Endothelial AIP1 Regulates Vascular Remodeling by Suppressing NADPH Oxidase-2
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W. Min | Luyang Yu | Haifeng Zhang | Chaofei Chen | H. Zhou | Jiqin Zhang | Li Li | Yuxin Chen | Feng-Hua Li
[1] S. Schwartz. Faculty Opinions recommendation of Corrigendum: KLF4-dependent phenotypic modulation of smooth muscle cells has a key role in atherosclerotic plaque pathogenesis. , 2018, Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature.
[2] M. Ushio-Fukai,et al. ROS-induced ROS release orchestrated by Nox4, Nox2, and mitochondria in VEGF signaling and angiogenesis. , 2017, American journal of physiology. Cell physiology.
[3] Laura S. Shankman,et al. Activation of the ESC pluripotency factor OCT4 in smooth muscle cells is atheroprotective , 2016, Nature Medicine.
[4] R. Tucker,et al. Nuclear PTEN functions as an essential regulator of SRF-dependent transcription to control smooth muscle differentiation , 2016, Nature Communications.
[5] M. Bennett,et al. Vascular Smooth Muscle Cells in Atherosclerosis. , 2016, Circulation research.
[6] Laura S. Shankman,et al. KLF4 Dependent Phenotypic Modulation of SMCs Plays a Key Role in Atherosclerotic Plaque Pathogenesis , 2015, Nature Medicine.
[7] W. Min,et al. AIP1-Mediated Stress Signaling in Atherosclerosis and Arteriosclerosis , 2015, Current Atherosclerosis Reports.
[8] M. Cześnikiewicz-Guzik,et al. NADPH oxidases in vascular pathology. , 2014, Antioxidants & redox signaling.
[9] W. Min,et al. AIP1 Suppresses Atherosclerosis by Limiting Hyperlipidemia-Induced Inflammation and Vascular Endothelial Dysfunction , 2013, Arteriosclerosis, thrombosis, and vascular biology.
[10] S. Dikalov,et al. Rapid and Specific Measurements of Superoxide Using Fluorescence Spectroscopy , 2013, Journal of biomolecular screening.
[11] K. Clarke,et al. Synergistic effect of human immunodeficiency virus and the metabolic syndrome on arterial stiffness , 2012 .
[12] W. Min,et al. AIP1 in graft arteriosclerosis. , 2011, Trends in cardiovascular medicine.
[13] W. Min,et al. AIP1 Prevents Graft Arteriosclerosis by Inhibiting Interferon-&ggr;–Dependent Smooth Muscle Cell Proliferation and Intimal Expansion , 2011, Circulation research.
[14] M. Margaglione,et al. Association of a sequence variant in DAB2IP with coronary heart disease , 2011, European heart journal.
[15] Mark D. Huffman,et al. Executive Summary: Heart Disease and Stroke Statistics—2015 Update A Report From the American Heart Association , 2011, Circulation.
[16] Gerard Tromp,et al. Genome-wide association study identifies a sequence variant within the DAB2IP gene conferring susceptibility to abdominal aortic aneurysm , 2010, Nature Genetics.
[17] A. Daiber. Redox signaling (cross-talk) from and to mitochondria involves mitochondrial pores and reactive oxygen species. , 2010, Biochimica et biophysica acta.
[18] J. Sadoshima,et al. Upregulation of Nox4 by Hypertrophic Stimuli Promotes Apoptosis and Mitochondrial Dysfunction in Cardiac Myocytes , 2010, Circulation research.
[19] K. Griendling,et al. NADPH Oxidases: Functions and Pathologies in the Vasculature , 2010, Arteriosclerosis, thrombosis, and vascular biology.
[20] Paul T. Schumacker,et al. Hypoxia Triggers Subcellular Compartmental Redox Signaling in Vascular Smooth Muscle Cells , 2010, Circulation research.
[21] T. Kawahara,et al. Constitutive NADPH-Dependent Electron Transferase Activity of the Nox4 Dehydrogenase Domain† , 2010, Biochemistry.
[22] Wareef Kabbani,et al. Role of DAB2IP in modulating epithelial-to-mesenchymal transition and prostate cancer metastasis , 2010, Proceedings of the National Academy of Sciences.
[23] W. Min,et al. AIP1 Functions as Arf6-GAP to Negatively Regulate TLR4 Signaling* , 2009, The Journal of Biological Chemistry.
[24] R. Vessella,et al. DAB2IP coordinates both PI3K-Akt and ASK1 pathways for cell survival and apoptosis , 2009, Proceedings of the National Academy of Sciences.
[25] Mark D. Huffman,et al. Heart Disease and Stroke Statistics—2015 Update: A Report From the American Heart Association , 2009, Circulation.
[26] J. Brüning,et al. Riboflavin kinase couples TNF receptor 1 to NADPH oxidase , 2009, Nature.
[27] W. Min,et al. Endothelial-Specific Expression of Mitochondrial Thioredoxin Promotes Ischemia-Mediated Arteriogenesis and Angiogenesis , 2009, Arteriosclerosis, thrombosis, and vascular biology.
