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Original Article

Movement of carboxyfluorescein across the isolated rabbit irisciliary body

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Pages 251-255 | Received 05 Mar 1993, Accepted 03 Feb 1994, Published online: 02 Jul 2009

References

  • Araie M, Maurice D. The rate of diffusion of fluorophores through the corneal epithelium and stroma. Exp. Eye Res. 1987; 44: 73–87
  • Grimes P. A., Stone R. A., Laties A. M., Li W. Carboxyfluorescein: A probe of the blood-ocular barriers with lower membrane permeability than fluorescein. Arch. Ophthalmol. 1982; 100: 635–639
  • Grimes P. A. Carboxyfluorescein transfer across the blood-retinal barrier evaluated by quantitative fluorescence microscopy: Comparison with fluorescein. Exp. Eye Res. 1988; 46: 769–783
  • Araie M., Sawa M., Nagataki S., Mishima S. Aqueous humor dynamics in man as studied by oral fluorescein. Jpn. J. Ophthalmol. 1980; 24: 346–362
  • Blair N. P., Evans M. A., Lesar T. S., Zeimer R. C. Fluorescein and fluorescein glucuronide pharmacokinetics after intravenous injection. Invest. Ophthalmol. Vis. Sci. 1986; 27: 1107–1114
  • Grotte D., Mattox V., Brubaker R. Fluorescent, physiological and pharmacokinetic properties of fluorescein glucuronide. Exp. Eye Res. 1985; 40: 23–33
  • Araie M., Maurice D. The loss of fluorescein, fluorescein glucuronide and fluorescein isothicyanate dextran from the vitreous by the anterior and retinal pathways. Exp. Eye Res. 1991; 52: 27–39
  • Eguchi S., Araie M., Takase M. Movement of fluorescein and fluorescein glucuronide across the isolated rabbit iris-ciliary body. Jpn. J. Ophthalmol. 1987; 31: 440–454
  • Koyano S., Araie M., Eguchi S. Movement of fluorescein and its glucuronide across retinal pigment epithelium-choroid. Invest. Ophthalmol. Vis. Sci. 1993; 34: 531–538
  • Seto C., Araie M., Takase M. Study of fluorescein glucuronide. II. A comparative ocular kinetic study of fluorescein and fluorescein glucuronide. Graefe's Arch. Clin. Exp. Ophthalmol. 1986; 224: 113–117
  • Larsen M., Dalgaard P., Lund-Andersen H. Differential spectrofluorometry in the human vitreous: Blood-retinal barrier permeability to fluorescein and fluorescein glucuronide. Graefe's Arch. Clin. Exp. Ophthalmol. 1991; 229: 350–357
  • Grimes P. A. Carboxyfluorescein destribution in ocular tissues nomal and diabetic rats. Curr. Eye Res. 1988; 7: 980–988
  • Neault T., McLaren J., Brubaker R. Spectral shift of fluorescein and Carboxyfluorescein in the anterior chamber of the rabbit eye following systemic administration. Curr. Eye Res. 1986; 5: 337–341
  • Cunha-Vaz J. G., Maurice D. The active transport of fluorescein by the retinal vessels and the retina. J. Physiol. 1967; 191: 467–486
  • Stone R. A., Wilson C. M. Fluorescein transport in the anterior uvea. Invest. Ophthalmol. Vis. Sci. 1982; 22: 303–309
  • Tsuboi S., Pederson J. E. Permeability of the isolated dog retinal pigment epithelium to Carboxyfluorescein. Invest. Ophthalmol. Vis. Sci. 1986; 27: 1767–1770
  • Ussing H. H., Zerahn K. Active transport of sodium as the source of electric current in the short-circuited isolated frog skin. Acta Physiol. Scand. 1951; 23: 110–127
  • Kondo M., Araie M. Timolol movement across isolated iris-ciliary body of albino rabbit. Jpn. J. Ophthalmol. 1992; 36: 1–9
  • Cole D. F. Aqueous humour formation. Doc. Ophthalmol. 1966; 21: 116–238
  • Lineweaver H., Burke D. The determination of enzyme dissociation constants. J. Am. Chem. Soc. 1934; 56: 658–666
  • Guyton A. C. Human Physiology and Mechanisms of Disease 5th ed. W.B. Saunders Company, PhiladelphiaUSA 1992; 20
  • Barany E. H. Inhibition by hippurate and probenecid of in vitro uptake of iodipamide and o-iodohippurate. A composite uptake system for iodipamide in choroid plexus, kidney cortex and anterior uvea of several species. Acta Physiol. Scand. 1972; 86: 12–27
  • Barany E. H. The liver-like anion transport system in rabbit kidney, uvea and choroid plexus. I. Slectivity of some inhibitors, direction of transport, possible physiological substrates. Acta Physiol Scand. 1973; 88: 412–429
  • Barany E. H. In vitro uptake of bile acids by choroid plexus, kidney cortex and anterior uvea. I. the iodipamid sensitive transport systems in the rabbit. Acta Physiol Scand. 1975; 93: 250–268
  • Chu T., Candia A. Active transport of ascorbate across the isolated rabbit ciliary epithelium. Invest. Ophthalmol. Vis. Sci. 1988; 29: 594–599

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