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Journal Abstract Search


222 related items for PubMed ID: 16825254

  • 1. Epithelial-to-mesenchymal transition of the mesothelial cell--its role in the response of the peritoneum to dialysis.
    Selgas R, Bajo A, Jiménez-Heffernan JA, Sánchez-Tomero JA, Del Peso G, Aguilera A, López-Cabrera M.
    Nephrol Dial Transplant; 2006 Jul; 21 Suppl 2():ii2-7. PubMed ID: 16825254
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  • 2. Epithelial to mesenchymal transition as a triggering factor of peritoneal membrane fibrosis and angiogenesis in peritoneal dialysis patients.
    Aguilera A, Yáñez-Mo M, Selgas R, Sánchez-Madrid F, López-Cabrera M.
    Curr Opin Investig Drugs; 2005 Mar; 6(3):262-8. PubMed ID: 15816502
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  • 3. Mesenchymal conversion of mesothelial cells as a mechanism responsible for high solute transport rate in peritoneal dialysis: role of vascular endothelial growth factor.
    Aroeira LS, Aguilera A, Selgas R, Ramírez-Huesca M, Pérez-Lozano ML, Cirugeda A, Bajo MA, del Peso G, Sánchez-Tomero JA, Jiménez-Heffernan JA, López-Cabrera M.
    Am J Kidney Dis; 2005 Nov; 46(5):938-48. PubMed ID: 16253736
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  • 7. Transient overexpression of TGF-{beta}1 induces epithelial mesenchymal transition in the rodent peritoneum.
    Margetts PJ, Bonniaud P, Liu L, Hoff CM, Holmes CJ, West-Mays JA, Kelly MM.
    J Am Soc Nephrol; 2005 Feb; 16(2):425-36. PubMed ID: 15590759
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  • 8. Platelet derived growth factor B and epithelial mesenchymal transition of peritoneal mesothelial cells.
    Patel P, West-Mays J, Kolb M, Rodrigues JC, Hoff CM, Margetts PJ.
    Matrix Biol; 2010 Mar; 29(2):97-106. PubMed ID: 19896531
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  • 9. Ex vivo reversal of in vivo transdifferentiation in mesothelial cells grown from peritoneal dialysate effluents.
    Vargha R, Endemann M, Kratochwill K, Riesenhuber A, Wick N, Krachler AM, Malaga-Dieguez L, Aufricht C.
    Nephrol Dial Transplant; 2006 Oct; 21(10):2943-7. PubMed ID: 16861732
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  • 10. Low-GDP peritoneal dialysis fluid ('balance') has less impact in vitro and ex vivo on epithelial-to-mesenchymal transition (EMT) of mesothelial cells than a standard fluid.
    Bajo MA, Pérez-Lozano ML, Albar-Vizcaino P, del Peso G, Castro MJ, Gonzalez-Mateo G, Fernández-Perpén A, Aguilera A, Sánchez-Villanueva R, Sánchez-Tomero JA, López-Cabrera M, Peter ME, Passlick-Deetjen J, Selgas R.
    Nephrol Dial Transplant; 2011 Jan; 26(1):282-91. PubMed ID: 20571097
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  • 13. Multiple transforming growth factor-beta isoforms and receptors function during epithelial-mesenchymal cell transformation in the embryonic heart.
    Mercado-Pimentel ME, Runyan RB.
    Cells Tissues Organs; 2007 Jan; 185(1-3):146-56. PubMed ID: 17587820
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  • 14. Salt intake induces epithelial-to-mesenchymal transition of the peritoneal membrane in rats.
    Pletinck A, Consoli C, Van Landschoot M, Steppan S, Topley N, Passlick-Deetjen J, Vanholder R, Van Biesen W.
    Nephrol Dial Transplant; 2010 May; 25(5):1688-96. PubMed ID: 20150166
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  • 15. Determinants of peritoneal membrane function over time.
    Davies SJ, Mushahar L, Yu Z, Lambie M.
    Semin Nephrol; 2011 Mar; 31(2):172-82. PubMed ID: 21439431
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  • 16. Effect of glucose on TGF-beta 1 expression in peritoneal mesothelial cells.
    Wang T, Chen YG, Ye RG, Li SL, Li HQ, Chen YX.
    Adv Perit Dial; 1995 Mar; 11():7-10. PubMed ID: 8534742
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  • 17. Myofibroblast transdifferentiation of mesothelial cells is mediated by RAGE and contributes to peritoneal fibrosis in uraemia.
    De Vriese AS, Tilton RG, Mortier S, Lameire NH.
    Nephrol Dial Transplant; 2006 Sep; 21(9):2549-55. PubMed ID: 16757496
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  • 18. The TGF-beta-induced gene product, betaig-h3: its biological implications in peritoneal dialysis.
    Park SH, Choi SY, Kim MH, Oh EJ, Ryu HM, Kim CD, Kim IS, Kim YL.
    Nephrol Dial Transplant; 2008 Jan; 23(1):126-35. PubMed ID: 17704110
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