[28] F. Morel,et al. Regulation of the phagocyte NADPH oxidase activity: phosphorylation of gp91phox/NOX2 by protein kinase C enhances its diaphorase activity and binding to Rac2, p67phox, and p47phox , 2009, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[29] V. Natarajan,et al. Regulation of NADPH oxidase in vascular endothelium: the role of phospholipases, protein kinases, and cytoskeletal proteins. , 2009, Antioxidants & redox signaling.
[30] W. Min,et al. MyD88-dependent, superoxide-initiated inflammation is necessary for flow-mediated inward remodeling of conduit arteries , 2008, The Journal of experimental medicine.
[31] W. Min,et al. AIP1 functions as an endogenous inhibitor of VEGFR2-mediated signaling and inflammatory angiogenesis in mice. , 2008, The Journal of clinical investigation.
[32] H. Sumimoto. Structure, regulation and evolution of Nox‐family NADPH oxidases that produce reactive oxygen species , 2008, The FEBS journal.
[33] W. Min,et al. AIP1 Recruits Phosphatase PP2A to ASK1 in Tumor Necrosis Factor–Induced ASK1-JNK Activation , 2008, Circulation research.
[34] Jordan S. Pober,et al. Evolving functions of endothelial cells in inflammation , 2007, Nature Reviews Immunology.
[35] Stephen M Schwartz,et al. Vascular Remodeling: Hemodynamic and Biochemical Mechanisms Underlying Glagov’s Phenomenon , 2007, Arteriosclerosis, thrombosis, and vascular biology.
[36] M. Majesky. Developmental basis of vascular smooth muscle diversity. , 2007, Arteriosclerosis, thrombosis, and vascular biology.
[37] W. Min,et al. RIP1-mediated AIP1 Phosphorylation at a 14-3-3-binding Site Is Critical for Tumor Necrosis Factor-induced ASK1-JNK/p38 Activation* , 2007, Journal of Biological Chemistry.
[38] Y. Huang,et al. Endothelial‐specific expression of mitochondrial thioredoxin improves endothelial cell function and reduces atherosclerotic lesions , 2007, The American journal of pathology.
[39] H. Um,et al. Link between Mitochondria and NADPH Oxidase 1 Isozyme for the Sustained Production of Reactive Oxygen Species and Cell Death* , 2006, Journal of Biological Chemistry.
[40] S. Moncada,et al. Mitochondria as signaling organelles in the vascular endothelium. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[41] Y. Castier,et al. p47phox-Dependent NADPH Oxidase Regulates Flow-Induced Vascular Remodeling , 2005, Circulation research.
[42] Wang Min,et al. AIP1/DAB2IP, a Novel Member of the Ras-GAP Family, Transduces TRAF2-induced ASK1-JNK Activation* , 2004, Journal of Biological Chemistry.
[43] W. Sessa,et al. T cell-mediated vascular dysfunction of human allografts results from IFN-gamma dysregulation of NO synthase. , 2004, The Journal of clinical investigation.
[44] G. Owens,et al. Molecular regulation of vascular smooth muscle cell differentiation in development and disease. , 2004, Physiological reviews.
[45] B. Berk,et al. Flow-Induced Vascular Remodeling in the Mouse: A Model for Carotid Intima-Media Thickening , 2003, Arteriosclerosis, thrombosis, and vascular biology.
[46] W. Min,et al. AIP1 mediates TNF-alpha-induced ASK1 activation by facilitating dissociation of ASK1 from its inhibitor 14-3-3. , 2003, The Journal of clinical investigation.
[47] P. Libby. Inflammation in atherosclerosis , 2002, Nature.
[48] S S Segal,et al. Temporal events underlying arterial remodeling after chronic flow reduction in mice: correlation of structural changes with a deficit in basal nitric oxide synthesis. , 2000, Circulation research.
[49] K. Williams,et al. Atherosclerosis--an inflammatory disease. , 1999, The New England journal of medicine.
[50] R. D. Rudic,et al. Direct evidence for the importance of endothelium-derived nitric oxide in vascular remodeling. , 1998, The Journal of clinical investigation.
[51] D. Harrison,et al. Reactive oxygen species produced by macrophage-derived foam cells regulate the activity of vascular matrix metalloproteinases in vitro. Implications for atherosclerotic plaque stability. , 1996, The Journal of clinical investigation.
[52] S. Dikalov,et al. CALL FOR PAPERS Mitochondria in Cardiovascular Physiology and Disease Nox2 as a potential target of mitochondrial superoxide and its role in endothelial oxidative stress , 2013 .
[53] K. Krause,et al. The NOX family of ROS-generating NADPH oxidases: physiology and pathophysiology. , 2007, Physiological reviews.
[54] R. Mitchell,et al. Allograft arteriopathy: pathogenesis update. , 2004, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.
[55] R. Alexander,et al. Oxidative stress and cardiovascular disease. , 1997, Circulation.