The primary means by which most neurons communicate with their target cells is through the regulated release of neurotransmitter from synapses. Modulation of the release properties of these synapses has long been postulated, and in certain circumstances been directly demonstrated, to be a critical component of the cellular mechanisms that underlie learning and memory. A molecular understanding of the mechanisms which mediate this release process is crucial to developing a comprehensive understanding of brain function both in health and disease. A decade of molecular studies of the presynaptic terminal has led to the identification of over twenty gene products that are implicated in the release process at the nerve terminal. The role of most of these proteins in regulating release still is unknown. The objective of this grant proposal is to investigate the role of proteins in the release process. Homologs of most of the molecules implicated in this process are present in the nematode. Caenorhabditis elegans. This proposal aims to utilize molecular genetic tools available for the study of C. elegans to examine the role of these proteins in synaptic function. Nematode mutants lacking a number of synapse-associated components including syntaxin, synaptobrevin, rab-3 and rabphilin have been isolated and characterized. Analysis of these mutants that some of these molecules play crucial roles in neuronal function, while others appear to be dispensable. Building upon this foundation of mutants previously isolated in C. elegans, we propose to isolate additional mutants lacking synapse-associated components and to characterize the neuronal defects of animals lacking these molecules. Secondly, we propose to identify molecules that act as negative regulators of the synaptic release process, through the genetic and molecular characterization of suppressors of mutants in the gene encoding syntaxin, a protein central to the function of the nerve terminal. Finally, we propose several lines of experimentation aimed at dissecting the molecular mechanisms which govern how neurons localize these synaptic proteins specifically at the nerve terminal. Our molecular genetic approach of examining synaptic function is complementary to the biochemical approaches that many researchers use to study this highly conserved process.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS033535-09
Application #
6627662
Study Section
Special Emphasis Panel (ZRG1-MDCN-1 (01))
Program Officer
Talley, Edmund M
Project Start
1995-01-01
Project End
2004-06-30
Budget Start
2003-01-01
Budget End
2004-06-30
Support Year
9
Fiscal Year
2003
Total Cost
$274,164
Indirect Cost
Name
Washington University
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
068552207
City
Saint Louis
State
MO
Country
United States
Zip Code
63130
Levine, Daniel S; Tilley, T Don; Andersen, Richard A (2017) Efficient and selective catalysis for hydrogenation and hydrosilation of alkenes and alkynes with PNP complexes of scandium and yttrium. Chem Commun (Camb) 53:11881-11884
Saifee, Owais; Metz, Laura B; Nonet, Michael L et al. (2011) A gain-of-function mutation in adenylate cyclase confers isoflurane resistance in Caenorhabditis elegans. Anesthesiology 115:1162-71
Gracheva, Elena O; Hadwiger, Gayla; Nonet, Michael L et al. (2008) Direct interactions between C. elegans RAB-3 and Rim provide a mechanism to target vesicles to the presynaptic density. Neurosci Lett 444:137-42
Deken, Scott L; Vincent, Rose; Hadwiger, Gayla et al. (2005) Redundant localization mechanisms of RIM and ELKS in Caenorhabditis elegans. J Neurosci 25:5975-83
Liu, Qiang; Chen, Bojun; Yankova, Maya et al. (2005) Presynaptic ryanodine receptors are required for normal quantal size at the Caenorhabditis elegans neuromuscular junction. J Neurosci 25:6745-54
Nonet, M L; Saifee, O; Zhao, H et al. (1998) Synaptic transmission deficits in Caenorhabditis elegans synaptobrevin mutants. J Neurosci 18:70-80
Saifee, O; Wei, L; Nonet, M L (1998) The Caenorhabditis elegans unc-64 locus encodes a syntaxin that interacts genetically with synaptobrevin. Mol Biol Cell 9:1235-52
Nonet, M L; Staunton, J E; Kilgard, M P et al. (1997) Caenorhabditis elegans rab-3 mutant synapses exhibit impaired function and are partially depleted of vesicles. J Neurosci 17:8061-73