7
Views
4
CrossRef citations to date
0
Altmetric
Original Article

The Eugene M. Landis Award Lecture 1993 Regulation of Water and Solute Exchange in Microvessel Endothelium: Studies in Single Perfused Capillaries

Pages 11-26 | Published online: 10 Jul 2009

References

  • Adamson R H, Michel C C. Pathways through the intercellular clefts of frog mesenteric capillaries. J Physiol (Land) 1993; 466: 303–327
  • Clough G. Relationship between microvascular permeability and ultrastructure. Prog Biophys Mol Biol 1991; 55(1)47–69
  • Crone C, Levitt. The exchange of small solutes through the capillary wall. Handbook of Physiology: Microcirculation, E M Rerikin, C C Michel. American Physiological Society, Washington, DC. 1984; Vol. IV: 411–466, Part 1
  • Curry F E, Mason J C, Michel C C. Osmotic reflection coefficients of capillary walls to low molecular weight hydrophilic solutes measured in single perfused capillaries of frog mesentery. J Physiol (Lond) 1976; 261: 319–336
  • Curry F E. Permeability coefficients of the capillary wall to low molecular weight hydrophilic solutes measured in single perfused capillaries of frog mesentery. Microvasc Res 1979; 17: 290–308
  • Curry F E, Michel C C. A fiber matrix model of capillary permeability. Microvasc Res 1980; 20: 96–99
  • Curry F E. Antipyrine and aminopyrine permeability of individually perfused frog capillaries. Am J Physiol (Heart Circ Physiol) 1981; 240: H597–H605
  • Curry F E, Huxley V H, Adamson R H. Permeability of single capillaries to intermediate sized colored solutes. Am J Physiol (Heart Circ Physiol) 1983; 245: H495–H505
  • Curry F E. Mechanics and thermodynamics of transcapillary exchange. Handbook of Physiology: Microcirculation, E M Renkin, C C Michel. American Physiological Society, Washington, DC. 1984; Vol. IV: 309–374, Part 1
  • Curry F E, Huxley V H, Sarelius I H. Techniques in micro-circulation: measurement of permeability, pressure and flow. Techniques in the Life Sciences, R J Linden. Elsevier, Amsterdam 1983; Vol. P3: 1–34
  • Curry F E, Frokjaer-Jensen J. Water flow across the walls of single muscle capillaries in the frog, Rana pipiens. J Physiol Lond 1984; 350: 293–307
  • Curry F E. The effect of albumin on the structure of the molecular filter at the capillary wall. Fed Proc 1985; 44: 2610–2613
  • Curry F E. Determinants of capillary permeability. A review of mechanisms based on single capillary studies in the frog. Invited review. Circ Res 1986; 59: 367–380
  • Curry F E, Michel C C, Phillips M E. The effect of albumin on the osmotic pressure exerted by myoglobin solutions across the walls of single capillaries in frog mesentery. J Physiol Lond 1987; 387: 69–82
  • Curry F E, Joyner W L. Modulation of capillary permeability methods and measurements in individually perfused mammalian and frog microves-sels. Endothelial Cells, U Ryan. CRC Press, Boca Raton, FL. 1988; Vol. 1: 3–17
  • Curry F E, Rutledge J C, Lenz J F. Modulation of microvessel wall charge by the plasma glycopro-tein orosomucoid. Am J Physiol 1989; 257: H1354–H1359
  • Curry F E, Joyner W L, Rutledge J C. Graded modulation of frog microvessel permeability to albumin using ionophore A23187. Am J Physiol 1990; 258: H587–H598
  • Curry F E. Modulation of venular microvessel permeability by calcium influx into endothelial cells. Invited review. FASEB J 1992; 6: 2456–2466
  • Dejana E. Endothelial cell adhesive receptors. J Cardiovasc Pharmacol 1993; 21: S18–S21
  • Easton A S, Fraser P A. Variable restriction of albumin diffusion across inflamed cerebral capillaries. J Physiol Lond 1994, in press
  • Fu B M, Tsay R Y, Curry F E, Weinbaum S. A junctional-orifice- fiber entrance layer model for capillary permeability: Application to frog mesenteric capillaries. J Biomed Eng 1994, (in press)
