Mechanisms of AT1a receptor-mediated uptake of angiotensin II by proximal tubule cells: a novel role of the multiligand endocytic receptor megalin.
暂无分享,去创建一个
[1] X. Li,et al. Novel signaling mechanisms of intracellular angiotensin II-induced NHE3 expression and activation in mouse proximal tubule cells. , 2012, American journal of physiology. Renal physiology.
[2] S. Weinbaum,et al. Regulation of glomerulotubular balance: II: impact of angiotensin II on flow-dependent transport. , 2012, American journal of physiology. Renal physiology.
[3] M. Chappell. Nonclassical renin-angiotensin system and renal function. , 2012, Comprehensive Physiology.
[4] T. Coffman,et al. Under pressure: the search for the essential mechanisms of hypertension , 2011, Nature Medicine.
[5] X. Li,et al. Phosphoproteomic analysis of AT1 receptor-mediated signaling responses in proximal tubules of angiotensin II-induced hypertensive rats. , 2011, Kidney international.
[6] T. Coffman,et al. Role of AT₁ receptor-mediated salt retention in angiotensin II-dependent hypertension. , 2011, American journal of physiology. Renal physiology.
[7] X. Li,et al. New insights and perspectives on intrarenal renin-angiotensin system: Focus on intracrine/intracellular angiotensin II , 2011, Peptides.
[8] J. Cook,et al. Intrarenal transfer of an intracellular fluorescent fusion of angiotensin II selectively in proximal tubules increases blood pressure in rats and mice. , 2011, American journal of physiology. Renal physiology.
[9] T. Coffman,et al. AT1A angiotensin receptors in the renal proximal tubule regulate blood pressure. , 2011, Cell metabolism.
[10] H. Kobori,et al. Intratubular renin-angiotensin system in hypertension. , 2011, Hypertension.
[11] W. Oyen,et al. Renal uptake of different radiolabelled peptides is mediated by megalin: SPECT and biodistribution studies in megalin-deficient mice , 2010, European Journal of Nuclear Medicine and Molecular Imaging.
[12] S. Bachmann,et al. Intrarenal Renin Angiotensin System Revisited , 2010, The Journal of Biological Chemistry.
[13] N. Hübner,et al. The soluble intracellular domain of megalin does not affect renal proximal tubular function in vivo. , 2010, Kidney international.
[14] A. McDonough. Mechanisms of proximal tubule sodium transport regulation that link extracellular fluid volume and blood pressure. , 2010, American journal of physiology. Regulatory, integrative and comparative physiology.
[15] X. Li,et al. AT1 receptor-mediated uptake of angiotensin II and NHE-3 expression in proximal tubule cells through a microtubule-dependent endocytic pathway. , 2009, American journal of physiology. Renal physiology.
[16] I. Armando,et al. The regulation of proximal tubular salt transport in hypertension: an update , 2009, Current opinion in nephrology and hypertension.
[17] V. Batuman,et al. Silencing megalin and cubilin genes inhibits myeloma light chain endocytosis and ameliorates toxicity in human renal proximal tubule epithelial cells. , 2008, American journal of physiology. Renal physiology.
[18] X. Li,et al. Intracellular ANG II directly induces in vitro transcription of TGF-beta1, MCP-1, and NHE-3 mRNAs in isolated rat renal cortical nuclei via activation of nuclear AT1a receptors. , 2008, American journal of physiology. Cell physiology.
[19] X. Li,et al. In vivo regulation of AT1a receptor-mediated intracellular uptake of [125I]Val5-ANG II in the kidneys and adrenals of AT1a receptor-deficient mice. , 2008, American journal of physiology. Renal physiology.
[20] X. Li,et al. Selective knockdown of AT1 receptors by RNA interference inhibits Val5-ANG II endocytosis and NHE-3 expression in immortalized rabbit proximal tubule cells. , 2007, American journal of physiology. Cell physiology.
[21] L. Navar,et al. Genetic deletion of AT1a receptors attenuates intracellular accumulation of ANG II in the kidney of AT1a receptor-deficient mice. , 2007, American journal of physiology. Renal physiology.
[22] T. Coffman,et al. Strategy for the development of a matched set of transport-competent, angiotensin receptor-deficient proximal tubule cell lines , 2006, In Vitro Cellular & Developmental Biology - Animal.
[23] L. Navar,et al. AT1 receptor‐mediated accumulation of extracellular angiotensin II in proximal tubule cells: role of cytoskeleton microtubules and tyrosine phosphatase , 2006, American journal of physiology. Renal physiology.
