We propose to investigate the molecular function and regulation of a key molecule in visual transduction, the cyclic-GMP-activated channel of retinal rods. This channel generates the electrical response to light. cGMP keeps channels open in darkness; light closes channels by activating an enzyme cascade that lowers the concentration of cGMP. Some of the channel's basic functions have been described, but the detailed mechanisms that underlie its behavior and whether it is regulated by cellular agents other than cGMP are largely unknown. Using a combination of electrophysiological and biochemical methods, we will approach the following questions: 1. What is the chemical nature of the cGMP binding sites on the channel? How far apart are the binding sites? How does the binding of multiple-cGMP's to a single channel unit cause it to open? 2. How do open states of different conductance arise, and what is their functional significance? What are the opening and closing kinetics of each state, and how do these rates depend on voltage? How do the different open states interact with divalent cations? 3. Is the number of channels capable of responding to cGMP actively regulated by covalent modification or tightly bound factors? Are the affinity of the channel binding sites for cGMP and the affinity of the pore for divalent cations also regulated? If modifications occur, what signals trigger them, how do they affect the overall response properties of the rod, and what are the molecular mechanisms? Answers to these questions will provide additional insight into how retinal rods transduce light into a neural signal, and how this type of channel may operate in other cells that use a similar molecular strategy. The experiments should also lead to a greater understanding of visual defects that occur in retinal disease.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY009275-05
Application #
2162879
Study Section
Visual Sciences A Study Section (VISA)
Project Start
1991-08-01
Project End
1996-07-31
Budget Start
1995-08-01
Budget End
1996-07-31
Support Year
5
Fiscal Year
1995
Total Cost
Indirect Cost
Name
University of Colorado Denver
Department
Physiology
Type
Schools of Medicine
DUNS #
065391526
City
Aurora
State
CO
Country
United States
Zip Code
80045
Kirk, Sarah R; Andrade, Adriana L; Melich, Kenneth et al. (2011) Halogen substituents on the aromatic moiety of the tetracaine scaffold improve potency of cyclic nucleotide-gated channel block. Bioorg Med Chem Lett 21:6417-9
Andrade, Adriana L; Melich, Kenneth; Whatley, G Gregory et al. (2011) Cyclic nucleotide-gated channel block by hydrolysis-resistant tetracaine derivatives. J Med Chem 54:4904-12
Strassmaier, Timothy; Kirk, Sarah R; Banerji, Tapasree et al. (2008) Block of cyclic nucleotide-gated channels by tetracaine derivatives: role of apolar interactions at two distinct locations. Bioorg Med Chem Lett 18:645-9
Strassmaier, Timothy; Karpen, Jeffrey W (2007) Novel N7- and N1-substituted cGMP derivatives are potent activators of cyclic nucleotide-gated channels. J Med Chem 50:4186-94
Rich, Thomas C; Xin, Wenkuan; Mehats, Celine et al. (2007) Cellular mechanisms underlying prostaglandin-induced transient cAMP signals near the plasma membrane of HEK-293 cells. Am J Physiol Cell Physiol 292:C319-31
Brady, James D; Rich, Elizabeth D; Martens, Jeffrey R et al. (2006) Interplay between PIP3 and calmodulin regulation of olfactory cyclic nucleotide-gated channels. Proc Natl Acad Sci U S A 103:15635-40
Karpen, Jeffrey W; Rich, Thomas C (2004) Resolution of cAMP signals in three-dimensional microdomains using novel, real-time sensors. Proc West Pharmacol Soc 47:1-5
Ghatpande, Ambarish S; Uma, Ramalinga; Karpen, Jeffrey W (2003) A multiply charged tetracaine derivative blocks cyclic nucleotide-gated channels at subnanomolar concentrations. Biochemistry 42:265-70
Rich, Thomas C; Karpen, Jeffrey W (2002) Review article: cyclic AMP sensors in living cells: what signals can they actually measure? Ann Biomed Eng 30:1088-99
Rich, T C; Fagan, K A; Tse, T E et al. (2001) A uniform extracellular stimulus triggers distinct cAMP signals in different compartments of a simple cell. Proc Natl Acad Sci U S A 98:13049-54

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