Hypoxia-induced alterations in Ca(2+) mobilization in brain microvascular endothelial cells.
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[1] M. Oike,et al. Hypotonic stress-induced dual Ca(2+) responses in bovine aortic endothelial cells. , 2000, American journal of physiology. Heart and circulatory physiology.
[2] A. Mouithys-Mickalad,et al. Generation of superoxide anion by mitochondria and impairment of their functions during anoxia and reoxygenation in vitro. , 1998, Free radical biology & medicine.
[3] V. V. van Hinsbergh,et al. Transient and prolonged increase in endothelial permeability induced by histamine and thrombin: role of protein kinases, calcium, and RhoA. , 1998, Circulation research.
[4] N. Chandel,et al. Intracellular Signaling by Reactive Oxygen Species during Hypoxia in Cardiomyocytes* , 1998, The Journal of Biological Chemistry.
[5] Keli Xu,et al. Calcium oscillations increase the efficiency and specificity of gene expression , 1998, Nature.
[6] M. Oike,et al. Acute glucose overload abolishes Ca2+ oscillation in cultured endothelial cells from bovine aorta: a possible role of superoxide anion. , 1998, Circulation research.
[7] S. Kashiwagi,et al. Effects of Acute Glucose Overload on Histamine H2 Receptor–Mediated Ca2+ Mobilization in Bovine Cerebral Endothelial Cells , 1998, Diabetes.
[8] J. Clark,et al. Nitric oxide-induced blood-brain barrier dysfunction is not mediated by inhibition of mitochondrial respiratory chain activity and/or energy depletion. , 1997, Nitric oxide : biology and chemistry.
[9] M. Oike,et al. Dynamic regulation of intracellular Ca2+ concentration in aortic endothelial cells. , 1997, European journal of pharmacology.
[10] L. Terada. Hypoxia-reoxygenation increases O2-. efflux which injures endothelial cells by an extracellular mechanism. , 1996, The American journal of physiology.
[11] M. Dehouck,et al. Hypoxia Increases the Susceptibility to Oxidant Stress and the Permeability of the Blood‐Brain Barrier Endothelial Cell Monolayer , 1995, Journal of neurochemistry.
[12] M. Sanderson,et al. Mechanisms of calcium oscillations and waves: a quantitative analysis , 1995, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[13] T. Noll,et al. Initiation of hyperpermeability in energy-depleted coronary endothelial monolayers. , 1995, The American journal of physiology.
[14] R. Dacey,et al. Nitric Oxide Regulates Cerebral Arteriolar Tone in Rats , 1994, Stroke.
[15] N. Bradbury,et al. Role of membrane trafficking in plasma membrane solute transport. , 1994, The American journal of physiology.
[16] L. Missiaen,et al. Ca2+‐Transport ATPases and Their Regulation in Muscle and Brain , 1992, Annals of the New York Academy of Sciences.
[17] J. Remacle,et al. Effect of hypoxia upon intracellular calcium concentration of human endothelial cells , 1992, Journal of cellular physiology.
[18] F. Curry,et al. Modulation of venular microvessel permeability by calcium influx into endothelial cells , 1992, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[19] G. Burnstock,et al. Increased flow‐induced ATP release from isolated vascular endothelial cells but not smooth muscle cells , 1991, British journal of pharmacology.
[20] S. Hatashita,et al. Brain edema and cerebrovascular permeability during cerebral ischemia in rats. , 1990, Stroke.
[21] P. Cullen,et al. Thapsigargin, a tumor promoter, discharges intracellular Ca2+ stores by specific inhibition of the endoplasmic reticulum Ca2(+)-ATPase. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[22] R. Jacob,et al. Agonist‐stimulated divalent cation entry into single cultured human umbilical vein endothelial cells. , 1990, The Journal of physiology.
[23] S. Moncada,et al. Vascular endothelial cells synthesize nitric oxide from L-arginine , 1988, Nature.
[24] P. Picozzi,et al. Duration of ischemia influences the development and resolution of ischemic brain edema. , 1986, Stroke.
[25] M. Bootman. Calcium Signaling , 2012, Advances in Experimental Medicine and Biology.
[26] C. Fewtrell. Ca2+ oscillations in non-excitable cells. , 1993, Annual review of physiology.
[27] F. Faraci. Endothelium-derived vasoactive factors and regulation of the cerebral circulation. , 1993, Neurosurgery.
[28] Abbott Nj,et al. Control of brain endothelial permeability. , 1991 .
[29] N. Abbott,et al. Control of brain endothelial permeability. , 1991, Cerebrovascular and brain metabolism reviews.
[30] G. Majno,et al. Venular endothelium in vitro: isolation and characterization. , 1988, In vitro cellular & developmental biology : journal of the Tissue Culture Association.
[31] L. DeMeis,et al. Energy interconversion by the Ca2+-dependent ATPase of the sarcoplasmic reticulum. , 1979 .