The shear stress of it all: the cell membrane and mechanochemical transduction
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[1] Arthur K. Doolittle,et al. Studies in Newtonian Flow. II. The Dependence of the Viscosity of Liquids on Free‐Space , 1951 .
[2] David Turnbull,et al. Molecular Transport in Liquids and Glasses , 1959 .
[3] D. L. Fry. Acute Vascular Endothelial Changes Associated with Increased Blood Velocity Gradients , 1968, Circulation research.
[4] H. Wright. Mitosis patterns in aortic endothelium. , 1972, Atherosclerosis.
[5] W. K. Tucker,et al. Endothelial Nuclear Patterns in the Canine Arterial Tree with Particular Reference to Hemodynamic Events , 1972, Circulation research.
[6] C. J. Schwartz,et al. Increased endothelial cell turnover in areas of in vivo Evans Blue uptake in the pig aorta. , 1973, Atherosclerosis.
[7] R. L. Houghton,et al. Kinetics of the mechanism of action of flavin pyruvate oxidase from an acetate requiring mutant of Escherichia coli , 1973, FEBS letters.
[8] S J Singer,et al. Membrane fluidity and cellular functions. , 1975, Advances in experimental medicine and biology.
[9] C. Zarins,et al. Effect of hypotension on atherogenesis and aortic wall composition. , 1980, The Journal of surgical research.
[10] H Frauenfelder,et al. Solvent viscosity and protein dynamics. , 1980, Biochemistry.
[11] C F Dewey,et al. The dynamic response of vascular endothelial cells to fluid shear stress. , 1981, Journal of biomechanical engineering.
[12] D. Giddens,et al. Characterization and evolution poststenotic flow disturbances. , 1981, Journal of biomechanics.
[13] B L Langille,et al. Relationship between Blood Flow Direction and Endothelial Cell Orientation at Arterial Branch Sites in Rabbits and Mice , 1981, Circulation research.
[14] A. Svindland. The localization of sudanophilic and fibrous plaques in the main left coronary bifurcation. , 1983, Atherosclerosis.
[15] C. Zarins,et al. Carotid Bifurcation Atherosclerosis: Quantitative Correlation of Plaque Localization with Flow Velocity Profiles and Wall Shear Stress , 1983, Circulation research.
[16] L. Langille. Integrity of arterial endothelium following acute exposure to high shear stress. , 1984, Biorheology.
[17] D. Ku,et al. Pulsatile Flow and Atherosclerosis in the Human Carotid Bifurcation: Positive Correlation between Plaque Location and Low and Oscillating Shear Stress , 1985, Arteriosclerosis.
[18] L V McIntire,et al. Flow effects on prostacyclin production by cultured human endothelial cells. , 1985, Science.
[19] R M Nerem,et al. Correlation of Endothelial Cell Shape and Wall Shear Stress in a Stenosed Dog Aorta , 1986, Arteriosclerosis.
[20] Chun En Kung,et al. Microviscosity measurements of phospholipid bilayers using fluorescent dyes that undergo torsional relaxation , 1986 .
[21] P. Vanhoutte,et al. Flow-induced release of endothelium-derived relaxing factor. , 1986, The American journal of physiology.
[22] M. Krausz,et al. Fetal and adult human liver differ markedly in the fluidity and lipid composition of their microsomal membranes , 1987, Hepatology.
[23] D. Ku,et al. Hemodynamics and atherosclerosis. Insights and perspectives gained from studies of human arteries. , 1988, Archives of pathology & laboratory medicine.
[24] S. Weinbaum,et al. Enhanced macromolecular permeability of aortic endothelial cells in association with mitosis. , 1988, Atherosclerosis.
[25] P. Davies,et al. Haemodynamic shear stress activates a K+ current in vascular endothelial cells , 1988, Nature.
[26] L. Romer,et al. EndoCAM: a novel endothelial cell-cell adhesion molecule , 1990, The Journal of cell biology.
[27] P. Hänggi,et al. Reaction-rate theory: fifty years after Kramers , 1990 .
[28] R M Nerem,et al. Vascular endothelial cell proliferation in culture and the influence of flow. , 1990, Biomaterials.
[29] J. Gorski,et al. PECAM-1 (CD31) cloning and relation to adhesion molecules of the immunoglobulin gene superfamily. , 1990, Science.
[30] M Okano,et al. Endothelial cell morphometry of atherosclerotic lesions and flow profiles at aortic bifurcations in cholesterol fed rabbits. , 1992, Journal of biomechanical engineering.
[31] J. Frangos,et al. Shear‐induced platelet‐derived growth factor gene expression in human endothelial cells is mediated by protein kinase C , 1992, Journal of cellular physiology.
[32] J. Frangos,et al. Flow‐induced prostacyclin production is mediated by a pertussis toxin‐sensitive G protein , 1992, FEBS letters.
[33] M. Gimbrone,et al. Vascular endothelium responds to fluid shear stress gradients. , 1992, Arteriosclerosis and thrombosis : a journal of vascular biology.
