes in Caco-2 cells: approaches to uncoupling apical and basolateral membrane events in the intact cell. , 1995, Journal of pharmaceutical sciences.
[5] S. Yalkowsky,et al. Mass transport phenomena and models: theoretical concepts. , 1974, Journal of pharmaceutical sciences.
[6] B. Hirst,et al. Intestinal secretion of drugs. The role of P-glycoprotein and related drug efflux systems in limiting oral drug absorption , 1997 .
[7] B. Williams,et al. Reversal of the multidrug resistance phenotype with cremophor EL, a common vehicle for water-insoluble vitamins and drugs. , 1990, Cancer research.
[8] Thomas J. Vidmar,et al. The Madin Darby Canine Kidney (MDCK) Epithelial Cell Monolayer as a Model Cellular Transport Barrier , 2004, Pharmaceutical Research.
[9] J. Silverman,et al. Inhibition of P-Glycoprotein by D-α-Tocopheryl Polyethylene Glycol 1000 Succinate (TPGS) , 1999, Pharmaceutical Research.
[10] B. Rothen‐Rutishauser,et al. Cell cultures as tools in biopharmacy. , 2000, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[11] T. Walle,et al. Taxol transport by human intestinal epithelial Caco-2 cells. , 1998, Drug metabolism and disposition: the biological fate of chemicals.
[12] R. Conradi,et al. Caco-2 Cell Monolayers as a Model for Drug Transport Across the Intestinal Mucosa , 1990, Pharmaceutical Research.
[13] J Ferté,et al. Analysis of the tangled relationships between P-glycoprotein-mediated multidrug resistance and the lipid phase of the cell membrane. , 2000, European journal of biochemistry.
[14] Thomas J. Raub,et al. Characterization of the human colon carcinoma cell line (Caco-2) as a model system for intestinal epithelial permeability. , 1989, Gastroenterology.
[15] V. Ling,et al. Effects of nonionic detergents on P-glycoprotein drug binding and reversal of multidrug resistance. , 1993, Cancer research.
[16] M. Zeidel,et al. Low permeabilities of MDCK cell monolayers: a model barrier epithelium. , 1997, The American journal of physiology.
[17] I. Pastan,et al. A retrovirus carrying an MDR1 cDNA confers multidrug resistance and polarized expression of P-glycoprotein in MDCK cells. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[18] P Langguth,et al. P-Glycoprotein (P-gp) mediated efflux in Caco-2 cell monolayers: the influence of culturing conditions and drug exposure on P-gp expression levels. , 1998, Journal of pharmaceutical sciences.
[19] W. Sawyer,et al. Reversal of multidrug resistance by surfactants. , 1992, British journal of cancer.
[20] A. Helenius,et al. Solubilization of membranes by detergents. , 1975, Biochimica et biophysica acta.
[21] J. Hardin,et al. Effect of a Dietary Nonionic Surfactant on Small Intestinal Nutrient Transport , 1999, Digestive Diseases and Sciences.
[22] T. Walle,et al. Transport of the flavonoid chrysin and its conjugated metabolites by the human intestinal cell line Caco-2. , 1999, Biochemical pharmacology.
[23] F. Sharom,et al. The effects of lipids and detergents on ATPase-active P-glycoprotein. , 1993, Biochimica et biophysica acta.
[24] Carol L. Williams,et al. Transepithelial transport of drugs by the multidrug transporter in cultured Madin-Darby canine kidney cell epithelia. , 1989, The Journal of biological chemistry.
[25] K. Anderson,et al. Reversal of multidrug resistance phenotype by surfactants: relationship to membrane lipid fluidity. , 1995, Archives of biochemistry and biophysics.
[26] I. Pastan,et al. Biochemical, cellular, and pharmacological aspects of the multidrug transporter. , 1999, Annual review of pharmacology and toxicology.
[27] K. Audus,et al. Effects of poly(ethylene glycol) on efflux transporter activity in Caco-2 cell monolayers. , 2002, Journal of pharmaceutical sciences.
[28] O. Badary,et al. Effect of Cremophor EL on the pharmacokinetics, antitumor activity and toxicity of doxorubicin in mice , 1998, Anti-cancer drugs.
[29] K. Luthman,et al. Caco-2 monolayers in experimental and theoretical predictions of drug transport , 1996 .
[30] B. Hirst,et al. Drug Absorption Limited by P-Glycoprotein-Mediated Secretory Drug Transport in Human Intestinal Epithelial Caco-2 Cell Layers , 1993, Pharmaceutical Research.
[31] R. Oberle,et al. Evaluation of mucosal damage of surfactants in rat jejunum and colon. , 1995, Journal of pharmacological and toxicological methods.
[32] Takashi Tsuruo,et al. Cremophor EL reversed multidrug resistance in vitro but not in tumor-bearing mouse models , 1996, Anti-cancer drugs.
[33] K. Audus,et al. Evidence for 21-aminosteroid association with the hydrophobic domains of brain microvessel endothelial cells. , 1991, Free radical biology & medicine.
[34] R. Borchardt,et al. The Use of Surfactants to Enhance the Permeability of Peptides Through Caco-2 Cells by Inhibition of an Apically Polarized Efflux System , 1996, Pharmaceutical Research.
[35] Clive G. Wilson,et al. Histological and physiological studies on the intestine of the rat exposed to solutions of Myrj 52 and PEG 2000 , 1980 .
[36] I. Roninson,et al. Inhibition of cytarabine‐induced MDR1 (P‐glycoprotein) gene activation in human tumor cells by fatty acid‐polyethylene glycol‐fatty acid diesters, novel inhibitors of P‐glycoprotein function , 1996, International journal of cancer.