Understanding how elevated intraocular pressure (IOP) damages optic nerve fibers will lead to new glaucoma therapies designated specifically to protect optic nerve fibers. To study this relationship, chronically elevated IOP has been produced in rats; resulting in progressive, regional degeneration of ganglion cell axons, optic never head cupping, and deposition of extracellular matrix components with the lamina cribrosa-all characteristics of the human disease. Quantitative ultrastructural analysis of cross sections from these optic nerves show that the remaining axons lose their normal, round profiles. This loss of axonal shape (atrophy), observed in eyes with mild IOP elevation, develops more rapidly with higher pressure, and is more pronounced in regions and nerves with greater axonal degeneration. The appearance of atrophy in pressure-induced optic nerve damage suggests a new hypothesis: elevated IOP damages optic nerves by creating a progressive axonal atrophy that leads eventually to degeneration. Understanding the nature of this atrophy and its relationship to degeneration will be key to understanding the mechanism of glaucomas optics nerve damage. This proposal will begin determining how IOP produces axonal atrophy by showing that it is regionally associated with axonal degeneration over a range of IOPs. Morphometric analysis will determine whether this atrophy is due to diminished numbers of neurofilaments and/or microtubules to alterations in their arrangement, or both. Interpreting these findings will be aided by dynamic measurements of cytoskeletal mRNA and protein production and slow axonal transport, both of which affect axonal volume. Using this multifaceted experimental approach, this proposal will determine which of the major processes governing axon size are affected by IOP, and lead to more specific hypothesis concerning the mechanism of pressure-induced atrophy and axonal degeneration in glaucoma.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY010145-05
Application #
2838343
Study Section
Visual Sciences A Study Section (VISA)
Project Start
1993-04-01
Project End
2000-11-30
Budget Start
1998-12-01
Budget End
1999-11-30
Support Year
5
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Oregon Health and Science University
Department
Ophthalmology
Type
Schools of Medicine
DUNS #
009584210
City
Portland
State
OR
Country
United States
Zip Code
97239
Jiang, Xiaoyun; Johnson, Elaine; Cepurna, William et al. (2018) The effect of age on the response of retinal capillary filling to changes in intraocular pressure measured by optical coherence tomography angiography. Microvasc Res 115:12-19
Morrison, John C; Johnson, Elaine C; Cepurna, William O (2018) Hypertonic Saline Injection Model of Experimental Glaucoma in Rats. Methods Mol Biol 1695:11-21
Lozano, Diana C; Choi, Dongseok; Jayaram, Hari et al. (2018) Utilizing RNA-Seq to Identify Differentially Expressed Genes in Glaucoma Model Tissues, Such as the Rodent Optic Nerve Head. Methods Mol Biol 1695:299-310
Jayaram, Hari; Lozano, Diana C; Johnson, Elaine C et al. (2018) Investigation of MicroRNA Expression in Experimental Glaucoma. Methods Mol Biol 1695:287-297
Tehrani, Shandiz; Delf, R Katherine; Cepurna, William O et al. (2018) In Vivo Small Molecule Delivery to the Optic Nerve in a Rodent Model. Sci Rep 8:4453
Teotia, Pooja; Chopra, Divyan A; Dravid, Shashank Manohar et al. (2017) Generation of Functional Human Retinal Ganglion Cells with Target Specificity from Pluripotent Stem Cells by Chemically Defined Recapitulation of Developmental Mechanism. Stem Cells 35:572-585
Jayaram, Hari; Phillips, Jay I; Lozano, Diana C et al. (2017) Comparison of MicroRNA Expression in Aqueous Humor of Normal and Primary Open-Angle Glaucoma Patients Using PCR Arrays: A Pilot Study. Invest Ophthalmol Vis Sci 58:2884-2890
Tan, Ou; Liu, Liang; Zhang, Xinbo et al. (2016) Glaucoma Increases Retinal Surface Contour Variability as Measured by Optical Coherence Tomography. Invest Ophthalmol Vis Sci 57:OCT438-43
Tehrani, Shandiz; Davis, Lauren; Cepurna, William O et al. (2016) Astrocyte Structural and Molecular Response to Elevated Intraocular Pressure Occurs Rapidly and Precedes Axonal Tubulin Rearrangement within the Optic Nerve Head in a Rat Model. PLoS One 11:e0167364
Morrison, John C; Cepurna, William O; Tehrani, Shandiz et al. (2016) A Period of Controlled Elevation of IOP (CEI) Produces the Specific Gene Expression Responses and Focal Injury Pattern of Experimental Rat Glaucoma. Invest Ophthalmol Vis Sci 57:6700-6711

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