This P30 proposal requests funding to support the operation of five resource modules within the Ophthalmology and Visual Sciences Research Center (OVSRC) at the Eye and Ear Institute of the University of Pittsburgh. The OVSRC provides a home base for the basic and clinical vision research of 17 vision scientists in 3 departments of the University of Pittsburgh and one department of Carnegie Mellon University, whose work is advancing the knowledge base on corneal, cataract, glaucoma, sensory, motor, retinal and other eye diseases. Of these, 11 are NEI-funded (holding 13 R01 grants, 2 RO3 grants, 1 contract, and 3 subcontracts), 3 investigators are funded through other NIH institutes, and the remaining investigators are funded through private funding agencies. The core grant modules primarily support the NEI-funded investigators, and new investigators who are conducting research that will lead ultimately to NEI support. The scientific disciplines of the OVSRC core grant participants include cell biology, cell signaling, virology, immunology, developmental biology, molecular genetics, neurobiology, electrophysiology, and ocular imaging. The core grant modules are designed to provide technologies that support these scientific disciplines, and include: 1) electronics and image acquisition and analysis, 2) gene expression and proteomics, 3) hybridoma and tissue culture, 4) molecular biology, and 5) morphology. All modules are centrally housed within the OVSRC on the 9th and 10th floors of the Eye and Ear Institute. In its 14th year, the Core Grant continues to enhance vision research in the Pittsburgh area by providing cutting edge technology, facilitating the incorporation of that technology into research projects, and facilitating collaboration among basic scientists and physician scientists.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Center Core Grants (P30)
Project #
5P30EY008098-18
Application #
7064247
Study Section
Special Emphasis Panel (ZEY1-VSN (03))
Program Officer
Chin, Hemin R
Project Start
1997-04-01
Project End
2009-03-31
Budget Start
2006-04-01
Budget End
2007-03-31
Support Year
18
Fiscal Year
2006
Total Cost
$583,210
Indirect Cost
Name
University of Pittsburgh
Department
Ophthalmology
Type
Schools of Medicine
DUNS #
004514360
City
Pittsburgh
State
PA
Country
United States
Zip Code
15213
Voorhees, Andrew P; Jan, Ning-Jiun; Hua, Yi et al. (2018) Peripapillary sclera architecture revisited: A tangential fiber model and its biomechanical implications. Acta Biomater 79:113-122
Snyder, Adam C; Yu, Byron M; Smith, Matthew A (2018) Distinct population codes for attention in the absence and presence of visual stimulation. Nat Commun 9:4382
Esfandiari, Hamed; Hassanpour, Kiana; Yaseri, Mehdi et al. (2018) Extended pharmacological miosis is superfluous after glaucoma angle surgery: A retrospective study. F1000Res 7:178
Wang, Bo; Lucy, Katie A; Schuman, Joel S et al. (2018) Tortuous Pore Path Through the Glaucomatous Lamina Cribrosa. Sci Rep 8:7281
Ren, Tanchen; Faust, Anne; van der Merwe, Yolandi et al. (2018) Fetal extracellular matrix nerve wraps locally improve peripheral nerve remodeling after complete transection and direct repair in rat. Sci Rep 8:4474
Stella, Nicholas A; Brothers, Kimberly M; Callaghan, Jake D et al. (2018) An IgaA/UmoB Family Protein from Serratia marcescens Regulates Motility, Capsular Polysaccharide Biosynthesis, and Secondary Metabolite Production. Appl Environ Microbiol 84:
D'Aiuto, Leonardo; McNulty, James; Hartline, Caroll et al. (2018) R430: A potent inhibitor of DNA and RNA viruses. Sci Rep 8:16662
Kramer, Phillip; Rao, Mahesh; Stinson, Crystal et al. (2018) Aromatase Derived Estradiol Within the Thalamus Modulates Pain Induced by Varicella Zoster Virus. Front Integr Neurosci 12:46
Jan, Ning-Jiun; Sigal, Ian A (2018) Collagen fiber recruitment: A microstructural basis for the nonlinear response of the posterior pole of the eye to increases in intraocular pressure. Acta Biomater 72:295-305
Yang, Bin; Jan, Ning-Jiun; Brazile, Bryn et al. (2018) Polarized light microscopy for 3-dimensional mapping of collagen fiber architecture in ocular tissues. J Biophotonics 11:e201700356

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