Glaucoma is a chronic blinding neurodegenerative disease characterized by the progressive loss of retinal ganglion cells and degeneration of the optic nerve. Although significant progress has been made in the field of the genetics of this disease, the majority of these studies have so far examined rarer forms of the disease that exhibit Mendelian inheritance patterns. The majority of glaucomas, however, are complex genetic diseases that have multiple interacting loci that affect an individual's susceptibility. One possible area of susceptibility is the genetically controlled cell death program that is executed by dying ganglion cells. We have used experimental genetics in mice to help identify potential susceptibility alleles that could affect this process. A screen of 15 inbred mouse lines for the amount of ganglion cell loss after optic nerve crush revealed 2 lines with varying resistance to this procedure. The resistant phenotype was found to be inherited as a dominant trait, and genome wide mapping has identified the responsible gene to be located within a 25 cM interval of chromosome 5 (Chr5.loc34-59). This locus has been named Retinal ganglion cell susceptible 1 (Rgcs1). We propose to extend these observations by continuing to fine map the Rgcs1 locus to narrow the region of interest. Fine mapping will begin using SNP analysis to refine the interval to a predicted 10 cM region, followed by the generation of Interval Specific Congenic Lines (ISCLs) to dissect the region into 1 cM overlapping intervals. In addition, we will use in silico mapping to help define candidate genes of interest in the interval as it becomes smaller. To date, we have used this approach to identify 7 potential candidates from among the 578 genes known to exist in this region. Candidate genes will be characterized by quantitative and qualitative analyses between the two parental inbred strains. During the course of generating ISCLs, we will also create a substrain of DBA/2J mice to examine the role that the Rgcs1 locus plays in susceptibility to glaucoma. Wild type DBA/2J mice carry the resistant allele. Interestingly, these mice also develop chronic inherited glaucoma, which may seem like a paradox, but could also be consistent with a true susceptibility allele. Our test of the role of Rgcs1 in glaucoma, will be to cross the susceptible Rgcs1 locus from BALB/cByJ animals onto the DBA/2J background to generate the substrain DBA/2J.BALBRgcs1. We expect these mice to develop elevated intraocular pressure, and by virtue of carrying a susceptible Rgcs1 allele, a more severe form of glaucoma. Lastly, as we acquire more information on the mouse Rgcs1 locus, we will begin to interrogate the syntenic region of the human genome by examining for SNP differences in key candidate genes using a data set of human glaucoma patients housed at the Center for Human Genetics at Duke University.

Public Health Relevance

This proposal describes studies designed to identify and characterize a gene located in a region of mouse chromosome 5 that affects retinal ganglion cell survival after optic nerve crush. We will also test the ability of this chromosomal region to affect ganglion cell survival in a mouse model of glaucoma, and then extend these observations to determine if the corresponding locus/gene affects glaucoma in humans. The significance of this work is that it will help elucidate some of the susceptibility alleles associated with the complex trait of glaucoma. Finding and characterizing these alleles will lead to better diagnosis and treatment regimes for individuals with glaucoma.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
1R01EY018869-01A1
Application #
7583643
Study Section
Anterior Eye Disease Study Section (AED)
Program Officer
Chin, Hemin R
Project Start
2009-02-01
Project End
2014-01-31
Budget Start
2009-02-01
Budget End
2010-01-31
Support Year
1
Fiscal Year
2009
Total Cost
$341,082
Indirect Cost
Name
University of Wisconsin Madison
Department
Ophthalmology
Type
Schools of Medicine
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
Nickells, Robert W; Pelzel, Heather R (2015) Tools and resources for analyzing gene expression changes in glaucomatous neurodegeneration. Exp Eye Res 141:99-110
Mac Nair, Caitlin E; Fernandes, Kimberly A; Schlamp, Cassandra L et al. (2014) Tumor necrosis factor alpha has an early protective effect on retinal ganglion cells after optic nerve crush. J Neuroinflammation 11:194
Dietz, Joel A; Maes, Margaret E; Huang, Shuang et al. (2014) Spink2 modulates apoptotic susceptibility and is a candidate gene in the Rgcs1 QTL that affects retinal ganglion cell death after optic nerve damage. PLoS One 9:e93564
Janssen, Katherine T; Mac Nair, Caitlin E; Dietz, Joel A et al. (2013) Nuclear atrophy of retinal ganglion cells precedes the bax-dependent stage of apoptosis. Invest Ophthalmol Vis Sci 54:1805-15
Schlamp, Cassandra L; Montgomery, Angela D; Mac Nair, Caitlin E et al. (2013) Evaluation of the percentage of ganglion cells in the ganglion cell layer of the rodent retina. Mol Vis 19:1387-96
Pelzel, Heather R; Schlamp, Cassandra L; Waclawski, Michael et al. (2012) Silencing of Fem1cR3 gene expression in the DBA/2J mouse precedes retinal ganglion cell death and is associated with histone deacetylase activity. Invest Ophthalmol Vis Sci 53:1428-35
Toops, Kimberly A; Berlinicke, Cynthia; Zack, Donald J et al. (2012) Hydrocortisone stimulates neurite outgrowth from mouse retinal explants by modulating macroglial activity. Invest Ophthalmol Vis Sci 53:2046-61