Role of the NADPH Oxidases in the Subfornical Organ in Angiotensin II–Induced Hypertension
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[1] T. Guzik,et al. Central and Peripheral Mechanisms of T-Lymphocyte Activation and Vascular Inflammation Produced by Angiotensin II–Induced Hypertension , 2010, Circulation research.
[2] C. Weyand,et al. Induction of hypertension and peripheral inflammation by deletion of extracellular superoxide dismutase in the central nervous system , 2010, Hypertension.
[3] J. R. Peterson,et al. Genetic Silencing of Nox2 and Nox4 Reveals Differential Roles of These NADPH Oxidase Homologues in the Vasopressor and Dipsogenic Effects of Brain Angiotensin II , 2009, Hypertension.
[4] N. Deshpande,et al. Poldip2, a Novel Regulator of Nox4 and Cytoskeletal Integrity in Vascular Smooth Muscle Cells , 2009, Circulation research.
[5] M. Dolnikoff,et al. Oxidative stress in the sympathetic premotor neurons contributes to sympathetic activation in renovascular hypertension. , 2009, American journal of hypertension.
[6] D. Harrison,et al. Role of the T cell in the genesis of angiotensin II–induced hypertension and vascular dysfunction , 2007, The Journal of experimental medicine.
[7] M. Tamura,et al. p40phox as an alternative organizer to p47phox in Nox2 activation: A new mechanism involving an interaction with p22phox , 2007, FEBS letters.
[8] H. Stauss,et al. IDENTIFICATION OF BLOOD PRESSURE CONTROL MECHANISMS BY POWER SPECTRAL ANALYSIS , 2007, Clinical and Experimental Pharmacology and Physiology.
[9] H. Stauss. Power spectral analysis in mice: What are the appropriate frequency bands? , 2007, American journal of physiology. Regulatory, integrative and comparative physiology.
[10] G. Lip,et al. Oxidative stress and hypertension , 2006, International journal of clinical practice.
[11] Michael S Janes,et al. Selective fluorescent imaging of superoxide in vivo using ethidium-based probes , 2006, Proceedings of the National Academy of Sciences.
[12] Masato Matsuki,et al. Nox1 Is Involved in Angiotensin II–Mediated Hypertension: A Study in Nox1-Deficient Mice , 2005, Circulation.
[13] K. Hsu,et al. NADPH Oxidase–Derived Superoxide Anion Mediates Angiotensin II–Induced Pressor Effect via Activation of p38 Mitogen–Activated Protein Kinase in the Rostral Ventrolateral Medulla , 2005, Circulation research.
[14] C. Ross,et al. Central angiotensin II-enhanced splenic cytokine gene expression is mediated by the sympathetic nervous system. , 2005, American journal of physiology. Heart and circulatory physiology.
[15] T. Kawahara,et al. Point Mutations in the Proline-rich Region of p22phox Are Dominant Inhibitors of Nox1- and Nox2-dependent Reactive Oxygen Generation* , 2005, Journal of Biological Chemistry.
[16] J. Collister,et al. Contribution of the subfornical organ to angiotensin II-induced hypertension. , 2005, American journal of physiology. Heart and circulatory physiology.
[17] K. Griendling,et al. Functional association of nox1 with p22phox in vascular smooth muscle cells. , 2004, Free radical biology & medicine.
[18] J. Engelhardt,et al. Requirement for Rac1-Dependent NADPH Oxidase in the Cardiovascular and Dipsogenic Actions of Angiotensin II in the Brain , 2004, Circulation research.
[19] M. Zimmerman,et al. Hypertension Caused by Angiotensin II Infusion Involves Increased Superoxide Production in the Central Nervous System , 2004, Circulation research.
[20] J. Panés,et al. Direct evidence of leukocyte adhesion in arterioles by angiotensin II. , 2004, Blood.
