Our long term goal is to understand how signal transduction and gene expression in neurons are involved in synaptic plasticity, in particular, to understand the molecular mechanisms that permit a neuron to integrate coincident signals and to relay them to other cells. Nitric oxide (NO), a recently discovered novel type of second messenger, is a freely diffusible short-lived compound capable of acting within a limited volume in the vicinity of its original source.We have found recently that NO can act as an amplifier of calcium signals in neuronal cells. In this proposal we wish to test the hypothesis that NO and other gaseous messengers are involved in changes in synaptic plasticity by reprogramming the patterns of gene activity in neurons, alone or in concert with other second messenger molecules. We plan to identify and characterize the steps in the NO signaling cascade which synergize with the calcium signaling, to search for targets of NO and NO/Ca2+ action, to search for the other types of NO-Ca2+ interactions, to search for the other types of neuronal response to the coincident versus noncoincident action of NO accompanied by other stimuli and to investigate the cooperation or antagonism of NO with other signaling systems in the brain. We want to investigate the possibility that other gaseous messenger molecules exist and act in the brain and are relevant for gene expression.The unusual physical state of these compounds can help to explain many phenomena where activity in a limited volume or action without apparent system for secretion and/or reception are implicated. Our goal here is to design a sensitive general system suitable for the detection of weak or short-lasting effects on gene activity and to use it for a search of the CO (and other potential gaseous messengers) involvement in gene expression in neurons. Protein kinases are the crucial elements of most of the known signaling cascades in the cell. The ability to manipulate their activity provides both the instruments to dissect signaling networks and to introduce the desirable changes in the cell metabolism. We have prepared a family of highly specific and selective recombinant inhibitors of protein kinases, whose inhibitory action is based on the pseudosubstrate mechanism. Here we propose to increase potency of recombinant inhibitors, to prepare inhibitors with targeted and regulatable localization and activity and to use them as analytical tools to study complex signaling cascades in cells.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
1R01NS032764-01
Application #
2271168
Study Section
Neurological Sciences Subcommittee 1 (NLS)
Project Start
1994-09-12
Project End
1998-08-31
Budget Start
1994-09-12
Budget End
1995-08-31
Support Year
1
Fiscal Year
1994
Total Cost
Indirect Cost
Name
Cold Spring Harbor Laboratory
Department
Type
DUNS #
065968786
City
Cold Spring Harbor
State
NY
Country
United States
Zip Code
11724
Nandi, Sayan; Gokhan, Solen; Dai, Xu-Ming et al. (2012) The CSF-1 receptor ligands IL-34 and CSF-1 exhibit distinct developmental brain expression patterns and regulate neural progenitor cell maintenance and maturation. Dev Biol 367:100-13
Maletic-Savatic, M; Vingara, L K; Manganas, L N et al. (2008) Metabolomics of neural progenitor cells: a novel approach to biomarker discovery. Cold Spring Harb Symp Quant Biol 73:389-401
Gleiberman, Anatoli S; Michurina, Tatyana; Encinas, Juan M et al. (2008) Genetic approaches identify adult pituitary stem cells. Proc Natl Acad Sci U S A 105:6332-7
Manganas, Louis N; Zhang, Xueying; Li, Yao et al. (2007) Magnetic resonance spectroscopy identifies neural progenitor cells in the live human brain. Science 318:980-5
Kang, Hyuno; Tian, Le; Son, Young-Jin et al. (2007) Regulation of the intermediate filament protein nestin at rodent neuromuscular junctions by innervation and activity. J Neurosci 27:5948-57
Gleiberman, Anatoli S; Encinas, Juan M; Mignone, John L et al. (2005) Expression of nestin-green fluorescent protein transgene marks oval cells in the adult liver. Dev Dyn 234:413-21
Mignone, John L; Kukekov, Valery; Chiang, Ann-Shyn et al. (2004) Neural stem and progenitor cells in nestin-GFP transgenic mice. J Comp Neurol 469:311-24
Seebach, B S; Mendell, L M (1996) Maturation in properties of motoneurons and their segmental input in the neonatal rat. J Neurophysiol 76:3875-85