Cyclic GMP (cGMP) is the primary intracellular messenger for visual transduction in retinal rod and cone photoreceptors. While the enzymatic components of the cGMP pathway have been identified and characterized, the regulatory mechanisms responsible for determining the cytosolic cGMP concentration during photoreceptor stimulation are not well understood. One unusual feature of rod outer segments is the presence of high concentrations of cGMP binding proteins which sequester most of the intracellular cGMP and lower the cytosolic levels of this second messenger. The functional significance of these cGMP binding sites is currently not understood. The overall hypothesis to be tested is that cGMP binding proteins control the cGMP concentration in rod photoreceptors by allosterically regulating the metabolism of cGMP in addition to acting as a cytoplasmic buffer to reduce the free cGMP concentration in the cytosol.
The specific aims of the proposed research are: (1) To localize and identify the functional roles for high affinity and moderate affinity classes of cGMP binding sites which are present in rod outer segments; (2) To define the mechanisms, for the regulation of cGMP binding and metabolism that together control the free cytosolic concentration of cGMP during visual transduction in rod photoreceptor cells. Inherited defects in cGMP metabolism are known to result retinal degeneration and blindness. This study will provide insight into the normal mechanisms controlling cGMP metabolism and binding in rod photoreceptors so that new strategies may be developed to intervene with certain types of degenerative diseases of retinal photoreceptors.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY005798-08
Application #
2159594
Study Section
Visual Sciences C Study Section (VISC)
Project Start
1988-03-01
Project End
1999-04-30
Budget Start
1995-05-01
Budget End
1996-04-30
Support Year
8
Fiscal Year
1995
Total Cost
Indirect Cost
Name
University of New Hampshire
Department
Biochemistry
Type
Schools of Earth Sciences/Natur
DUNS #
111089470
City
Durham
State
NH
Country
United States
Zip Code
03824
Zeng-Elmore, Xiaohui; Gao, Xiong-Zhuo; Pellarin, Riccardo et al. (2014) Molecular architecture of photoreceptor phosphodiesterase elucidated by chemical cross-linking and integrative modeling. J Mol Biol 426:3713-3728
Zhang, Xiu-Jun; Gao, Xiong-Zhuo; Yao, Wei et al. (2012) Functional mapping of interacting regions of the photoreceptor phosphodiesterase (PDE6) ýý-subunit with PDE6 catalytic dimer, transducin, and regulator of G-protein signaling9-1 (RGS9-1). J Biol Chem 287:26312-20
Cahill, Karyn B; Quade, Jonathan H; Carleton, Karen L et al. (2012) Identification of amino acid residues responsible for the selectivity of tadalafil binding to two closely related phosphodiesterases, PDE5 and PDE6. J Biol Chem 287:41406-16
Matte, Suzanne L; Laue, Thomas M; Cote, Rick H (2012) Characterization of conformational changes and protein-protein interactions of rod photoreceptor phosphodiesterase (PDE6). J Biol Chem 287:20111-21
Cahill, Karyn B; Cote, Rick H (2011) Phosphodiesterase 6C, cGMP-specific cone alpha'. AFCS Nat Mol Pages 2011:
Gitschier, Hannah J; Cote, Rick H (2011) Phosphodiesterase 6D, cGMP-specific rod delta. AFCS Nat Mol Pages 2011:
Zhang, Xiu-Jun; Skiba, Nikolai P; Cote, Rick H (2010) Structural requirements of the photoreceptor phosphodiesterase gamma-subunit for inhibition of rod PDE6 holoenzyme and for its activation by transducin. J Biol Chem 285:4455-63
Liu, Yu-Ting; Matte, Suzanne L; Corbin, Jackie D et al. (2009) Probing the catalytic sites and activation mechanism of photoreceptor phosphodiesterase using radiolabeled phosphodiesterase inhibitors. J Biol Chem 284:31541-7
Zhang, Xiu-Jun; Cahill, Karyn B; Elfenbein, Arye et al. (2008) Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6. J Biol Chem 283:29699-705
Pentia, Dana C; Hosier, Suzanne; Cote, Rick H (2006) The glutamic acid-rich protein-2 (GARP2) is a high affinity rod photoreceptor phosphodiesterase (PDE6)-binding protein that modulates its catalytic properties. J Biol Chem 281:5500-5

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