Voltage-gated calcium channels are the engines that drive the synapse. They are required for vesicle exocytosis, and it is now clear that these molecules are critically important to the dynamics of formation, maintenance, adaption and elimination that underlie changes in neural networks. Therefore, as we study these molecules and their mode of action, we will gain a much clearer understanding of the basic assembly of the nervous system. VGCCs have been linked to human diseases and disorders, and our goal is to further the understanding of how these proteins contribute to neuronal development. Using animals that have mutations that inactivate or hyperactive synaptic VGCCs we will obtain transcriptome profiles to identify genes that are transcriptionally regulated by VGCC functional status. We will then target those genes for knockdown by RNAi to find molecules that contribute to VGCC-dependent synapse addition. Finally we will seek to visualize how calcium may be dynamic during times when synapses are being modified during development to correlate intracellular levels of calcium with specific changes in synapses. The organization of the C. elegans neuromuscular system provides a powerful genetic and cell biological model to study development. The primary motorneurons have many similarities to vertebrate CNS neurons, which are more difficult to study in vivo. C. elegans may provide important insights into the mechanisms that underlie the formation and spacing of these types of synapses in vivo.

Public Health Relevance

The work of nervous systems is largely driven by small molecular gates called synapses. Understanding how these structures grow and change as a property of activity is essential to our ability to diagnose, understand and treat disorders of the human nervous system, ranging from epilepsy and neuropathic pain to mood disorders, mental retardation or autism.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Exploratory Grants (P20)
Project #
5P20GM103638-02
Application #
8507246
Study Section
Special Emphasis Panel (ZRR1-RI-B)
Project Start
Project End
Budget Start
2013-07-01
Budget End
2014-06-30
Support Year
2
Fiscal Year
2013
Total Cost
$183,023
Indirect Cost
$60,600
Name
University of Kansas Lawrence
Department
Type
DUNS #
076248616
City
Lawrence
State
KS
Country
United States
Zip Code
66045
Zhu, Qingfu; Heon, Mikala; Zhao, Zheng et al. (2018) Microfluidic engineering of exosomes: editing cellular messages for precision therapeutics. Lab Chip 18:1690-1703
Pacelli, Settimio; Basu, Sayantani; Berkland, Cory et al. (2018) Design of a cytocompatible hydrogel coating to modulate properties of ceramic-based scaffolds for bone repair. Cell Mol Bioeng 11:211-217
Wessinger, Carolyn A; Kelly, John K; Jiang, Peng et al. (2018) SNP-skimming: A fast approach to map loci generating quantitative variation in natural populations. Mol Ecol Resour 18:1402-1414
Zhang, Peng; Crow, Jennifer; Lella, Divya et al. (2018) Ultrasensitive quantification of tumor mRNAs in extracellular vesicles with an integrated microfluidic digital analysis chip. Lab Chip 18:3790-3801
Klaus, Jennifer R; Deay, Jacqueline; Neuenswander, Benjamin et al. (2018) Malleilactone Is a Burkholderia pseudomallei Virulence Factor Regulated by Antibiotics and Quorum Sensing. J Bacteriol 200:
Abisado, Rhea G; Benomar, Saida; Klaus, Jennifer R et al. (2018) Bacterial Quorum Sensing and Microbial Community Interactions. MBio 9:
Hill, Tom; Unckless, Robert L (2018) The dynamic evolution of Drosophila innubila Nudivirus. Infect Genet Evol 57:151-157
Bandyopadhyay, Arnab; Wang, Huijing; Ray, J Christian J (2018) Lineage space and the propensity of bacterial cells to undergo growth transitions. PLoS Comput Biol 14:e1006380
Kaplan, Sam V; Limbocker, Ryan A; Levant, Beth et al. (2018) Regional differences in dopamine release in the R6/2 mouse caudate putamen. Electroanalysis 30:1066-1072
Reiner, David J; Lundquist, Erik A (2018) Small GTPases. WormBook 2018:1-65

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