Spreading dilatation in rat mesenteric arteries associated with calcium‐independent endothelial cell hyperpolarization
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C. Garland | Kim A Dora | K. Dora | H. Takano | M. Spitaler | Hiromichi Takano | Michaela M Spitaler | Chris J Garland
[1] R. Berne,et al. Propagated Vasodilation in the Microcirculation of the Hamster Cheek Pouch , 1970, Circulation research.
[2] C. Garland,et al. Evidence for a Differential Cellular Distribution of Inward Rectifier K Channels in the Rat Isolated Mesenteric Artery , 2003, Journal of Vascular Research.
[3] B. Duling,et al. Dye tracers define differential endothelial and smooth muscle coupling patterns within the arteriolar wall. , 1995, Circulation research.
[4] K. Muraki,et al. Ca2+-images of smooth muscle cells and endothelial cells in one confocal plane in femoral artery segments of the rat. , 2001, Japanese journal of pharmacology.
[5] C. Garland,et al. Properties of smooth muscle hyperpolarization and relaxation to K+ in the rat isolated mesenteric artery. , 2001, American journal of physiology. Heart and circulatory physiology.
[6] K. Willecke,et al. Impaired conduction of vasodilation along arterioles in connexin40-deficient mice. , 2000, Circulation research.
[7] N. Severs,et al. Individual gap junction plaques contain multiple connexins in arterial endothelium. , 1998, Circulation research.
[8] Hikaru Suzuki,et al. Endothelium‐dependent hyperpolarization and intercellular electrical coupling in guinea‐pig mesenteric arterioles , 1999, The Journal of physiology.
[9] S S Segal,et al. Flow control among microvessels coordinated by intercellular conduction. , 1986, Science.
[10] C. Hillier,et al. Determination of an Optimal Axial‐Length Tension for the Study of Isolated Resistance Arteries on a Pressure Myograph , 1999, Experimental physiology.
[11] R. Busse,et al. Dynamic Modulation of Interendothelial Gap Junctional Communication by 11,12-Epoxyeicosatrienoic Acid , 2002, Circulation research.
[12] R. Busse,et al. Activators of potassium channels enhance calcium influx into endothelial cells as a consequence of potassium currents , 1990, Naunyn-Schmiedeberg's Archives of Pharmacology.
[13] G. G. Emerson,et al. Endothelial cell pathway for conduction of hyperpolarization and vasodilation along hamster feed artery. , 2000, Circulation research.
[14] M. Eckmann,et al. Role of endothelial intermediate conductance KCa channels in cerebral EDHF-mediated dilations. , 2003, American journal of physiology. Heart and circulatory physiology.
[15] R. Busse,et al. Calcium influx into endothelial cells and formation of endothelium-derived relaxing factor is controlled by the membrane potential , 1990, Pflügers Archiv.
[16] P. Langton,et al. Inhibition of EDHF by two new combinations of K+‐channel inhibitors in rat isolated mesenteric arteries , 2003, British journal of pharmacology.
[17] G. G. Emerson,et al. Conduction of hyperpolarization along hamster feed arteries: augmentation by acetylcholine. , 2002, American journal of physiology. Heart and circulatory physiology.
[18] J. Connat,et al. An electron-microscopic study of smooth muscle cell dye coupling in the pig coronary arteries. Role of gap junctions. , 1992, Circulation research.
[19] L. Kuo,et al. Activation of Barium-Sensitive Inward Rectifier Potassium Channels Mediates Remote Dilation of Coronary Arterioles , 2001, Circulation.
[20] W. Schilling. Effect of membrane potential on cytosolic calcium of bovine aortic endothelial cells. , 1989, The American journal of physiology.
[21] W. Keatinge,et al. Responses of inner and outer muscle of the sheep carotid artery to injury. , 1975, The Journal of physiology.
[22] M. Mulvany,et al. KCa-channel blockade prevents sustained pressure-induced depolarization in rat mesenteric small arteries. , 1997, The American journal of physiology.
[23] H. Mikkelsen,et al. Expression of connexin 37, 40 and 43 in rat mesenteric arterioles and resistance arteries , 2003, Histochemistry and Cell Biology.
[24] H. Coleman,et al. Glycyrrhetinic derivatives inhibit hyperpolarization in endothelial cells of guinea pig and rat arteries. , 2002, American journal of physiology. Heart and circulatory physiology.
[25] R. Busse,et al. EDHF: bringing the concepts together. , 2002, Trends in pharmacological sciences.
[26] J. Hinton,et al. An indirect influence of phenylephrine on the release of endothelium‐derived vasodilators in rat small mesenteric artery , 2000, British journal of pharmacology.
[27] C. Hill,et al. Incidence of myoendothelial gap junctions in the proximal and distal mesenteric arteries of the rat is suggestive of a role in endothelium-derived hyperpolarizing factor-mediated responses. , 2000, Circulation research.
[28] D. W. Cheung,et al. Effect of K(+)-channel blockers on ACh-induced hyperpolarization and relaxation in mesenteric arteries. , 1997, The American journal of physiology.
[29] R Busse,et al. Crucial role of endothelium in the vasodilator response to increased flow in vivo. , 1986, Hypertension.
