Oscillatory shear stress and hydrostatic pressure modulate cell-matrix attachment proteins in cultured endothelial cells
暂无分享,去创建一个
[1] R M Nerem,et al. Micropipette Aspiration of Cultured Bovine Aortic Endothelial Cells Exposed to Shear Stress , 1987, Arteriosclerosis.
[2] W. D. Norris,et al. Serum enhancement of human endothelial cell attachment to and spreading on collagens I and IV does not require serum fibronectin or vitronectin. , 1990, Journal of cell science.
[3] I. Cameron,et al. Physiological levels of hydrostatic pressure alter morphology and organization of cytoskeletal and adhesion proteins in MG-63 osteosarcoma cells. , 1993, Biochemistry and cell biology = Biochimie et biologie cellulaire.
[4] V. Koteliansky,et al. Specific alterations in the distribution of extracellular matrix components within rat myocardium during the development of pressure overload. , 1991, Laboratory investigation; a journal of technical methods and pathology.
[5] E. Donald,et al. Mechanochemical Switching between Growth and Differentiation during Fibroblast Growth Factor-stimulated Angiogenesis In Vitro : Role of Extracellular Matrix , 2002 .
[6] John A. Frangos,et al. Effects of flow on the synthesis and release of fibronectin by endothelial cells , 2007, In Vitro Cellular & Developmental Biology.
[7] R M Nerem,et al. Effects of pulsatile flow on cultured vascular endothelial cell morphology. , 1991, Journal of biomechanical engineering.
[8] J. Thyberg,et al. Diverse effects of fibronectin and laminin on phenotypic properties of cultured arterial smooth muscle cells , 1988, The Journal of cell biology.
[9] R. Kramer,et al. Type IV collagen synthesis by cultured human microvascular endothelial cells and its deposition into the subendothelial basement membrane. , 1985, Biochemistry.
[10] J. Madri,et al. Phenotypic modulation of endothelial cells by transforming growth factor-beta depends upon the composition and organization of the extracellular matrix , 1988, The Journal of cell biology.
[11] R L Kormos,et al. Hemodynamics and the vascular endothelial cytoskeleton , 1987, The Journal of cell biology.
[12] W. Young,et al. Extracellular matrix modulation of endothelial cell shape and motility following injury in vitro. , 1985, Journal of cell science.
[13] A. Chobanian,et al. Fibronectin biosynthesis in the rat aorta in vitro. Changes due to experimental hypertension. , 1991, The Journal of clinical investigation.
[14] D. Ingber,et al. Cellular tensegrity : defining new rules of biological design that govern the cytoskeleton , 2022 .
[15] A. Vaheri,et al. Fibronectin and the Pericellular Matrix , 1989 .
[16] J. Madri,et al. Endothelial Cell‐Extracellular Matrix Interactions a , 1985, Annals of the New York Academy of Sciences.
[17] L. Sauvage,et al. Endothelial adherence under shear stress is dependent upon microfilament reorganization , 1989, Journal of cellular physiology.
[18] O. Tokunaga,et al. Properties of endothelial cell and smooth muscle cell cultured in ambient pressure , 1987, In Vitro Cellular & Developmental Biology.
[19] S M Schwartz,et al. Developmental mechanisms underlying pathology of arteries. , 1990, Physiological reviews.
[20] R. Ross. The pathogenesis of atherosclerosis--an update. , 1986, The New England journal of medicine.
[21] R M Nerem,et al. Vascular endothelial cell proliferation in culture and the influence of flow. , 1990, Biomaterials.
[22] P. Howard,et al. Adhesion of endothelial cells to extracellular matrix proteins , 1983, Journal of cellular physiology.
[23] D E Ingber,et al. Fibronectin controls capillary endothelial cell growth by modulating cell shape. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[24] R M Nerem,et al. Correlation of Endothelial Cell Shape and Wall Shear Stress in a Stenosed Dog Aorta , 1986, Arteriosclerosis.
