In previous work we demonstrated that Ca spikes generated by developmentally transient Ca-dependent action potentials regulate expression of neurotransmitters. We showed that this regulation was homeostatic, such that an increase in the Ca spike activity resulted in an increase in the incidence of cells expressing inhibitory neurotransmitters (glycine and GABA) and a concomitant decrease in the incidence of excitatory neurotransmitters (glutamate and acetylcholine). Conversely, a decrease in Ca spike activity caused an increase in the incidence of excitatory neurotransmitters and a decrease in inhibitory neurotransmitters. The proposed research has two specific aims targeted at generating mutant and transgenic lines in Xenopus tropicalis useful for identifying molecules involved in the Ca spike-dependent specification of neurotransmitters and for studying activity-dependent development in general. The first specific aim uses a gain-of-function screen and the second specific aim uses gene trap insertional mutagenesis. The third specific aim characterizes a subset of the genes identified in the first and second aims. The immediate goal of this research is to identify molecules involved in Ca spike- dependent neurotransmitter specification and to generate reagents for further research in this area. In addition, we aim to generate information and mutant lines that are of value to the Xenopus community. The long-term goal is to provide information about the molecular signaling pathways that govern processes of neuronal development, which will contribute to understanding developmental disorders of the nervous system.

Public Health Relevance

Correct specification of neurotransmitter expression during embryonic development is essential for the function of the nervous system, and both gene expression and electrical activity contribute to this process. However the mechanisms by which nature (genes) and nurture (activity) interact to specify the appropriate expression of neurotransmitters are unclear. This research will identify activity-dependent genes regulating transmitter expression. It is expected that this work will contribute to understanding developmental disorders of the nervous system in which neurotransmitter expression is altered during embryonic and post-embryonic development.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
1R01NS057690-01A2
Application #
7558888
Study Section
Special Emphasis Panel (ZRG1-GGG-T (52))
Program Officer
Tagle, Danilo A
Project Start
2009-05-01
Project End
2012-04-30
Budget Start
2009-05-01
Budget End
2010-04-30
Support Year
1
Fiscal Year
2009
Total Cost
$280,389
Indirect Cost
Name
University of California San Diego
Department
Biology
Type
Schools of Arts and Sciences
DUNS #
804355790
City
La Jolla
State
CA
Country
United States
Zip Code
92093
Dulcis, Davide; Lippi, Giordano; Stark, Christiana J et al. (2017) Neurotransmitter Switching Regulated by miRNAs Controls Changes in Social Preference. Neuron 95:1319-1333.e5
Spitzer, Nicholas C (2015) Neurotransmitter Switching? No Surprise. Neuron 86:1131-44
Young, Jared W; Dulcis, Davide (2015) Investigating the mechanism(s) underlying switching between states in bipolar disorder. Eur J Pharmacol 759:151-62
Guemez-Gamboa, Alicia; Xu, Lin; Meng, Da et al. (2014) Non-cell-autonomous mechanism of activity-dependent neurotransmitter switching. Neuron 82:1004-16
Plazas, Paola V; Nicol, Xavier; Spitzer, Nicholas C (2013) Activity-dependent competition regulates motor neuron axon pathfinding via PlexinA3. Proc Natl Acad Sci U S A 110:1524-9
Demarque, Michael; Spitzer, Nicholas C (2012) Neurotransmitter phenotype plasticity: an unexpected mechanism in the toolbox of network activity homeostasis. Dev Neurobiol 72:22-32
Dulcis, Davide; Spitzer, Nicholas C (2012) Reserve pool neuron transmitter respecification: Novel neuroplasticity. Dev Neurobiol 72:465-74
Spitzer, Nicholas C (2012) Activity-dependent neurotransmitter respecification. Nat Rev Neurosci 13:94-106
Marek, Kurt W; Kurtz, Lisa M; Spitzer, Nicholas C (2010) cJun integrates calcium activity and tlx3 expression to regulate neurotransmitter specification. Nat Neurosci 13:944-50
Chang, Linda W; Spitzer, Nicholas C (2009) Spontaneous calcium spike activity in embryonic spinal neurons is regulated by developmental expression of the Na+, K+-ATPase beta3 subunit. J Neurosci 29:7877-85