[30] S. Segal,et al. Conducted vasodilation elevates flow in arteriole networks of hamster striated muscle. , 1995, The American journal of physiology.
[31] C. Garland,et al. Small‐ and Intermediate‐Conductance Calcium‐Activated K+ Channels Provide Different Facets of Endothelium‐Dependent Hyperpolarization in Rat Mesenteric Artery , 2003, The Journal of physiology.
[32] C. Garland,et al. Evidence that nitric oxide does not mediate the hyperpolarization and relaxation to acetylcholine in the rat small mesenteric artery , 1992, British journal of pharmacology.
[33] J. Phillips,et al. Heterogeneous control of blood flow amongst different vascular beds , 2001, Medicinal research reviews.
[34] A. Kitabatake,et al. Sources of Ca2+ in relation to generation of acetylcholine‐induced endothelium‐dependent hyperpolarization in rat mesenteric artery , 1997, British journal of pharmacology.
[35] G. G. Emerson,et al. Electrical activation of endothelium evokes vasodilation and hyperpolarization along hamster feed arteries. , 2001, American journal of physiology. Heart and circulatory physiology.
[36] C. Garland,et al. K+ is an endothelium-derived hyperpolarizing factor in rat arteries , 1998, Nature.
[37] C. Garland,et al. Activation of endothelial cell IKCa with 1‐ethyl‐2‐benzimidazolinone evokes smooth muscle hyperpolarization in rat isolated mesenteric artery , 2001, British journal of pharmacology.
[38] N. Buus,et al. Different modulation by Ca2+‐activated K+ channel blockers and herbimycin of acetylcholine‐ and flow‐evoked vasodilatation in rat mesenteric small arteries , 2003, British journal of pharmacology.
[39] D. Paul,et al. Central Role of Connexin40 in the Propagation of Electrically Activated Vasodilation in Mouse Cremasteric Arterioles In Vivo , 2003, Circulation research.
[40] B. Duling,et al. Acetylcholine induces conducted vasodilation by nitric oxide-dependent and -independent mechanisms. , 1997, The American journal of physiology.
[41] Alexander Schuster,et al. Role of membrane potential in vasomotion of isolated pressurized rat arteries. , 2002, Life sciences.
[42] C. Hiley,et al. Hyperpolarisation of rat mesenteric endothelial cells by ATP-sensitive K(+) channel openers. , 2000, European journal of pharmacology.
[43] M. Cannell,et al. Bradykinin‐evoked changes in cytosolic calcium and membrane currents in cultured bovine pulmonary artery endothelial cells. , 1989, The Journal of physiology.
[44] G. G. Emerson,et al. Electrical Coupling Between Endothelial Cells and Smooth Muscle Cells in Hamster Feed Arteries: Role in Vasomotor Control , 2000, Circulation research.
[45] R. Busse,et al. Hyperpolarization and increased free calcium in acetylcholine-stimulated endothelial cells. , 1988, The American journal of physiology.
[46] M. Mulvany,et al. Rhythmic contractions of isolated small arteries from rat: influence of the endothelium. , 1993, Acta physiologica Scandinavica.
[47] S. Hilton. A peripheral arterial conducting mechanism underlying dilatation of the femoral artery and concerned in functional vasodilatation in skeletal muscle , 1959, The Journal of physiology.
[48] David John Adams,et al. An ATP‐sensitive potassium conductance in rabbit arterial endothelial cells. , 1995, The Journal of physiology.
[49] B. Duling,et al. Morphology favors an endothelial cell pathway for longitudinal conduction within arterioles. , 1997, Microvascular research.
[50] Z. Ungvari,et al. Increases in endothelial Ca(2+) activate K(Ca) channels and elicit EDHF-type arteriolar dilation via gap junctions. , 2002, American journal of physiology. Heart and circulatory physiology.
[51] S. Segal,et al. Intracellular recording and dye transfer in arterioles during blood flow control. , 1992, The American journal of physiology.
[52] N. Holstein-Rathlou,et al. Conducted vasomotor responses in arterioles: characteristics, mechanisms and physiological significance. , 1999, Acta physiologica Scandinavica.
[53] N. Morel,et al. Cellular target of voltage and calcium‐dependent K+ channel blockers involved in EDHF‐mediated responses in rat superior mesenteric artery , 2001, British journal of pharmacology.
[54] B. Duling,et al. Heterogeneity in conducted arteriolar vasomotor response is agonist dependent. , 1991, The American journal of physiology.
[55] F. Edwards,et al. Intercellular electrical communication among smooth muscle and endothelial cells in guinea‐pig mesenteric arterioles , 2001, The Journal of physiology.
[56] B. Duling,et al. Endothelial cell signaling during conducted vasomotor responses. , 2003, American journal of physiology. Heart and circulatory physiology.
[57] G. Hirst,et al. An analysis of excitatory junctional potentials recorded from arterioles. , 1978, The Journal of physiology.
[58] P. Langton,et al. Potassium does not mimic EDHF in rat mesenteric arteries , 2000, British journal of pharmacology.
[59] N. Stergiopulos,et al. Cytosolic-free calcium in smooth-muscle and endothelial cells in an intact arterial wall from rat mesenteric artery in vitro. , 2001, Cell calcium.