[21] Steven M Holland,et al. Oxidation of tetrahydrobiopterin leads to uncoupling of endothelial cell nitric oxide synthase in hypertension. , 2003, The Journal of clinical investigation.
[22] Hidekazu Hiroaki,et al. Phosphorylation of p47phox directs phox homology domain from SH3 domain toward phosphoinositides, leading to phagocyte NADPH oxidase activation , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[23] Hiroaki Shimokawa,et al. Increased Reactive Oxygen Species in Rostral Ventrolateral Medulla Contribute to Neural Mechanisms of Hypertension in Stroke-Prone Spontaneously Hypertensive Rats , 2003, Circulation.
[24] D. Spitz,et al. Superoxide Mediates the Actions of Angiotensin II in the Central Nervous System , 2002, Circulation research.
[25] Hua Cai,et al. Role of p47phox in Vascular Oxidative Stress and Hypertension Caused by Angiotensin II , 2002, Hypertension.
[26] George Paxinos,et al. The Mouse Brain in Stereotaxic Coordinates , 2001 .
[27] D. Sorescu,et al. Novel gp91phox Homologues in Vascular Smooth Muscle Cells: nox1 Mediates Angiotensin II-Induced Superoxide Formation and Redox-Sensitive Signaling Pathways , 2001, Circulation research.
[28] R. Davisson,et al. Long-term telemetric measurement of cardiovascular parameters in awake mice: a physiological genomics tool. , 2001, Physiological genomics.
[29] V. Sanders,et al. IFN-γ Production by Th1 Cells Generated from Naive CD4+ T Cells Exposed to Norepinephrine1 , 2001, The Journal of Immunology.
[30] A. Jesaitis,et al. Processing and Maturation of Flavocytochromeb 558 Include Incorporation of Heme as a Prerequisite for Heterodimer Assembly* , 2000, The Journal of Biological Chemistry.
[31] W R Taylor,et al. Role of NADH/NADPH oxidase-derived H2O2 in angiotensin II-induced vascular hypertrophy. , 1998, Hypertension.
[32] W. Welch,et al. Normalization of blood pressure and renal vascular resistance in SHR with a membrane-permeable superoxide dismutase mimetic: role of nitric oxide. , 1998, Hypertension.
[33] S. Rajagopalan,et al. Role for endothelin-1 in angiotensin II-mediated hypertension. , 1997, Hypertension.
[34] S. Rajagopalan,et al. Role of superoxide in angiotensin II-induced but not catecholamine-induced hypertension. , 1997, Circulation.
[35] D. Harrison,et al. Angiotensin II-mediated hypertension in the rat increases vascular superoxide production via membrane NADH/NADPH oxidase activation. Contribution to alterations of vasomotor tone. , 1996, The Journal of clinical investigation.
[36] M. Mangiapane,et al. Subfornical organ: forebrain site of pressor and dipsogenic action of angiotensin II. , 1980, The American journal of physiology.
[37] M. Dolnikoff,et al. Oxidative stress contributes to renovascular hypertension. , 2008, American journal of hypertension.
[38] Peter A. Jones,et al. Appendix: Supplemental Figures , 2020, Deserter Country.
[39] D. Harrison,et al. Angiotensin II-induced hypertrophy is potentiated in mice overexpressing p22phox in vascular smooth muscle. , 2005, American journal of physiology. Heart and circulatory physiology.
[40] G. Kojda,et al. Hemodynamic and biochemical adaptations to vascular smooth muscle overexpression of p22phox in mice. , 2005, American journal of physiology. Heart and circulatory physiology.
[41] W. Lee,et al. IFN-gamma production by Th1 cells generated from naive CD4+ T cells exposed to norepinephrine. , 2001, Journal of immunology.
[42] S. Rajagopalan,et al. p22phox mRNA expression and NADPH oxidase activity are increased in aortas from hypertensive rats. , 1997, Circulation research.
[43] G. Wang,et al. Induction of the , 1996 .