Calcium (Ca) serves as a critical signaling molecule involved in numerous regulatory pathways including T cell activation, smooth muscle contraction, hormone release, cell growth and differentiation and fertilization. The inositol 1 ,4,5-trisphosphate receptor (lP3R) is the major intracellular Ca release channel in non-excitable cells, In many cases stimulation of a plasma membrane receptor induces generation of lP3 that activates the lP3R to release Ca from intracellular stores. Despite the central importance of the lP3-gated Ca channel, much remains to be learned about how the channel is regulated. We have cloned the complete cDNA encoding the human type 1 lP3R (lP3R1) from T lymphocytes (Jurkat). We have identified putative tyrosine phosphorylation sites in the deduced amino acid sequence of IP3R1 and shown that the channel is tyrosine phosphorylated and becomes physically associated with fyn in activated T cells. Moreover, we have shown that tyrosine phosphorylation by fyn increases the open probability of lP3R in planar lipid bilayers. More recently, we have been able to express functional human recombinant IP3R1 in heterologous systems that are suitable for characterization of channel properties. These observations have lead us to ask the following questions: 1) which residues are tyrosine phosphorylated in lP3R1; 2) does lP3R1 interact with the SH2 binding domain of members of the src family kinases; 3) does tyrosine phosphorylation of IP3R1 alter the Ca- sensitivity for activation and inactivation of the channel; and 4) what are the relative roles of src family kinases (including fyn and lck) in regulating lP3R1 in T lymphocytes? These studies should lead to novel information regarding the molecular mechanisms by which tyrosine phosphorylation regulates IP3R1 function. Understanding IP3R regulation should provide insights into signaling pathways that are potential therapeutic targets for immunosuppression, cancer, birth control, hypertension, and stroke.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
2R01AI039794-07
Application #
2625376
Study Section
Cellular Biology and Physiology Subcommittee 1 (CBY)
Project Start
1996-09-20
Project End
2001-08-31
Budget Start
1997-09-01
Budget End
1998-08-31
Support Year
7
Fiscal Year
1997
Total Cost
Indirect Cost
Name
Columbia University (N.Y.)
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
167204994
City
New York
State
NY
Country
United States
Zip Code
10032
Rullman, Eric; Andersson, Daniel C; Melin, Michael et al. (2013) Modifications of skeletal muscle ryanodine receptor type 1 and exercise intolerance in heart failure. J Heart Lung Transplant 32:925-9
Cui, Jie; Matkovich, Scot J; deSouza, Nikhil et al. (2004) Regulation of the type 1 inositol 1,4,5-trisphosphate receptor by phosphorylation at tyrosine 353. J Biol Chem 279:16311-6
Marx, Steven O; Kurokawa, Junko; Reiken, Steven et al. (2002) Requirement of a macromolecular signaling complex for beta adrenergic receptor modulation of the KCNQ1-KCNE1 potassium channel. Science 295:496-9
Gaburjakova, M; Gaburjakova, J; Reiken, S et al. (2001) FKBP12 binding modulates ryanodine receptor channel gating. J Biol Chem 276:16931-5
Sun, J; Marx, S O; Chen, H J et al. (2001) Role for p27(Kip1) in Vascular Smooth Muscle Cell Migration. Circulation 103:2967-72
Marks, A R (2001) Ryanodine receptors/calcium release channels in heart failure and sudden cardiac death. J Mol Cell Cardiol 33:615-24
Marx, S O; Reiken, S; Hisamatsu, Y et al. (2000) PKA phosphorylation dissociates FKBP12.6 from the calcium release channel (ryanodine receptor): defective regulation in failing hearts. Cell 101:365-76
Gallo, R; Padurean, A; Jayaraman, T et al. (1999) Inhibition of intimal thickening after balloon angioplasty in porcine coronary arteries by targeting regulators of the cell cycle. Circulation 99:2164-70
Rosemblit, N; Moschella, M C; Ondriasa, E et al. (1999) Intracellular calcium release channel expression during embryogenesis. Dev Biol 206:163-77
Jayaraman, T; Marks, A R (1997) T cells deficient in inositol 1,4,5-trisphosphate receptor are resistant to apoptosis. Mol Cell Biol 17:3005-12