  • Gao X P, Mayhan W G, Conlon J M, Rennard S I, Rubinstein I. Mechanisms of T-kinin-induced increases in macromolecule extravasation in vivo. J Appl Physiol 1993; 74(6)2896–2903
  • Haraldsson B, Rippe B. Orosomucoid as one of the serum components contributing to normal permselectivity in rat skeletal muscle. Acta Physiol Scand 1987; 129: 127–135
  • Haselton F R, Mueller S N, Howell R E, Levine E M, Fishman A P. Chromatographic demonstration of reversible changes in endothelial permeability. J Appl Physiol 1989; 67: 2032–2048
  • He P, Pagakis S N, Curry F E. Measurement of cytoplasmic calcium in single microvessels with increased permeability. Am J Physiol (Heart Circ Physiol) 1990; 258: H1366–H1374
  • He P, Curry F E. Depolarization modulates endothelial cell calcium influx and microvessel permeability. Am J Physiol (Heart Circ Physiol) 1991; 261: H1246–H1254
  • He P, Curry F E. Albumin modulation of capillary permeability: the role of endothelial cell [Ca++]i. Am J Physiol (Heart Circ Physiol) 1993; 265: H74–H82
  • He P, Curry F E. Endothelial cell hyperpo-larization increases [Ca2+]i; and venular microvessel permeability. J Appl Physiol 1994; 4, (in press)
  • He P, Curry F E. Differential effects of cAMP on endothelial calcium and microvessel permeability. Am J Physiol 1993; 265: H1019–H1023
  • Huxley V H, Curry F E. Albumin modulation of capillary permeability: test of an adsorption hypothesis. Am J Physiol (Heart Circ Physiol) 1985; 248: H264–H273
  • Huxley V H, Curry F E. Quantitative fluorescence microscopy on single capillaries: α-lactalbumin transport. Am J Physiol (Heart Circ Physiol) 1987; 245: H495–505
  • Huxley V H, Curry F E. Differential actions of albumin and plasma on capillary solute permeability. Am J Physiol (Heart Circ Physiol) 1991; 260: H1366–H1374
  • Huxley V H, Curry F E, Powers M R, Thipakorn B. Differential action of plasma and albumin on transcapillary exchange of anionic solute. Am J Physiol (Heart Circ Physiol) 1993; 264: H1428–H1437
  • Kolodney M S, Wysolmerski R B. Isometric contraction by fibroblasts and endothelial cells in tissue culture: a quantitative study. J Cell Biol 1992; 117: 73–82
  • Landis E M. Capillary pressure in frog mesentery as determined by microinjection methods. Am J Physiol 1926; 75: 546–570
  • Landis E M. Microinjection studies of capillary permeability. II. The relation between capillary pressure and the rate at which fluid passes through the walls of single capillaries. Am J Physiol 1927; 82: 217–238
  • Landis E M, Pappenheimer J R. Exchange of substances through capillary walls. Handbook of Physiology, W F Hamilton, P Dow. American Physiological Society, Washington, DC. 1964; Vol. 2: 961–1034
  • Lee J S, Smaje L H, Zweifach B W. Fluid movement in occluded single capillaries of rabbit omentum. Circ Res 1971; 28: 358–370
  • Levick R J, Michel C C. The effect of bovine albumin on the permeability of frog mesenteric capillaries. Quart J Exp Physiol 1973; 58: 87–97
  • Mason J C, Curry F E, White I F, Michel C C. The ultrastructure of frog mesenteric capillaries of known filtration coefficient. Quart J Exp Physiol 1979; 64: 217–224
  • Mayhan W G. Role of nitric oxide in leukotriene C4-induced increases in microvascular transport. Am J Physiol (Heart Circ Physiol) 1993; 265: H409–H414
  • Matsuda T, Rubinstein I, Robbins R A, Koyama S, Joyner W L, Rennard S I. Role of neutro-phils in endotoxin-mediated microvascular injury in hamsters. J Appl Physiol 1991; 71: 307–313
  • Michel C C, Mason J C, Curry F E, Tooke J E. A development of the Landis technique for measuring the filtration coefficient of individual capillaries in the frog mesentery. Quart J Exp Physiol 1974; 59: 287–309
