Structural determinants of glomerular permeability.
暂无分享,去创建一个
W. Deen | B. Myers | W M Deen | M. Lazzara | M J Lazzara | B D Myers
[1] D. Blankschtein,et al. Effects of Multisolute Steric Interactions on Membrane Partition Coefficients. , 2000, Journal of colloid and interface science.
[2] William M. Deen,et al. Hydrodynamic theory for the hindered transport of flexible macromolecules in porous membranes , 1988 .
[3] S. Cochrane,et al. The permselectivity of glomerular basement membrane can be compromised by glycation or by exposure to low levels of hypochlorite. , 1997, Biochimica et Biophysica Acta.
[4] W. Webber,et al. The permeability of the immature glomerulus to large molecules. , 1970, Laboratory investigation; a journal of technical methods and pathology.
[5] B. Haraldsson,et al. A gel-membrane model of glomerular charge and size selectivity in series. , 2001, American journal of physiology. Renal physiology.
[6] S. Furuta,et al. Three-dimensional study of glomerular slit diaphragm by the quick-freezing and deep-etching replica method. , 1990, European journal of cell biology.
[7] A. G. Ogston,et al. The spaces in a uniform random suspension of fibres , 1958 .
[8] W. Comper,et al. Desulphation of dextran sulphate during kidney ultrafiltration. , 1994, Biochemical Journal.
[9] P. Huie,et al. Nature of glomerular dysfunction in pre-eclampsia. , 1998, Kidney international.
[10] G. Mayor,et al. Hepatitis B surface antigen in urine of hemodialysis patients. , 1978, Kidney international.
[11] D. Klinzman,et al. Macromolecular sieving by glomerular basement membrane in vitro: effect of polycation or biochemical modifications. , 1991, Microvascular Research.
[12] G. Robinson,et al. Glomerular basement membrane as a compressible ultrafilter. , 1989, Microvascular research.
[13] R. Hegele,et al. Tridimensional ultrastructure of glomerular capillary endothelium revealed by high-resolution scanning electron microscopy. , 1989, Microvascular research.
[14] W. Deen,et al. Hindered transport of macromolecules in isolated glomeruli. II. Convection and pressure effects in basement membrane. , 1997, Biophysical journal.
[15] J. Charkoudian,et al. Transport of proteins through gel-filled porous membranes , 1997 .
[16] T. Meyer,et al. Effects of angiotensin II receptor blockade on remnant glomerular permselectivity. , 1993, Kidney international.
[17] R K Jain,et al. Diffusion and partitioning of proteins in charged agarose gels. , 1995, Biophysical journal.
[18] W. Deen,et al. Molecular configuration and glomerular size selectivity in healthy and nephrotic humans. , 1997, The American journal of physiology.
[19] D. Kerjaschki,et al. Nephrin localizes at the podocyte filtration slit area and is characteristically spliced in the human kidney. , 1999, The American journal of pathology.
[20] David S. Clague,et al. A numerical calculation of the hydraulic permeability of three-dimensional disordered fibrous media , 1997 .
[21] B. Haraldsson,et al. Glomerular size and charge selectivity in the rat as revealed by FITC-ficoll and albumin. , 2000, American journal of physiology. Renal physiology.
[22] T. Meyer,et al. Glomerular permeability barrier in the rat. Functional assessment by in vitro methods. , 1993, The Journal of clinical investigation.
[23] W. Deen,et al. Limitations in the application of fiber-matrix models to glomerular basement membrane , 2002 .
[24] A. B. Maunsbach,et al. Absorption of I125-labeled homologous albumin by rat kidney proximal tubule cells. A study of microperfused single proximal tubules by electron microscopic autoradiography and histochemistry. 1966. , 1966, Journal of the American Society of Nephrology : JASN.
[25] F. Plum. Handbook of Physiology. , 1960 .
[26] J. D. Wells,et al. On the transport of compact particles through solutions of chain-polymers , 1973, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[27] B. Haraldsson,et al. Glomerular charge selectivity for horseradish peroxidase and albumin at low and normal ionic strengths. , 1998, Acta physiologica Scandinavica.
