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  1. 1.   Co-expression of ABCB1 and ABCG2 in a Cell Line Model Reveals Both Independent and Additive Transporter Function
  2. Robinson, Andrea N; Tebase, Bethelihem G; Francone, Sonia C; Huff, Lyn M; Kozlowski, Hanna; Cossari, Dominique; Lee, Jung-Min; Esposito,Dom; Robey, Robert W; Gottesman, Michael M
  3. Drug metabolism and disposition: the biological fate of chemicals. 2019, Jul 1; 47(7): 715-723.
  1. 2.   Differential Influence of the Antiretroviral Pharmacokinetic Enhancers Ritonavir and Cobicistat on Intestinal P-Glycoprotein Transport and the Pharmacokinetic/Pharmacodynamic Disposition of Dabigatran
  2. Kumar, Parag; Gordon, Lori A.; Brooks, Kristina M.; George, Jomy M.; Kellogg, Anela; McManus, Maryellen; Alfaro, Raul M.; Nghiem, Khanh; Lozier, Jay; Hadigan, Colleen; Penzak, Scott R.
  3. ANTIMICROBIAL AGENTS AND CHEMOTHERAPY. 2017, NOV; 61(11):
  1. 3.   The abcc6a Gene Expression Is Required for Normal Zebrafish Development
  2. Li, Q. L.; Sadowski, S.; Frank, M.; Chai, C. L.; Varadi, A.; Ho, S. Y.; Lou, H.; Dean, M.; Thisse, C.; Thisse, B.; Uitto, J.
  3. Journal of Investigative Dermatology. 2010, Nov; 130(11): 2561-2568.
  1. 4.   The Nitric Oxide Prodrug V-PROLI/NO Inhibits Cellular Uptake of Proline
  2. Hong, S. Y.; Borchert, G. L.; Maciag, A. E.; Nandurdikar, R. S.; Saavedra, J. E.; Keefer, L. K.; Phang, J. M.; Chakrapani, H.
  3. Acs Medicinal Chemistry Letters. 2010, Nov; 1(8): 386-389.
  1. 5.   mRNA and microRNA Expression Profiles of the NCI-60 Integrated with Drug Activities
  2. Liu, H. F.; D'Andrade, P.; Fulmer-Smentek, S.; Lorenzi, P.; Kohn, K. W.; Weinstein, J. N.; Pommier, Y.; Reinhold, W. C.
  3. Molecular Cancer Therapeutics. 2010, May; 9(5): 1080-1091.
  1. 6.   Pharmacogenetics of Membrane Transporters: An Update on Current Approaches
  2. Sissung, T. M.; Baum, C. E.; Kirkl, C. T.; Gao, R.; Gardner, E. R.; Figg, W. D.
  3. Molecular Biotechnology. 2010, Feb; 44(2): 152-167.
  1. 7.   Influence of the dual ABCB1 and ABCG2 inhibitor tariquidar on the disposition of oral imatinib in mice
  2. Gardner, E. R.; Smith, N. F.; Figg, W. D.; Sparreboom, A.
  3. Journal of experimental & clinical cancer research : CR. 2009 28: 99.
  1. 8.   Targeted therapy for cancer stem cells: the patched pathway and ABC transporters
  2. Lou, H.; Dean, M.
  3. Oncogene. 2007, Feb; 26(9): 1357-1360.
  1. 9.   A high-throughput cell-based assay for inhibitors of ABCG2 activity
  2. Henrich, C. J.; Bokesch, H. R.; Dean, M.; Bates, S. E.; Robey, R. W.; Goncharova, E. I.; Wilson, J. A.; McMahon, J. B.
  3. Journal of Biomolecular Screening. 2006, Mar; 11(2): 176-183.
  1. 10.   Transmembrane inhibitors of P-glycoprotein, an ABC transporter
  2. Tarasova, N. I.; Seth, R.; Tarasov, S. G.; Kosakowska-Cholody, T.; Hrycyna, C. A.; Gottesman, M. M.; Michejda, C. J.
  3. Journal of Medicinal Chemistry. 2005, JUN 2; 48(11): 3768-3775.
  1. 11.   Tumor stem cells, drug transporters and cyclopamine
  2. Dean, M.; Fojo, T.; Bates, S.
  3. Faseb Journal. 2005, MAR 4; 19(4, Part 1 Suppl. S): A261-A261.
  1. 12.   Tumour stem cells and drug resistance
  2. Dean, M.; Fojo, T.; Bates, S.
  3. Nature Reviews Cancer. 2005 5(4): 275-284.
  1. 13.   Evolution of the ATP-binding cassette (ABC) transporter superfamily in vertebrates
  2. Dean, M.; Annilo, T.
  3. Annual review of genomics and human genetics. 2005 6: 123-142.
  1. 14.   Genetics of ATP-binding cassette transporters
  2. Dean, M.
  3. Phase II Conjugation Enzymes and Transport Systems. 2005; 400 : 409-429.
  1. 15.   The dMRP/CG6214 gene of Drosophila is evolutionarily and functionally related to the human multidrug resistance-associated protein family
  2. Tarnay, J. N.; Szeri, F.; Ilias, A.; Annilo, T.; Sung, C.; Le Saux, O.; Varadi, A.; Dean, M.; Boyd, C. D.; Robinow, S.
  3. Insect Molecular Biology. 2004, OCT; 13(5): 539-548.
  1. 16.   Comparison of the genomic structure and variation in the two human sodium-dependent vitamin C transporters, SLC23A1 and SLC23A2
  2. Eck, P.; Erichsen, H. C.; Taylor, J. G.; Yeager, M.; Hughes, A. L.; Levine, M.; Chanock, S. J.
  3. Human Genetics. 2004, SEP; 115(4): 285-294.
  1. 17.   Three ATP-binding cassette transporter genes, Abca14, Abca15, and Abca16, form a cluster on mouse Chromosome 7F3
  2. Chen, Z. Q.; Annilo, T.; Shulenin, S.; Dean, M.
  3. Mammalian Genome. 2004 15(5): 335-343.
  1. 18.   Evolutionary analysis of a cluster of ATP-binding cassette (ABC) genes
  2. Annilo, T.; Chen, Z. Q.; Shulenin, S.; Dean, M.
  3. Mammalian Genome. 2003 14(1): 7-20.
  1. 19.   Multidrug-resistance mdr1a/1b double knockout mice are more sensitive than wild type mice to acute arsenic toxicity, with higher arsenic accumulation in tissues
  2. Liu, J.; Liu, Y. P.; Powell, D. A.; Waalkes, M. P.; Klaassen, C. D.
  3. Toxicology. 2002 170(1-2): 55-62.
  1. 20.   Two new genes from the human ATP-binding cassette transporter superfamily, ABCC11 and ABCC12, tandemly duplicated on chromosome 16q12
  2. Tammur, J.; Prades, C.; Arnould, I.; Rzhetsky, A.; Hutchinson, A.; Adachi, M.; Schuetz, J. D.; Swoboda, K. J.; Ptacek, L. J.; Rosier, M.; Dean, M.; Allikmets, R.
  3. Gene. 2001 273(1): 89-96.
  1. 21.   The human ATP-binding cassette (ABC) transporter superfamily
  2. Dean, M.; Hamon, Y.; Chimini, G.
  3. Journal of Lipid Research. 2001 42(7): 1007-1017.
  1. 22.   Identification of a Fourth Half Abc Transporter in the Human Peroxisomal Membrane
  2. Shani, N.; Jimenezsanchez, G.; Steel, G.; Dean, M.; Valle, D.
  3. Human Molecular Genetics. 1997 6(11): 1925-1931.
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