Ca2+ signals in the nervous system mediate a remarkable variety of cellular functions, including neurotransmitter release, membrane excitability, and proliferation. To control the dynamic features of the signals mediated by this multifunctional messenger and generate specificity, neurons are endowed with a large repertoire of ion channels, pumps, and cellular organelles that work together to sculpt Ca2+ signals. In this repertoire, one of the least understood is the store-operated channel (SOC). SOCs, defined as channels in the plasma membrane that open in response to depletion of Ca2+ from the endoplasmic reticulum (ER), are a widespread mechanism for triggering Ca2+ influx into the cell. In the nervous system, SOCs are known to influence neurotransmitter release and synaptic plasticity, and aberrant signaling involving SOCs is associated with Alzheimer's disease. However, very little is known about the basic properties of neuronal SOCs and the mechanisms linking store depletion to channel activation. The long-term goals of this work are to understand the biophysical characteristics, molecular basis, and functional organization of neuronal SOCs, to identify stimuli that trigger their activation, and to elucidate the downstream consequences of their activation for neuronal function. Recent advances in fluorescent calcium indicators and microscopy provide an opportunity to gain insight into the nature of the SOC activation process. The overall thrust of present proposal is to exploit new tools to probe the store-operated Ca2+ signaling network in neurons, which is comprised of SOCs and the ER, and to explore downstream consequences of this signaling for gene expression. Our immediate objectives are: (1) Define the biophysical properties of neuronal SOCs using patch-clamp electrophysiology. (2) Define the ER Ca2+-dependence of SOC activation by employing cameleon to measure ER Ca2+ signals. How does this compare to the ER Ca2+-dependence of the activation of STIM1, a candidate molecule for the Ca2+ sensor that communicates information about [Ca2+]ER to SOCs? (3) Investigate the role of SOCs in initiating Ca2+-dependent gene expression mediated by the transcription factor, NFAT. Recent work indicates that NFAT is involved in several essential functions such as axonal outgrowth, neuronal survival, and synapse plasticity. An improved understanding of the biophysical properties, activation mechanisms, and functions of SOCs in the nervous system could ultimately reveal novel check points for the regulation of neuronal function by Ca2+, leading to new strategies for the prevention and treatment of diseases such as Alzheimer's disease.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS057499-05
Application #
7989386
Study Section
Neurotransporters, Receptors, and Calcium Signaling Study Section (NTRC)
Program Officer
Stewart, Randall R
Project Start
2007-02-13
Project End
2012-01-14
Budget Start
2010-12-01
Budget End
2012-01-14
Support Year
5
Fiscal Year
2011
Total Cost
$323,706
Indirect Cost
Name
Northwestern University at Chicago
Department
Pharmacology
Type
Schools of Medicine
DUNS #
005436803
City
Chicago
State
IL
Country
United States
Zip Code
60611
Yeung, Priscilla See-Wai; Prakriya, Murali (2018) The exquisitely cooperative nature of Orai1 channel activation. J Gen Physiol 150:1352-1355
Soberanes, Saul; Misharin, Alexander V; Jairaman, Amit et al. (2018) Metformin Targets Mitochondrial Electron Transport to Reduce Air-Pollution-Induced Thrombosis. Cell Metab :
Yeung, Priscilla S-W; Yamashita, Megumi; Ing, Christopher E et al. (2018) Mapping the functional anatomy of Orai1 transmembrane domains for CRAC channel gating. Proc Natl Acad Sci U S A 115:E5193-E5202
Vaeth, Martin; Yang, Jun; Yamashita, Megumi et al. (2017) ORAI2 modulates store-operated calcium entry and T cell-mediated immunity. Nat Commun 8:14714
Yeung, Priscilla S-W; Yamashita, Megumi; Prakriya, Murali (2017) Pore opening mechanism of CRAC channels. Cell Calcium 63:14-19
Yamashita, Megumi; Yeung, Priscilla S-W; Ing, Christopher E et al. (2017) STIM1 activates CRAC channels through rotation of the pore helix to open a hydrophobic gate. Nat Commun 8:14512
Toth, Anna B; Shum, Andrew K; Prakriya, Murali (2016) Regulation of neurogenesis by calcium signaling. Cell Calcium 59:124-34
Jairaman, Amit; Maguire, Chelsea H; Schleimer, Robert P et al. (2016) Allergens stimulate store-operated calcium entry and cytokine production in airway epithelial cells. Sci Rep 6:32311
Velmurugan, Gopal V; Huang, Huiya; Sun, Hongbin et al. (2015) Depletion of H2S during obesity enhances store-operated Ca2+ entry in adipose tissue macrophages to increase cytokine production. Sci Signal 8:ra128
Maus, Mate; Jairaman, Amit; Stathopulos, Peter B et al. (2015) Missense mutation in immunodeficient patients shows the multifunctional roles of coiled-coil domain 3 (CC3) in STIM1 activation. Proc Natl Acad Sci U S A 112:6206-11

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