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121 related items for PubMed ID: 12734100

  • 1. Determinants of renal afferent arteriolar actions of bradykinin: evidence that multiple pathways mediate responses attributed to EDHF.
    Wang X, Trottier G, Loutzenhiser R.
    Am J Physiol Renal Physiol; 2003 Sep; 285(3):F540-9. PubMed ID: 12734100
    [Abstract] [Full Text] [Related]

  • 2. Redundant signaling mechanisms contribute to the vasodilatory response of the afferent arteriole to proteinase-activated receptor-2.
    Wang X, Hollenberg MD, Loutzenhiser R.
    Am J Physiol Renal Physiol; 2005 Jan; 288(1):F65-75. PubMed ID: 15328067
    [Abstract] [Full Text] [Related]

  • 3. Determinants of renal microvascular response to ACh: afferent and efferent arteriolar actions of EDHF.
    Wang X, Loutzenhiser R.
    Am J Physiol Renal Physiol; 2002 Jan; 282(1):F124-32. PubMed ID: 11739120
    [Abstract] [Full Text] [Related]

  • 4. Impaired nitric oxide- and endothelium-derived hyperpolarizing factor-dependent dilation of renal afferent arteriole in Dahl salt-sensitive rats.
    Ozawa Y, Hayashi K, Kanda T, Homma K, Takamatsu I, Tatematsu S, Yoshioka K, Kumagai H, Wakino S, Saruta T.
    Nephrology (Carlton); 2004 Oct; 9(5):272-7. PubMed ID: 15504139
    [Abstract] [Full Text] [Related]

  • 5. PAR-2 elicits afferent arteriolar vasodilation by NO-dependent and NO-independent actions.
    Trottier G, Hollenberg M, Wang X, Gui Y, Loutzenhiser K, Loutzenhiser R.
    Am J Physiol Renal Physiol; 2002 May; 282(5):F891-7. PubMed ID: 11934700
    [Abstract] [Full Text] [Related]

  • 6. Captopril reverses the reduced vasodilator response to bradykinin in hypertensive pregnant rats.
    Resende AC, Pimentel AM, de Moura RS.
    Clin Exp Pharmacol Physiol; 2004 Nov; 31(11):756-61. PubMed ID: 15566389
    [Abstract] [Full Text] [Related]

  • 7. Human coronary arteriolar dilation to bradykinin depends on membrane hyperpolarization: contribution of nitric oxide and Ca2+-activated K+ channels.
    Miura H, Liu Y, Gutterman DD.
    Circulation; 1999 Jun 22; 99(24):3132-8. PubMed ID: 10377076
    [Abstract] [Full Text] [Related]

  • 8. Contribution of K+ channels and ouabain-sensitive mechanisms to the endothelium-dependent relaxations of horse penile small arteries.
    Prieto D, Simonsen U, Hernández M, García-Sacristán A.
    Br J Pharmacol; 1998 Apr 22; 123(8):1609-20. PubMed ID: 9605568
    [Abstract] [Full Text] [Related]

  • 9. EDHF-mediated rapid restoration of hypotensive response to acetylcholine after chronic, but not acute, nitric oxide synthase inhibition in rats.
    Desai KM, Gopalakrishnan V, Hiebert LM, McNeill JR, Wilson TW.
    Eur J Pharmacol; 2006 Sep 28; 546(1-3):120-6. PubMed ID: 16876156
    [Abstract] [Full Text] [Related]

  • 10. Characterization of endothelium-derived relaxing factors released by bradykinin in human resistance arteries.
    Ohlmann P, Martínez MC, Schneider F, Stoclet JC, Andriantsitohaina R.
    Br J Pharmacol; 1997 Jun 28; 121(4):657-64. PubMed ID: 9208131
    [Abstract] [Full Text] [Related]

  • 11. In vivo regulation of endothelium-dependent vasodilation in the rat renal circulation and the effect of streptozotocin-induced diabetes.
    Edgley AJ, Tare M, Evans RG, Skordilis C, Parkington HC.
    Am J Physiol Regul Integr Comp Physiol; 2008 Sep 28; 295(3):R829-39. PubMed ID: 18635451
    [Abstract] [Full Text] [Related]

  • 12. Interactions between endothelium-derived relaxing factors in the rat hepatic artery: focus on regulation of EDHF.
    Zygmunt PM, Plane F, Paulsson M, Garland CJ, Högestätt ED.
    Br J Pharmacol; 1998 Jul 28; 124(5):992-1000. PubMed ID: 9692786
    [Abstract] [Full Text] [Related]

  • 13. NO/PGI2-independent vasorelaxation and the cytochrome P450 pathway in rabbit carotid artery.
    Dong H, Waldron GJ, Galipeau D, Cole WC, Triggle CR.
    Br J Pharmacol; 1997 Feb 28; 120(4):695-701. PubMed ID: 9051310
    [Abstract] [Full Text] [Related]

  • 14. Contributions of nitric oxide, EDHF, and EETs to endothelium-dependent relaxation in renal afferent arterioles.
    Wang D, Borrego-Conde LJ, Falck JR, Sharma KK, Wilcox CS, Umans JG.
    Kidney Int; 2003 Jun 28; 63(6):2187-93. PubMed ID: 12753306
    [Abstract] [Full Text] [Related]

  • 15. Characterization and modulation of EDHF-mediated relaxations in the rat isolated superior mesenteric arterial bed.
    McCulloch AI, Bottrill FE, Randall MD, Hiley CR.
    Br J Pharmacol; 1997 Apr 28; 120(8):1431-8. PubMed ID: 9113362
    [Abstract] [Full Text] [Related]

  • 16. Distinct role of nitric oxide and endothelium-derived hyperpolarizing factor in renal microcirculation. Studies in the isolated perfused hydronephrotic kidney.
    Ozawa Y, Hayashi K, Nagahama T, Fujiwara K, Kanda T, Homma K, Saruta T.
    Nephron; 2002 Dec 28; 92(4):905-13. PubMed ID: 12399638
    [Abstract] [Full Text] [Related]

  • 17. Characterization of agonist-induced endothelium-dependent vasodilatory responses in the vascular bed of the equine digit.
    Berhane Y, Bailey SR, Putignano C, Elliott J.
    J Vet Pharmacol Ther; 2008 Feb 28; 31(1):1-8. PubMed ID: 18177312
    [Abstract] [Full Text] [Related]

  • 18. Androgen deprivation facilitates acetylcholine-induced relaxation by superoxide anion generation.
    Ferrer M, Tejera N, Marín J, Balfagón G.
    Clin Sci (Lond); 1999 Dec 28; 97(6):625-31. PubMed ID: 10585889
    [Abstract] [Full Text] [Related]

  • 19. Pentobarbital-sensitive EDHF comediates ACh-induced arteriolar dilation in the hamster microcirculation.
    de Wit C, Esser N, Lehr HA, Bolz SS, Pohl U.
    Am J Physiol; 1999 May 28; 276(5):H1527-34. PubMed ID: 10330235
    [Abstract] [Full Text] [Related]

  • 20. Involvement of NO and EDHF in flow-induced vasodilation in isolated hamster cremasteric arterioles.
    Watanabe S, Yashiro Y, Mizuno R, Ohhashi T.
    J Vasc Res; 2005 May 28; 42(2):137-47. PubMed ID: 15677873
    [Abstract] [Full Text] [Related]


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