[28] T. Meyer,et al. Glomerular hypertrophy aggravates epithelial cell injury in nephrotic rats. , 1990, The Journal of clinical investigation.
[29] M. Karnovsky,et al. Distribution of endogenous albumin in the rat glomerulus: role of hemodynamic factors in glomerular barrier function. , 1976, Kidney international.
[30] S. Cochrane,et al. In vitro glycation of glomerular basement membrane alters its permeability: a possible mechanism in diabetic complications , 1995, FEBS letters.
[31] L. Pratt,et al. Glomerular processing of dextran sulfate during transcapillary transport. , 1996, Archives of biochemistry and biophysics.
[32] B. Brenner,et al. Permselectivity of the glomerular capillary wall. Facilitated filtration of circulating polycations. , 1978, The Journal of clinical investigation.
[33] P. Huie,et al. Nature of glomerular dysfunction in pre-eclampsia1 , 1998 .
[34] N. Perico,et al. Short- and long-term effect of angiotensin II receptor blockade in rats with experimental diabetes. , 1993, Journal of the American Society of Nephrology : JASN.
[35] W. Comper,et al. Anionic charge concentration of rat kidney glomeruli and glomerular basement membrane. , 1993, The Biochemical journal.
[36] B. Haraldsson,et al. Glomerular charge selectivity for proteins larger than serum albumin as revealed by lactate dehydrogenase isoforms. , 1998, Acta physiologica Scandinavica.
[37] J. Lamerdin,et al. Structure of the gene for congenital nephrotic syndrome of the finnish type (NPHS1) and characterization of mutations. , 1999, American journal of human genetics.
[38] J. Byrne,et al. Studies of the permeation properties of glomerular basement membrane: cross-linking renders glomerular basement membrane permeable to protein. , 1992, Biochimica et biophysica acta.
[39] W. Deen,et al. Hindered transport of macromolecules through a single row of cylinders: application to glomerular filtration. , 1995, Journal of Biomechanical Engineering.
[40] B. Haraldsson,et al. Glomerular permselectivity is dependent on adequate serum concentrations of orosomucoid. , 1992, Kidney international.
[41] C. P. Leblond,et al. Fine structure of the glomerular basement membrane and immunolocalization of five basement membrane components to the lamina densa (basal lamina) and its extensions in both glomeruli and tubules of the rat kidney. , 1984, The American journal of anatomy.
[42] Jeffrey A. White,et al. Equilibrium Partitioning of Flexible Macromolecules in Fibrous Membranes and Gels , 2000 .
[43] W. Deen,et al. Structural determinants of glomerular hydraulic permeability. , 1994, The American journal of physiology.
[44] B. Haraldsson,et al. Addition of purified orosomucoid preserves the glomerular permeability for albumin in isolated perfused rat kidneys. , 1993, Acta physiologica Scandinavica.
[45] W. Deen,et al. Effect of concentration on the rejection coefficients of rigid macromolecules in track-etch membranes , 1986 .
[46] F. Curry,et al. A fiber matrix model of capillary permeability. , 1980, Microvascular research.
[47] K. Tryggvason,et al. Nephrin is specifically located at the slit diaphragm of glomerular podocytes. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[48] W. Deen,et al. Hindered Convection of Ficoll and Proteins in Agarose Gels , 2002 .
[49] B. Kristal,et al. Structural basis for reduced glomerular filtration capacity in nephrotic humans. , 1994, The Journal of clinical investigation.
[50] 藤乗 嗣泰. Intrarenal handling of proteins in rats using fractional micropuncture technique , 1991 .
[51] S. M. Shea,et al. A stereological study of the glomerular filter in the rat. Morphometry of the slit diaphragm and basement membrane , 1975, The Journal of cell biology.
[52] K. Qvortrup,et al. Electron microscopic demonstrations of filamentous molecular sieve plugs in capillary fenestrae. , 1997, Microvascular research.