  • Michel C C. Fluid movements through capillary walls. Handbook of Physiology, E M Renkin, C C Michel. American Physiological Society, Bethesda, MD. 1984; Vol 4: 375–410, Part 1
  • Michel C C. Eugene M Landis 1901-1987. Int J Microcirc Clin Exp 1987; 6: 303–307
  • Pagakis S N, Lenz J C, Curry F E. Application of image restoration and three dimensional visualization techniques to frog microvessels in-situ loaded with fluorescent indicators. SPIE Proc 1993, 1905
  • Pappenheimer J R. Osmotic reflection coefficients in capillary membranes. Capillary Permeability, C Crone, N A Lassen. Munksgaard, Copenhagen 1970; 278–286
  • Predescu D, Palade G E. Plasmalemmal vesicles represent the large pore system of continuous microvascular endothelium. Am J Physiol (Heart Circ Physiol) 1993; 265: H725–H733
  • Renkin E M, Pappenheimer J R, Borrero L M. Filtration, diffusion and molecular sieving through peripheral capillary membranes. Am J Physiol 1951; 152: 471–491
  • Renkin E M. Cellular and intercellular transport pathways in exchange vessels. Am Rev Respir Dis 1992; 146: S28–S31
  • Renkin E M, Joyner W L, Gustafson-Sgro M, Plopper G, Sibley L. Albumin extravasation rates in tissues of anesthetized and unanesthetized rats. J Appl Physiol 1989; 66: 2056–2060
  • Renkin E M, Curry F E. Transport of water and solutes across capillary endothelium. Membrane Transport in Biology, D C Tosteson, G Giebisch, H H Ussing. Springer-Verlag, New York 1978; Vol. 4A: 1–145
  • Renkin E M, Curry F E. Capillary permeability: Pathways and modulations. Ann NY Acad Sci 1982; 401: 248–259
  • Rutledge J C, Curry F E, Lenz J F, Davis P. Low density lipoprotein transport across a microvascular barrier after permeability is increased. Circ Res 1990; 66(2)486–495
  • Schaeffer R C, Jr., Gong F, Bitrick M S, Jr. Restricted diffusion of macromolecules by endothelial monolayers and small-pore filters. Am J Physiol 1992; 263: L27–L36
  • Schnitzer J E, Ulman J B, Palade G E. Common peptide epitopes in glycophorin and the endothelial glycopeptide gp 60. Biochem Biophys Res Commun 1992; 187: 1158–1165
  • Schneeberger E E, Hamelin M. Interactions of serum proteins with lung endothelial glycocalyx: Its effect on capillary permeability. Am J Physiol (Heart Circ Physiol) 1984; 247: H206–H217
  • Schneeberger E E, Lynch R D, Neary B A. Interaction of native and chemically modified albumin with pulmonary microvascular endothelium. Am J Physiol 1990; 258: L89–L98
  • Simionescu M, Simionescu N. Ultrastructure of the microvascular wall: functional correlations. Handbook of Physiology: Microcirculation, E M Renkin, C C Michel. American Physiological Society, Washington, DC. 1984; Vol. IV: 41–101, Part 1
  • Tasker J. Aspects of capillary permeability. D. Phil, thesis, Oxford University. 1977
  • Weinbaum S, Tsay R, Curry F E. A three dimensional junction-pore-matrix model of capillary permeability. Microvas Res 1992; 44: 85–111
  • Wu N Z, Baldwin A L. Possible mechanism(s) for permeability recovery of venules during histamine application. Microvasc Res 1992; 44(3)334–352
  • Yuan Y, Chilian W M, Granger H J, Zawieja D C. Permeability to albumin in isolated coronary venules. Am J Physiol (Heart Circ Physiol) 1993; 265: H543–H552
  • Zhang R-S, Huxley V H. Control of capillary hydraulic conductivity via membrane potential-dependent changes in Ca2+ influx. Am J Physiol (Heart Circ Physiol) 1992; 262: H144–H148
  • Zweifach B W, Intaglietta M. Mechanics of fluid movement across single capillaries in rabbit. Microvasc Res 1968; 1: 83–101

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.