Lung endothelial heparan sulfates mediate cationic peptide-induced barrier dysfunction: a new role for the glycocalyx.
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J. Garcia | R. Sasisekharan | Joe G. N. Garcia | David Berry | R. Dull | D. Humphries | Ramani Dinavahi | Larry Schwartz
[1] S. Shinjo,et al. New insights on the specificity of heparin and heparan sulfate lyases from Flavobacterium heparinum revealed by the use of synthetic derivatives of K5 polysaccharide from E. coli. and 2-O-desulfated heparin , 1999, Glycoconjugate Journal.
[2] Z. Shriver,et al. Heparan sulphate glycosaminoglycans derived from endothelial cells and smooth muscle cells differentially modulate fibroblast growth factor-2 biological activity through fibroblast growth factor receptor-1. , 2003, The Biochemical journal.
[3] F. Liu,et al. Critical involvement of p38 MAP kinase in pertussis toxin‐induced cytoskeletal reorganization and lung permeability , 2002, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[4] Michael Simons,et al. Fibroblast growth factor–specific modulation of cellular response by syndecan-4 , 2002, The Journal of cell biology.
[5] R. Linhardt,et al. Heparin-protein interactions. , 2002, Angewandte Chemie.
[6] L. Iversen,et al. Heparin-binding protein (HBP/CAP37): A missing link in neutrophil-evoked alteration of vascular permeability , 2001, Nature Medicine.
[7] S. Dudek,et al. Cytoskeletal regulation of pulmonary vascular permeability. , 2001, Journal of applied physiology.
[8] A. Verin,et al. Microtubule disassembly increases endothelial cell barrier dysfunction: role of MLC phosphorylation. , 2001, American journal of physiology. Lung cellular and molecular physiology.
[9] R. Wadgaonkar,et al. Role of p38 MAP kinase in diperoxovanadate-induced phospholipase D activation in endothelial cells. , 2001, American journal of physiology. Lung cellular and molecular physiology.
[10] K. Ley. Pathways and bottlenecks in the web of inflammatory adhesion molecules and chemoattractants , 2001, Immunologic research.
[11] Z. Shriver,et al. Direct isolation and sequencing of specific protein-binding glycosaminoglycans , 2001, Nature Medicine.
[12] M. Menger,et al. Role of Microcirculation in Transplantation , 2000, Microcirculation.
[13] R. Fässler,et al. The Cysteine-Rich Domain of Human Adam 12 Supports Cell Adhesion through Syndecans and Triggers Signaling Events That Lead to β1 Integrin–Dependent Cell Spreading , 2000, The Journal of cell biology.
[14] T. W. Secomb,et al. The endothelial surface layer , 2000, Pflügers Archiv.
[15] C. Lush,et al. Microvascular Dysfunction in Sepsis , 2000, Microcirculation.
[16] H. Lehr,et al. Microcirculatory dysfunction in sepsis: a pathogenetic basis for therapy? , 2000, The Journal of pathology.
[17] S. Weinbaum,et al. A new view of Starling's hypothesis at the microstructural level. , 1999, Microvascular research.
[18] A. Woods,et al. Syndecan-4 and integrins: combinatorial signaling in cell adhesion. , 1999, Journal of cell science.
[19] C. N. Rao,et al. Matrix localization of tissue factor pathway inhibitor-2/matrix-associated serine protease inhibitor (TFPI-2/MSPI) involves arginine-mediated ionic interactions with heparin and dermatan sulfate: heparin accelerates the activity of TFPI-2/MSPI toward plasmin. , 1999, Archives of biochemistry and biophysics.
[20] V. Linde,et al. Heparin-binding protein targeted to mitochondrial compartments protects endothelial cells from apoptosis. , 1999, The Journal of clinical investigation.
[21] P. Zimmermann,et al. The syndecans, tuners of transmembrane signaling , 1999, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[22] R. Hynes,et al. Syndecan-4 signals cooperatively with integrins in a Rho-dependent manner in the assembly of focal adhesions and actin stress fibers. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[23] M. J. Stanley,et al. Multiple Heparan Sulfate Chains Are Required for Optimal Syndecan-1 Function* , 1998, The Journal of Biological Chemistry.
[24] A. Verin,et al. Mechanisms of ionomycin-induced endothelial cell barrier dysfunction. , 1997, The American journal of physiology.
[25] V. Natarajan,et al. Activation of endothelial cell phospholipase D by polycations. , 1997, The American journal of physiology.
[26] P J Gallagher,et al. Myosin light chain kinase in endothelium: molecular cloning and regulation. , 1997, American journal of respiratory cell and molecular biology.
[27] P. Ehrlich. Granules of the Human Neutrophilic Polymorphonuclear Leukocyte , 1997 .
[28] G. Martet,et al. Effect of polycations on barrier and transport properties of alveolar epithelium in situ. , 1995, The American journal of physiology.
[29] H. Davis,et al. Regulation of endothelial cell gap formation and barrier dysfunction: Role of myosin light chain phosphorylation , 1995, Journal of cellular physiology.
[30] H. Davis,et al. Mechanisms of pertussis toxin-induced barrier dysfunction in bovine pulmonary artery endothelial cell monolayers. , 1995, The American journal of physiology.
[31] A. Lander,et al. Fine structure of heparan sulfate regulates syndecan-1 function and cell behavior. , 1994, The Journal of biological chemistry.
[32] Ivar Giaever,et al. A morphological biosensor for mammalian cells , 1993, Nature.
[33] J Pohl,et al. Synthetic bactericidal peptide based on CAP37: a 37-kDa human neutrophil granule-associated cationic antimicrobial protein chemotactic for monocytes. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[34] B. McCandless,et al. Pulmonary edema induced by phagocytosing neutrophils. Protective effect of monoclonal antibody against phagocyte CD18 integrin. , 1990, Circulation research.
[35] W. Shafer,et al. CAP37, a human neutrophil-derived chemotactic factor with monocyte specific activity. , 1990, The Journal of clinical investigation.
[36] J. Cooper,et al. Role of albumin arginyl sites in albumin‐induced reduction of endothelial hydraulic conductivity , 1989, Journal of cellular physiology.
[37] L. Needham,et al. Endothelial functional responses and increased vascular permeability induced by polycations. , 1988, Laboratory investigation; a journal of technical methods and pathology.
[38] J. Silbert,et al. Chlorate: a reversible inhibitor of proteoglycan sulfation. , 1988, Biochemical and biophysical research communications.
[39] L. Lindbom,et al. A monoclonal antibody to the membrane glycoprotein complex CD18 inhibits polymorphonuclear leukocyte accumulation and plasma leakage in vivo. , 1987, Blood.
[40] B. Fanburg,et al. Effects of hypoxia and hyperoxia on proteoglycan production by bovine pulmonary artery endothelial cells , 1986, Journal of cellular physiology.
[41] M. R. Turner,et al. The effects of native and modified bovine serum albumin on the permeability of frog mesenteric capillaries. , 1985, The Journal of physiology.
[42] F. Curry,et al. A fiber matrix model of capillary permeability. , 1980, Microvascular research.
[43] A. Mehta,et al. Comparison of mesna with forced diuresis to prevent cyclophosphamide induced haemorrhagic cystitis in marrow transplantation: a prospective randomised study. , 1984, British Journal of Cancer.