The main goal of this work is to better understand a curious naturally occurring phenomenon: the widespread loss of synaptic circuits in the developing nervous system. This withdrawal, known as synapse elimination, occurs in early postnatal life and has the effect of redistributing a neuron's synapses so that it strongly activates a subset of its synaptic partners while, at the same time, completely disconnecting from the rest. Several lines of evidence suggest that early experience may play a role in deciding which connections are maintained and which are lost. Therefore, this phenomenon may provide insight into the still largely mysterious ways in which experience causes long lasting alterations in the function of the brain, i.e., the changes that underlie learning and memory. In order to study this phenomenon, mice have been engineered that express different color fluorescent proteins in individual neurons. Time lapse imaging of neuromuscular synaptic connections in living mice will permit direct visualization of the details of how one neuron's connections compete with others and what the consequences of the competition is for both the losing inputs and those that are maintained. In addition, confocal imaging will be used to generate, for the first time, a complete three-dimensional reconstruction of the entire branching pattern of an axon that is in the process of losing some of its connections. To get at the ultrastructural basis of nerve detachment and withdrawal from target cells, serial electron microscopic three-dimensional reconstruction of the inputs to a cell that are engaged in competition will be carried out throughout the postnatal period of synapse elimination. Lastly, using a new technique, the migration of neurotransmitter receptors will be tracked during the process of synapse elimination. Because our present understanding of the basic mechanisms that regulate synapse maintenance and elimination is so rudimentary, the way in which synaptic connections are altered in disease is not understood. It is hoped that these experiments will provide essential and fundamental insights into the cell biological phenomena that regulate synapse number and distribution in the nervous system.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS020364-21
Application #
6685232
Study Section
Molecular, Cellular and Developmental Neurosciences 2 (MDCN)
Program Officer
Porter, Linda L
Project Start
1983-12-01
Project End
2004-06-30
Budget Start
2003-12-01
Budget End
2004-06-30
Support Year
21
Fiscal Year
2004
Total Cost
$249,470
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
Sheu, Shu-Hsien; Tapia, Juan Carlos; Tsuriel, Shlomo et al. (2017) Similar synapse elimination motifs at successive relays in the same efferent pathway during development in mice. Elife 6:
Turney, Stephen G; Lichtman, Jeff W (2012) Reversing the outcome of synapse elimination at developing neuromuscular junctions in vivo: evidence for synaptic competition and its mechanism. PLoS Biol 10:e1001352
Roberts, Mike; Jeong, Won-Ki; Vazquez-Reina, Amelio et al. (2011) Neural process reconstruction from sparse user scribbles. Med Image Comput Comput Assist Interv 14:621-8
Fox, Michael A; Tapia, Juan Carlos; Kasthuri, Narayanan et al. (2011) Delayed synapse elimination in mouse levator palpebrae superioris muscle. J Comp Neurol 519:2907-21
Kasthuri, Narayanan; Lichtman, Jeff W (2010) Neurocartography. Neuropsychopharmacology 35:342-3
Srinivasan, Ranga; Li, Qing; Zhou, Xiaobo et al. (2010) Reconstruction of the neuromuscular junction connectome. Bioinformatics 26:i64-70
Jeong, Wan-Ki; Beyer, Johanna; Hadwiger, Markus et al. (2010) Ssecrett and NeuroTrace: interactive visualization and analysis tools for large-scale neuroscience data sets. IEEE Comput Graph Appl 30:58-70
Jeong, Won-Ki; Schneider, Jens; Turney, Stephen G et al. (2010) Interactive histology of large-scale biomedical image stacks. IEEE Trans Vis Comput Graph 16:1386-95
Lu, Ju; Min, Wei; Conchello, José-Angel et al. (2009) Super-resolution laser scanning microscopy through spatiotemporal modulation. Nano Lett 9:3883-9
Gan, Wen-Biao; Grutzendler, Jaime; Wong, Rachel O et al. (2009) Ballistic delivery of dyes for structural and functional studies of the nervous system. Cold Spring Harb Protoc 2009:pdb.prot5202

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