The characteristic feature of glaucoma is a progressive loss of retinal ganglion cells. Drugs that lower the intraocular pressure are the mainstay of pharmaceutical therapy of glaucoma, but they are not effective in all cases. New therapeutic approaches would therefore be welcome. Much evidence points to the optic nerve head as the point of initial insult to ganglion cell axons in glaucoma. In this anatomical location, a meshwork of astrocytes forms the direct cellular environment of the axons. Following an insult to the optic nerve, the astrocytes in the optic nerve head become reactive. We have studied the time course of astrocyte reactivity in the optic nerve head after nerve crush morphologically and on the level of gene expression. We also studied astrocyte morphology in the DBA/2J mouse line that develops glaucoma spontaneously. DBA/2J mice were crossed with a strain that expresses GFP in individual astrocytes, thus making the microscopic observation of reactive astrocytes easy. One of our findings was that, before any signs of ganglion cell degeneration become obvious in the retina, some astrocytes grow new, longitudinal processes into the retrolaminar axon bundles. We are now going to study the mechanisms that drive the growth of these processes and their function. We believe that astrocyte reactivity, at least in its early phase, is a beneficial response that aims to protect ganglion cells and their axons. A possible therapeutic approach to glaucoma would be to enhance the early astrocytic response. We therefore propose to study the regulatory mechanisms in the optic nerve that govern early astrocyte reactivity. We compared the genes that are differentially regulated in our own microarray screen (using optic nerve crush) with those that were reported in recent studies from other laboratories using DBA/2J mice or the episcleral vein injection model of ocular hypertension in rats. We identified signaling molecules and transcription factors that were up-regulated early in DBA/2J mice and after nerve crush and therefore appear to be involved in regulating astrocyte reactivity both in glaucoma and after traumatic injury. Most of these genes are also up-regulated in the episcleral vein injection model. Our candidates are the signaling molecules Bone Morphogenetic Proteins 1 and 2, Leukemia Inhibitory Factor), Secreted Phosphoprotein 1 (osteopontin), Lipocalin 2, and Transforming Growth Factor beta 1; and the transcription factors Tcf19, TGF?-Induced Factor Homeobox 1, Runt- Related Transcription factors 1 and 2, and E2f8. We will study their involvement in three models of glaucoma, and after optic nerve crush. For this purpose, we will make use of methodological advances during the first grant period, namely the efficient transfection of optic nerve head astrocytes by AAV2/9, the ability to analyze dissociated astrocytes with well-preserved morphology from the optic nerve head, and a mouse strain that expresses GFP in astrocytes in the manner of a ?live Golgi stain?.

Public Health Relevance

Astrocytes react to insults to the CNS, including glaucomatous optic nerve degeneration by becoming ?reactive?, a cellular response that entails profound changes in gene expression and cell morphology. Very little is known about the regulation of astrocyte reactivity by signaling molecules and transcription factors. Our goal is to study the regulation of astrocyte reactivity in the optic nerve head. The results of this study may help to make optic nerve head astrocytes a target of therapeutic intervention in glaucoma.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
2R01EY019703-06A1
Application #
9106452
Study Section
Diseases and Pathophysiology of the Visual System Study Section (DPVS)
Program Officer
Liberman, Ellen S
Project Start
2009-09-30
Project End
2020-02-29
Budget Start
2016-03-01
Budget End
2017-02-28
Support Year
6
Fiscal Year
2016
Total Cost
Indirect Cost
Name
Massachusetts Eye and Ear Infirmary
Department
Type
DUNS #
073825945
City
Boston
State
MA
Country
United States
Zip Code
Zhu, Ying; Pappas, Anthony C; Wang, Rui et al. (2018) Ultrastructural Morphology of the Optic Nerve Head in Aged and Glaucomatous Mice. Invest Ophthalmol Vis Sci 59:3984-3996
Sun, Daniel; Moore, Sara; Jakobs, Tatjana C (2017) Optic nerve astrocyte reactivity protects function in experimental glaucoma and other nerve injuries. J Exp Med 214:1411-1430
Wang, Rui; Seifert, Philip; Jakobs, Tatjana C (2017) Astrocytes in the Optic Nerve Head of Glaucomatous Mice Display a Characteristic Reactive Phenotype. Invest Ophthalmol Vis Sci 58:924-932
Gao, Shan; Jakobs, Tatjana C (2016) Mice Homozygous for a Deletion in the Glaucoma Susceptibility Locus INK4 Show Increased Vulnerability of Retinal Ganglion Cells to Elevated Intraocular Pressure. Am J Pathol 186:985-1005
Choi, Hee Joo; Sun, Daniel; Jakobs, Tatjana C (2015) Astrocytes in the optic nerve head express putative mechanosensitive channels. Mol Vis 21:749-66
Berry, Ryan H; Qu, Juan; John, Simon W M et al. (2015) Synapse Loss and Dendrite Remodeling in a Mouse Model of Glaucoma. PLoS One 10:e0144341
Choi, Hee Joo; Sun, Daniel; Jakobs, Tatjana C (2015) Isolation of intact astrocytes from the optic nerve head of adult mice. Exp Eye Res 137:103-10
Sun, Daniel; Qu, Juan; Jakobs, Tatjana C (2013) Reversible reactivity by optic nerve astrocytes. Glia 61:1218-35
Lye-Barthel, Ming; Sun, Daniel; Jakobs, Tatjana C (2013) Morphology of astrocytes in a glaucomatous optic nerve. Invest Ophthalmol Vis Sci 54:909-17
Qu, Juan; Jakobs, Tatjana C (2013) The Time Course of Gene Expression during Reactive Gliosis in the Optic Nerve. PLoS One 8:e67094

Showing the most recent 10 out of 13 publications