[24] H. Siragy. Angiotensin II compartmentalization within the kidney: effects of salt diet and blood pressure alterations , 2006, Current opinion in nephrology and hypertension.
[25] Kelly E. Johanson,et al. Megalin binds and internalizes angiotensin-(1-7). , 2005, American journal of physiology. Renal physiology.
[26] R. Carey,et al. Newly recognized components of the renin-angiotensin system: potential roles in cardiovascular and renal regulation. , 2003, Endocrine reviews.
[27] S. Mildenberger,et al. NHE3 serves as a molecular tool for cAMP-mediated regulation of receptor-mediated endocytosis. , 2002, American journal of physiology. Renal physiology.
[28] E. Christensen,et al. Megalin and cubilin: multifunctional endocytic receptors , 2002, Nature Reviews Molecular Cell Biology.
[29] T. Hammond,et al. Ang II Accumulation in Rat Renal Endosomes During Ang II-Induced Hypertension: Role of AT1 Receptor , 2002, Hypertension.
[30] A. Dautry‐Varsat,et al. Megalin-dependent cubilin-mediated endocytosis is a major pathway for the apical uptake of transferrin in polarized epithelia , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[31] H Birn,et al. Megalin and cubilin: synergistic endocytic receptors in renal proximal tubule. , 2001, American journal of physiology. Renal physiology.
[32] D. Duncker,et al. Subcellular localization of angiotensin II in kidney and adrenal , 2001, Journal of hypertension.
[33] S. Moestrup,et al. Cubilin- and megalin-mediated uptake of albumin in cultured proximal tubule cells of opossum kidney. , 2000, Kidney international.
[34] H. Vorum,et al. Megalin knockout mice as an animal model of low molecular weight proteinuria. , 1999, The American journal of pathology.
[35] P. Aronson,et al. Specific Association of Megalin and the Na+/H+ Exchanger Isoform NHE3 in the Proximal Tubule* , 1999, The Journal of Biological Chemistry.
[36] L. Navar,et al. Renal uptake of circulating angiotensin II in Val5-angiotensin II infused rats is mediated by AT1 receptor. , 1998, American journal of hypertension.
[37] S. Moestrup,et al. Characterization of an Epithelial ∼460-kDa Protein That Facilitates Endocytosis of Intrinsic Factor-Vitamin B12 and Binds Receptor-associated Protein* , 1997, The Journal of Biological Chemistry.
[38] L. Meinel,et al. Intracellular trafficking of angiotensin II and its AT1 and AT2 receptors: evidence for selective sorting of receptor and ligand. , 1997, Molecular endocrinology.
[39] S. Moestrup,et al. Megalin/gp330 mediates uptake of albumin in renal proximal tubule. , 1996, The American journal of physiology.
[40] D K Burns,et al. Defective forebrain development in mice lacking gp330/megalin. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[41] L. Navar,et al. Proximal tubular secretion of angiotensin II in rats. , 1993, The American journal of physiology.
[42] P. Harris,et al. The role of endogenous angiotensin II in the regulation of renal haemodynamics and proximal fluid reabsorption in the rat. , 1992, The Journal of physiology.
[43] M. G. Cogan,et al. Angiotensin II: a powerful controller of sodium transport in the early proximal tubule. , 1990, Hypertension.
[44] B. Seetharam,et al. Purification, properties, and immunochemical localization of a receptor for intrinsic factor-cobalamin complex in the rat kidney. , 1988, The Journal of biological chemistry.
[45] P. Verroust,et al. Characterization of a 280-kD protein restricted to the coated pits of the renal brush border and the epithelial cells of the yolk sac. Teratogenic effect of the specific monoclonal antibodies , 1988, The Journal of experimental medicine.
[46] L. Navar,et al. The tubular effects of angiotensin II. , 1987, Kidney international. Supplement.
[47] F. Gennari,et al. The early proximal tubule: a high-capacity delivery-responsive reabsorptive site. , 1987, The American journal of physiology.
[48] P. Verroust,et al. Ultrastructural localization by monoclonal antibodies of brush border antigens expressed by glomeruli. II. Extrarenal distribution. , 1986, The American journal of pathology.
[49] P. Harris,et al. Tubular transport responses to angiotensin. , 1985, The American journal of physiology.
[50] D. Kerjaschki,et al. The pathogenic antigen of Heymann nephritis is a membrane glycoprotein of the renal proximal tubule brush border. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[51] L. Navar,et al. Augmentation of intrarenal angiotensin II levels by chronic angiotensin II infusion. , 1994, The American journal of physiology.