[53] B. Brenner,et al. Determination of glomerular size-selectivity in the normal rat with Ficoll. , 1992, Journal of the American Society of Nephrology : JASN.
[54] M. Karnovsky,et al. POROUS SUBSTRUCTURE OF THE GLOMERULAR SLIT DIAPHRAGM IN THE RAT AND MOUSE , 1974, The Journal of cell biology.
[55] J. Bray,et al. Influence of charge on filtration across renal basement membrane films in vitro. , 1984, Kidney international.
[56] J. L. Anderson,et al. Concentration effects on partitioning of dextrans and serum albumin in porous glass , 1982 .
[57] C R Robertson,et al. Permselectivity of the glomerular capillary wall: III. Restricted transport of polyanions. , 1975, Kidney international.
[58] J. L. Anderson,et al. Concentration dependence of the distribution coefficient for macromolecules in porous media , 1981 .
[59] W. Comper,et al. Model anionic polysaccharide matrices exhibit lower charge selectivity than is normally associated with kidney ultrafiltration. , 1990, Biophysical chemistry.
[60] H. Shigematsu,et al. Ultrastructure of glomerular basement membrane by quick-freeze and deep-etch methods. , 1991, Kidney international.
[61] L. Pratt,et al. Competition between polyanions in glomerular binding and renal clearance. , 1997, Archives of biochemistry and biophysics.
[62] W. Deen,et al. Stokes flow through a row of cylinders between parallel walls: model for the glomerular slit diaphragm. , 1994, Journal of biomechanical engineering.
[63] T. Osicka,et al. Glomerular capillary wall permeability to albumin and horseradish peroxidase , 1996 .
[64] M. Kretzler,et al. The glomerular slit diaphragm is a modified adherens junction. , 2000, Journal of the American Society of Nephrology : JASN.
[65] K. Al-Malah,et al. A Macroscopic Model for the Single-Component Protein Adsorption Isotherm , 1995 .
[66] W. Deen,et al. Charge selectivity of the glomerular filtration barrier in healthy and nephrotic humans. , 1993, The Journal of clinical investigation.
[67] G. Jerums,et al. Anomalous decrease in dextran sulfate clearance in the diabetic rat kidney. , 1998, American journal of physiology. Renal physiology.
[68] W. Deen,et al. Electrostatic Effects on the Equilibrium Partitioning of Spherical Colloids in Random Fibrous Media , 1996 .
[69] D. F. James,et al. The permeability of fibrous porous media , 1986 .
[70] B. Haraldsson,et al. Orosomucoid as one of the serum components contributing to normal capillary permselectivity in rat skeletal muscle. , 1987, Acta physiologica Scandinavica.
[71] Erin M. Johnson. Partitioning and diffusion of macromolecules in charged gels , 1995 .
[72] T. Osicka,et al. Glomerular charge selectivity for anionic and neutral horseradish peroxidase. , 1995, Kidney international.
[73] R. Dreizler,et al. Density-Functional Theory , 1990 .
[74] K. Tryggvason,et al. Unraveling the mechanisms of glomerular ultrafiltration: nephrin, a key component of the slit diaphragm. , 1999, Journal of the American Society of Nephrology : JASN.
[75] R K Jain,et al. Hindered diffusion in agarose gels: test of effective medium model. , 1996, Biophysical journal.
[76] T. Osicka,et al. Tubular inhibition destroys charge selectivity for anionic and neutral horseradish peroxidase. , 1998, Biochimica et biophysica acta.
[77] E. Glandt. Distribution equilibrium between a bulk phase and small pores , 1981 .
[78] B. S. Daniels,et al. Increased albumin permeability in vitro following alterations of glomerular charge is mediated by the cells of the filtration barrier. , 1994, The Journal of laboratory and clinical medicine.
[79] B. Brenner,et al. Permselectivity of the glomerular capillary wall to macromolecules. II. Experimental studies in rats using neutral dextran. , 1975, Biophysical journal.
[80] H. Rennke,et al. Glomerular filtration of proteins: clearance of anionic, neutral, and cationic horseradish peroxidase in the rat. , 1978, Kidney international.