[34] Y. Yoshida,et al. Influence of shear stress on endothelial cell shapes and junction complexes at flow dividers of aortic bifurcations in cholesterol-fed rabbits. , 1993, Frontiers of medical and biological engineering : the international journal of the Japan Society of Medical Electronics and Biological Engineering.
[35] J. Cooke,et al. Shear Stress Elevates Endothelial cGMP. Role of a Potassium Channel and G Protein Coupling , 1993, Circulation.
[36] Y. Fung,et al. Elementary mechanics of the endothelium of blood vessels. , 1993, Journal of biomechanical engineering.
[37] J A Frangos,et al. Role of G proteins in shear stress-mediated nitric oxide production by endothelial cells. , 1994, The American journal of physiology.
[38] J. Frangos,et al. Fluid flow increases membrane permeability to merocyanine 540 in human endothelial cells. , 1994, Biochimica et biophysica acta.
[39] R. Lal,et al. Shear stress-induced reorganization of the surface topography of living endothelial cells imaged by atomic force microscopy. , 1994, Circulation research.
[40] K. Fujiwara,et al. Fluid flow and osmotic stress induce tyrosine phosphorylation of an endothelial cell 128 kDa surface glycoprotein. , 1995, Biochemical and biophysical research communications.
[41] P. Davies,et al. Flow-mediated endothelial mechanotransduction. , 1995, Physiological reviews.
[42] K. Fujiwara,et al. Focal adhesion proteins associated with apical stress fibers of human fibroblasts. , 1995, Cell motility and the cytoskeleton.
[43] R. Lal,et al. Subcellular distribution of shear stress at the surface of flow-aligned and nonaligned endothelial monolayers. , 1995, The American journal of physiology.
[44] J A Frangos,et al. Steady shear and step changes in shear stimulate endothelium via independent mechanisms--superposition of transient and sustained nitric oxide production. , 1996, Biochemical and biophysical research communications.
[45] C. Marcelo,et al. EPR measurements showing that plasma membrane viscosity can vary from 30 to 100 cP in human epidermal cell strains , 1996 .
[46] J. Frangos,et al. Fluid flow rapidly activates G proteins in human endothelial cells. Involvement of G proteins in mechanochemical signal transduction. , 1996, Circulation research.
[47] B L Langille,et al. Decreased blood flow rate disrupts endothelial repair in vivo. , 1996, The American journal of pathology.
[48] J. Frangos,et al. Role of cytoskeleton in shear stress-induced endothelial nitric oxide production. , 1997, The American journal of physiology.
[49] S Chien,et al. Effects of disturbed flow on endothelial cells. , 1998, Journal of biomechanical engineering.
[50] B. Berk,et al. Laminar shear stress: mechanisms by which endothelial cells transduce an atheroprotective force. , 1998, Arteriosclerosis, thrombosis, and vascular biology.
[51] J A Frangos,et al. Modulation of GTPase activity of G proteins by fluid shear stress and phospholipid composition. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[52] D. Vestweber,et al. Endothelial Barrier Function under Laminar Fluid Shear Stress , 2000, Laboratory Investigation.
[53] H. Schnaper,et al. Shear stress enhances human endothelial cell wound closure in vitro. , 2000, American journal of physiology. Heart and circulatory physiology.
[54] J A Frangos,et al. Fluid shear stress increases membrane fluidity in endothelial cells: a study with DCVJ fluorescence. , 2000, American journal of physiology. Heart and circulatory physiology.
[55] J A Frangos,et al. Analysis of temporal shear stress gradients during the onset phase of flow over a backward-facing step. , 2001, Journal of biomechanical engineering.
[56] B. Lévy,et al. Flow (Shear Stress)–Induced Endothelium-Dependent Dilation Is Altered in Mice Lacking the Gene Encoding for Dystrophin , 2001, Circulation.
[57] J A Frangos,et al. New fluorescent probes for the measurement of cell membrane viscosity. , 2001, Chemistry & biology.
[58] J. Frangos,et al. Mechanism of temporal gradients in shear-induced ERK1/2 activation and proliferation in endothelial cells. , 2001, American journal of physiology. Heart and circulatory physiology.
[59] John A. Frangos,et al. Temporal Gradients in Shear, but Not Spatial Gradients, Stimulate Endothelial Cell Proliferation , 2001, Circulation.
[60] D. Henrion,et al. Selective microvascular dysfunction in mice lacking the gene encoding for desmin , 2002, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[61] J. Frangos,et al. PECAM-1 Interacts With Nitric Oxide Synthase in Human Endothelial Cells: Implication for Flow-Induced Nitric Oxide Synthase Activation , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[62] J. Frangos,et al. PECAM-1 Mediates NO-Dependent Dilation of Arterioles to High Temporal Gradients of Shear Stress , 2005, Arteriosclerosis, thrombosis, and vascular biology.
[63] J. Frangos,et al. Temporal gradients in shear, but not spatial gradients, stimulate ERK1/2 activation in human endothelial cells. , 2005, American journal of physiology. Heart and circulatory physiology.
[64] J. Ando,et al. Cytoplasmic calcium response to fluid shear stress in cultured vascular endothelial cells , 1988, In Vitro Cellular & Developmental Biology.