PUBLICATION
            Intraspinal serotonergic signaling suppresses locomotor activity in larval zebrafish
- Authors
- Montgomery, J.E., Wahlstrom-Helgren, S., Wiggin, T.D., Corwin, B.M., Lillesaar, C., Masino, M.A.
- ID
- ZDB-PUB-180622-33
- Date
- 2018
- Source
- Developmental Neurobiology : (Journal)
- Registered Authors
- Lillesaar, Christina, Masino, Mark A., Montgomery, Jacob, Wahlstrom-Helgren, Sarah
- Keywords
- morphology, optogenetic, serotonin, spinal cord, zebrafish
- MeSH Terms
- none
- PubMed
- 29923318 Full text @ Dev. Neurobiol.
            Citation
        
        
            Montgomery, J.E., Wahlstrom-Helgren, S., Wiggin, T.D., Corwin, B.M., Lillesaar, C., Masino, M.A. (2018) Intraspinal serotonergic signaling suppresses locomotor activity in larval zebrafish. Developmental Neurobiology. .
        
    
                
                    
                        Abstract
                    
                    
                
                
            
        
        
    
        
            
            
 
    
    
        
    
    
    
        
                Serotonin (5HT) is a modulator of many vital processes in the spinal cord (SC), such as production of locomotion. In the larval zebrafish, intraspinal serotonergic neurons (ISNs) are a source of spinal 5HT that, despite the availability of numerous genetic and optical tools, has not yet been directly shown to affect the spinal locomotor network. In order to better understand the functions of ISNs, we used a combination of strategies to investigate ISN development, morphology, and function. ISNs were optically isolated from one another by photoconverting Kaede fluorescent protein in individual cells, permitting morphometric analysis as they developed in vivo. ISN neurite lengths and projection distances exhibited the greatest amount of change between 3 and 4 days post-fertilization (dpf) and appeared to stabilize by 5 dpf. Overall ISN innervation patterns were similar between cells and between SC regions. ISNs possessed rostrally-extending neurites resembling dendrites and a caudally-extending neurite resembling an axon, which terminated with an enlarged growth cone-like structure. Interestingly, these enlargements remained even after neurite extension had ceased. Functionally, application of exogenous 5HT reduced spinally-produced motor nerve bursting. A selective 5HT reuptake inhibitor and ISN activation with channel rhodopsin each produced similar effects to 5HT, indicating that spinally-intrinsic 5HT originating from the ISNs has an inhibitory effect on the spinal locomotor network. Taken together this suggests that the ISNs are morphologically mature by 5 dpf and supports their involvement in modulating the activity of the spinal locomotor network. This article is protected by copyright. All rights reserved.
            
    
        
        
    
    
    
                
                    
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