[81] W. Deen,et al. Hindered transport of macromolecules in isolated glomeruli. I. Diffusion across intact and cell-free capillaries. , 1997, Biophysical journal.
[82] T. Meyer,et al. Podocyte loss and progressive glomerular injury in type II diabetes. , 1997, The Journal of clinical investigation.
[83] K. Lemley,et al. Mechanisms of progressive glomerular injury in membranous nephropathy. , 1998, Journal of the American Society of Nephrology : JASN.
[84] W. Deen,et al. Ultrastructural model for size selectivity in glomerular filtration. , 1999, American journal of physiology. Renal physiology.
[85] E. Glasgow,et al. Charge selectivity in kidney ultrafiltration. , 1995, Kidney international.
[86] E. Glandt,et al. Partitioning of spherical particles into fibrous matrices , 1990 .
[87] Ashutosh Kumar Singh,et al. Charge selectivity in kidney ultrafiltration is associated with glomerular uptake of transport probes. , 1991, The American journal of physiology.
[88] S. Furuta,et al. Morphometric study of glomerular slit diaphragms fixed by rapid-freezing and freeze-substitution. , 1991, Kidney international.
[89] D. Abrahamson. Structure and development of the glomerular capillary wall and basement membrane. , 1987, The American journal of physiology.
[90] Charles Tanford,et al. Physical Chemistry of Macromolecules , 1961 .
[91] W. Deen,et al. Effects of plasma proteins on sieving of tracer macromolecules in glomerular basement membrane. , 2001, American journal of physiology. Renal physiology.
[92] J. Rutledge,et al. Modulation of microvessel wall charge by plasma glycoprotein orosomucoid. , 1989, The American journal of physiology.
[93] W. Deen,et al. Hindered convection of proteins in agarose gels , 1999 .
[94] A. Cohen,et al. THE ROLE OF MUCOPOLYSACCHARIDES IN VESICLE ARCHITECTURE AND ENDOTHELIAL TRANSPORT , 1972, The Journal of cell biology.
[95] J. Anderson,et al. Mechanism of osmotic flow in porous membranes. , 1974, Biophysical journal.
[96] K. Vogel. Glycosaminoglycans and Proteoglycans , 1994 .
[97] T. Hostetter,et al. Glomerular basement membrane: in vitro studies of water and protein permeability. , 1992, The American journal of physiology.
[98] R. Phillips,et al. A hydrodynamic model for hindered diffusion of proteins and micelles in hydrogels. , 2000, Biophysical journal.
[99] B. Chavers,et al. Observations of glomerular epithelial cell structure in patients with type I diabetes mellitus. , 1987, Kidney international.
[100] B. D. Kandhai,et al. Hydraulic permeability of (un)bounded fibrous media using the lattice boltzmann method , 2000, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[101] A. Remuzzi,et al. Numerical analysis of viscous flow through fibrous media: a model for glomerular basement membrane permeability. , 1998, American journal of physiology. Renal physiology.
[102] W. Comper,et al. Uptake of dextran sulphate by glomerular intracellular vesicles during kidney ultrafiltration. , 1995, Kidney international.
[103] N. Simionescu,et al. Functions of the endothelial cell surface. , 1986, Annual review of physiology.
[104] W. Deen,et al. Assessment of the charge selectivity of glomerular basement membrane using Ficoll sulfate. , 1998, American journal of physiology. Renal physiology.
[105] W. Deen,et al. Theoretical model for glomerular filtration of charged solutes. , 1980, The American journal of physiology.
[106] H. Kondo. Rat kidney glomerular basement membrane visualized in situ by embedment-free sectioning and subsequent platinum-carbon replication. , 1990, Journal of electron microscopy technique.
[107] Gary Patterson,et al. Hindered diffusion of dextran and ficoll in microporous membranes , 1984 .
[108] M. Farquhar,et al. Anionic sites in the glomerular basement membrane. In vivo and in vitro localization to the laminae rarae by cationic probes , 1979, The Journal of cell biology.