Page 61 - 81_02
P. 61

Reactive oxygen species and vascular remodeling in cardiovascular diseases

30. De Ciuceis C, Amiri F, Brassard P, Endemann DH,            44. Schröder K. NADPH oxidases in redox regulation of
     Touyz RM, Schiffrin EL. Reduced vascular                       cell adhesion and migration. Antioxid Redox Signal
     remodeling, endothelial dysfunction, and oxidative             2014; 20: 2043-58.
     stress in resistance arteries of angiotensin II-infused
     macrophage colony-stimulating factor-deficient mice:      45. Briones AM, Touyz RM. Oxidative stress and
     evidence for a role in inflammation in angiotensin-            hypertension: current concepts. Curr Hypertens Rep
     induced vascular injury. Arterioscler Thromb Vasc              2010; 12: 135-42.
     Biol 2005; 25: 2106-13.
                                                               46. Finkel T. Signal transduction by reactive oxygen
31. Harrison DG. The immune system in hypertension.                 species. J Cell Biol 2011; 194: 7-15.
     Trans Am Clin Climatol Assoc 2014; 125: 130-40.
                                                               47. Stanley A, Thompson K, Hynes A, Brakebusch C,
32. Rudijanto A. The role of vascular smooth muscle cells           Quondamatteo F. NADPH oxidase complex-derived
     on the pathogenesis of atherosclerosis. Acta Med               reactive oxygen species, the actin cytoskeleton, and
     Indones 2007; 39: 86-93.                                       rho GTPases in cell migration. Antioxid Redox Signal
                                                                    2014; 20: 2026-42.
33. Touyz RM, Briones AM. Reactive oxygen species and
     vascular biology: implications in human hypertension.     48. Son Y, Cheong YK, Kim NH, Chung HT, Kang DG,
     Hypertens Res 2011; 34: 5-14.                                  Pae HO. Mitogen-Activated Protein Kinases and
                                                                    Reactive Oxygen Species: How Can ROS Activate
34. Montezano AC, Touyz RM. Reactive Oxygen                         MAPK Pathways? J Signal Transduct 2011; 792639.
     Species, Vascular Noxs, and Hypertension: Focus on
     Translational and Clinical Research. Antioxid Redox       49. Amanso AM, Griendling KK. Differential roles of
     Signal 2014; 20: 164-82.                                       NADPH oxidases in vascular physiology and
                                                                    pathophysiology. Front Biosci (Schol Ed) 2012; 4:
35. Frazziano G, Champion HC, Pagano PJ. NADPH                      1044-64.
     oxidase-derived ROS and the regulation of pulmonary
     vessel tone. Am J Physiol Heart Circ Physiol 2012;        50. Bruder-Nascimento T, Chinnasamy P, Riascos-Bernal
     302: H2166-77.                                                 DF, Cau SB, Callera GE, Touyz RM, Tostes RC,
                                                                    Sibinga NE. Angiotensin II induces Fat1
36. Hernanz R, Briones AM, Salaices M, Alonso MJ.                   expression/activation and vascular smooth muscle cell
     New roles for old pathways? A circuitous relationship          migration via Nox1-dependent reactive oxygen
     between reactive oxygen species and cyclo-oxygenase            species generation. J Mol Cell Cardiol 2014; 66: 18-
     in hypertension. Clin Sci (Lond) 2014; 126: 111-21.            26.

37. Dikalov SI. Cross talk between mitochondria and            51. Weber DS, Taniyama Y, Rocic P, Seshiah PN,
     NADPH oxidases. Free Radic Biol Med 2011; 51:                  Dechert MA, Gerthoffer WT, Griendling KK.
     1289-301.                                                      Phosphoinositide-dependent kinase 1 and p21-
                                                                    activated protein kinase mediate reactive oxygen
38. Lacy F, Gough DA, Schmid-Schönbein GW. Role of                  species-dependent regulation of platelet-derived
     xanthine oxidase in hydrogen peroxide production.              growth factor-induced smooth muscle cell migration.
     Free Radic Biol Med 1998; 25:720-7.                            Circ Res 2004; 94: 1219-26.

39. Landmesser U, Spiekermann S, Preuss C, Sorrentino          52. Dikalova A, Clempus R, Lassègue B, Cheng G,
     S, Fischer D, Manes C, Mueller M, Drexler H.                   McCoy J, Dikalov S, San Martin A, Lyle A, Weber
     Angiotensin II induces endothelial xanthine oxidase            DS, Weiss D, Taylor WR, Schmidt HH, Owens GK,
     activation: role for endothelial dysfunction in patients       Lambeth JD, Griendling KK. Nox1 overexpression
     with coronary disease. Arterioscler Thromb Vasc Biol           potentiates angiotensin II-induced hypertension and
     2007; 27: 943-8                                                vascular smooth muscle hypertrophy in transgenic
                                                                    mice. Circulation 2005; 112: 2668-76.
40. Schulz E, Jansen T, Wenzel P, Daiber A, Münzel, T.
     Nitric oxide, tetrahydrobiopterin, oxidative stress, and  53. Anrather J, Racchumi G, Iadecola C. NFkappaB
     endothelial dysfunction in hypertension. Antioxid              regulates phagocytic NADPH oxidase by inducing the
     Redox Signaling 2008; 10: 1115-26.                             expression of gp91phox. J Biol Chem 2006; 281:
                                                                    5657-67.
41. Al Ghouleh I, Rodríguez A, Pagano PJ, Csányi G.
     Proteomic Analysis Identifies an NADPH Oxidase 1          54. Lassègue B, San Martín A, Griendling KK.
     (Nox1)-Mediated Role for Actin-Related Protein 2/3             Biochemistry, physiology, and pathophysiology of
     Complex Subunit 2 (ARPC2) in Promoting Smooth                  NADPH oxidases in the cardiovascular system. Circ
     Muscle Cell Migration Int J Mol Sci 2013; 14: 20220-           Res 2012; 110: 1364-90.
     35.
                                                               55. Guichard C, Moreau R, Pessayre D, Epperson TK,
42. Ebrahimian T, Touyz RM. Thioredoxin in vascular                 Krause KH. NOX family NADPH oxidases in liver
     biology: role in hypertension. Antioxid Redox Signal           and in pancreatic islets: a role in the metabolic
     2008; 10: 1127-36.                                             syndrome and diabetes? Biochem Soc Trans 2008; 36:
                                                                    920-9.
43. Trachootham D, Alexandre J, Huang P. Targeting
     cancer cells by ROS-mediated mechanisms: a radical        56. Chen F, Haigh S, Barman S, Fulton DJR. From form
     therapeutic approach? Nat Rev Drug Discov 2009;                to function: the role of Nox4 in the cardiovascular
     8:579-91.                                                      system. Front Physiol 2012; 3: 412.

@Real Academia Nacional de Farmacia. Spain                                  141
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