[25] C F Dewey,et al. Turbulent fluid shear stress induces vascular endothelial cell turnover in vitro. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[26] R M Nerem,et al. The elongation and orientation of cultured endothelial cells in response to shear stress. , 1985, Journal of biomechanical engineering.
[27] L V McIntire,et al. Fluid flow stimulates tissue plasminogen activator secretion by cultured human endothelial cells. , 1989, Science.
[28] W. Stehbens. Hemodynamics and atherosclerosis. , 1982, Biorheology.
[29] Richard O. Hynes,et al. Integrins: A family of cell surface receptors , 1987, Cell.
[30] C. Boyd,et al. Pressure-induced connective tissue synthesis in pulmonary artery segments is dependent on intact endothelium. , 1989, The Journal of clinical investigation.
[31] B. Sumpio,et al. Increased ambient pressure stimulates proliferation and morphologic changes in cultured endothelial cells , 1994, Journal of cellular physiology.
[32] R M Nerem,et al. Vascular endothelial morphology as an indicator of the pattern of blood flow. , 1981, Journal of biomechanical engineering.
[33] D E Ingber,et al. Mechanotransduction across the cell surface and through the cytoskeleton. , 1993, Science.
[34] M. Hori,et al. Reduction of endothelial microfilament bundles in the low-shear region of the canine aorta. Association with intimal plaque formation in hypercholesterolemia. , 1991, Arteriosclerosis and thrombosis : a journal of vascular biology.
[35] R M Nerem,et al. Influence of a laminar steady-state fluid-imposed wall shear stress on the binding, internalization, and degradation of low-density lipoproteins by cultured arterial endothelium. , 1987, Circulation.
[36] G. Nicolson,et al. Identification, localization, and role of fibronectin in cultured bovine endothelial cells. , 1978, Proceedings of the National Academy of Sciences of the United States of America.
[37] R M Nerem,et al. The role of fluid mechanics in atherogenesis. , 1980, Journal of biomechanical engineering.
[38] Wen‐Tien Chen,et al. Fibronectin-degrading proteases from the membranes of transformed cells , 1987, Cell.
[39] I. Herman,et al. Substratum-induced stress fiber assembly in vascular endothelial cells during spreading in vitro. , 1990, Journal of cell science.
[40] D. Ingber,et al. Mechanotransduction across the cell surface and through the cytoskeleton , 1993 .
[41] A. Gotlieb,et al. In vivo modulation of endothelial F-actin microfilaments by experimental alterations in shear stress. , 1989, Arteriosclerosis.
[42] J. Foidart,et al. The production and localization of laminin in cultured vascular and corneal endothelial cells , 1981, Journal of cellular physiology.
[43] T. O'donnell,et al. Pulsatile flow and atherosclerosis in the human carotid bifurcation: Positive correlation between plaque location and low and oscillating shear stress: Ku DN, Giddens DP, Zarins CK, et al. Arteriosclerosis 1985; 5: 293–302 , 1986 .
[44] C. Turner,et al. Focal adhesions: transmembrane junctions between the extracellular matrix and the cytoskeleton. , 1988, Annual review of cell biology.
[45] B. J. Winer. Statistical Principles in Experimental Design , 1992 .
[46] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[47] Y. Yazaki,et al. Hemodynamic shear stress stimulates endothelin production by cultured endothelial cells. , 1989, Biochemical and biophysical research communications.
[48] R. Franke,et al. Induction of human vascular endothelial stress fibres by fluid shear stress , 1984, Nature.
[49] E. Tsilibary,et al. Differential effects of laminin, intact type IV collagen, and specific domains of type IV collagen on endothelial cell adhesion and migration , 1988, The Journal of cell biology.
[50] Stuart K Williams,et al. Capillary endothelial cell cultures: phenotypic modulation by matrix components , 1983, The Journal of cell biology.
[51] C F Dewey,et al. The dynamic response of vascular endothelial cells to fluid shear stress. , 1981, Journal of biomechanical engineering.
[52] L. McIntire,et al. Response of cultured endothelial cells to steady flow. , 1984, Microvascular research.