|
|
||||||||
Investigative Ophthalmology & Visual Science, Vol 36, 2568-2576, Copyright © 1995 by Association for Research in Vision and Ophthalmology
ARTICLES AND REPORTS |
MA Watsky
Department of Physiology and Biophysics, University of Tennessee, Memphis 38163, USA.
PURPOSE. Several studies have indicated the anatomic and biochemical presence of gap junctions in corneal keratocytes. The current study was designed to demonstrate that these gap junctions are functional in rabbit and human corneal keratocytes. This study also examined dye coupling between keratocytes migrating into the wound region of freeze- wounded rabbit corneas. METHODS. Freeze wounds were created on anesthetized rabbit corneas using a liquid nitrogen-cooled brass probe. Freeze-wounded corneas were examined at several time periods from days 0 to 5 after wounding. Nonwounded rabbit corneas also were examined. Human corneal buttons were examined immediately after removal from patients who underwent keratoplasty. Gap junctional coupling was examined by microinjecting carboxyfluorescein from microelectrodes into the basal-most keratocytes and capturing dye spread images with a cooled charge coupled device camera. RESULTS. Significant dye spread was observed between cells in the unwounded areas of corneas at wound time 0 and between cells migrating into the wound areas as early as 24 hours after wounding. In control corneas, dye spread to as many as 50 cells from the source cell. Dye spread also was seen between keratocytes in human corneas with pseudophakic bullous keratopathy and keratoconus. CONCLUSIONS. Gap junctions observed in keratocytes from normal rabbit corneas are functional. Gap junctions also are present and functional in keratocytes within unwounded and wounded regions of freeze-injured corneas. In addition, functional gap junctions are present between keratocytes in human corneas. This study confirms the long-held contention that corneal keratocytes form a large intercommunicating network within the corneal stroma.
This article has been cited by other articles:
![]() |
J. T. Henriksson, A. M. McDermott, and J. P. G. Bergmanson Dimensions and Morphology of the Cornea in Three Strains of Mice Invest. Ophthalmol. Vis. Sci., August 1, 2009; 50(8): 3648 - 3654. [Abstract] [Full Text] [PDF] |
||||
![]() |
J.-A. Ko, R. Yanai, N. Morishige, T. Takezawa, and T. Nishida Upregulation of Connexin43 Expression in Corneal Fibroblasts by Corneal Epithelial Cells Invest. Ophthalmol. Vis. Sci., May 1, 2009; 50(5): 2054 - 2060. [Abstract] [Full Text] [PDF] |
||||
![]() |
Z.-Y. Zhang, R.-Y. Chu, X.-T. Zhou, J.-H. Dai, X.-H. Sun, M. R. Hoffman, and X.-R. Zhang Morphologic and Histopathologic Changes in the Rabbit Cornea Produced by Femtosecond Laser-Assisted Multilayer Intrastromal Ablation Invest. Ophthalmol. Vis. Sci., May 1, 2009; 50(5): 2147 - 2153. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Yoshida, S. Shimmura, J. Shimazaki, N. Shinozaki, and K. Tsubota Serum-Free Spheroid Culture of Mouse Corneal Keratocytes Invest. Ophthalmol. Vis. Sci., May 1, 2005; 46(5): 1653 - 1658. [Abstract] [Full Text] [PDF] |
||||
![]() |
J.-L. Hao, K. Suzuki, Y. Lu, S. Hirano, K. Fukuda, N. Kumagai, K. Kimura, and T. Nishida Inhibition of Gap Junction-Mediated Intercellular Communication by TNF-{alpha} in Cultured Human Corneal Fibroblasts Invest. Ophthalmol. Vis. Sci., April 1, 2005; 46(4): 1195 - 1200. [Abstract] [Full Text] [PDF] |
||||
![]() |
L. Taliana, M. Benezra, R. S. Greenberg, S. K. Masur, and A. M. Bernstein ZO-1: Lamellipodial Localization in a Corneal Fibroblast Wound Model Invest. Ophthalmol. Vis. Sci., January 1, 2005; 46(1): 96 - 103. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. Kallinikos and N. Efron On the Etiology of Keratocyte Loss during Contact Lens Wear Invest. Ophthalmol. Vis. Sci., September 1, 2004; 45(9): 3011 - 3020. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. L. Funderburgh, M. M. Mann, and M. L. Funderburgh Keratocyte Phenotype Mediates Proteoglycan Structure: A ROLE FOR FIBROBLASTS IN CORNEAL FIBROSIS J. Biol. Chem., November 14, 2003; 278(46): 45629 - 45637. [Abstract] [Full Text] [PDF] |
||||
![]() |
B. L. Berryhill, M. P. Beales, and J. R. Hassell Production of Prostaglandin D Synthase as a Keratan Sulfate Proteoglycan by Cultured Bovine Keratocytes Invest. Ophthalmol. Vis. Sci., May 1, 2001; 42(6): 1201 - 1207. [Abstract] [Full Text] |
||||
![]() |
M. Vesaluoma, J. PérezSantonja, W. M. Petroll, T. Linna, J. Alió, and T. Tervo Corneal Stromal Changes Induced by Myopic LASIK Invest. Ophthalmol. Vis. Sci., February 1, 2000; 41(2): 369 - 376. [Abstract] [Full Text] |
||||
![]() |
J. V. Jester, J. Huang, P. A. Barry-Lane, W. W-Y. Kao, W. M. Petroll, and H. D. Cavanagh Transforming Growth Factor{beta}-Mediated Corneal Myofibroblast Differentiation Requires Actin and Fibronectin Assembly Invest. Ophthalmol. Vis. Sci., August 1, 1999; 40(9): 1959 - 1967. [Abstract] [Full Text] [PDF] |
||||
![]() |
T. P. Richardson, V. Trinkaus-Randall, and M. A. Nugent Regulation of Basic Fibroblast Growth Factor Binding and Activity by Cell Density and Heparan Sulfate J. Biol. Chem., May 7, 1999; 274(19): 13534 - 13540. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. Jester, T Moller-Pedersen, J Huang, C. Sax, W. Kays, H. Cavangh, W. Petroll, and J Piatigorsky The cellular basis of corneal transparency: evidence for 'corneal crystallins' J. Cell Sci., January 3, 1999; 112(5): 613 - 622. [Abstract] [PDF] |
||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |