Document Detail


Frequency-dependent recruitment of V2a interneurons during fictive locomotion in the mouse spinal cord.
MedLine Citation:
PMID:  21505430     Owner:  NLM     Status:  In-Data-Review    
Abstract/OtherAbstract:
The principles governing the recruitment of interneurons during acceleration in vertebrate locomotion are unknown. In the mouse, the V2a spinal interneurons are dispensable for left-right coordination at low locomotor frequencies, but their function is essential for maintaining left-right coordination at high frequencies. Here we explore the mechanisms driving this frequency-dependent role using four methods to determine how V2a interneurons are recruited at different locomotor frequencies. We show that half of the V2a interneurons receive rhythmic locomotor synaptic drive, which increases with cycle frequency, recruiting more of the neurons to fire at higher frequencies. The other V2a interneurons do not receive locomotion-related synaptic drive and are not recruited into the locomotor network at any frequency. The increased role of V2a interneurons at higher locomotor frequencies arises from increased synaptic drive to recruit subthreshold oscillating V2a neurons, and not from recruitment of a second set of silent V2a interneurons.
Authors:
Guisheng Zhong; Kamal Sharma; Ronald M Harris-Warrick
Publication Detail:
Type:  Journal Article    
Journal Detail:
Title:  Nature communications     Volume:  2     ISSN:  2041-1723     ISO Abbreviation:  Nat Commun     Publication Date:  2011  
Date Detail:
Created Date:  2011-04-20     Completed Date:  -     Revised Date:  -    
Medline Journal Info:
Nlm Unique ID:  101528555     Medline TA:  Nat Commun     Country:  England    
Other Details:
Languages:  eng     Pagination:  274     Citation Subset:  IM    
Affiliation:
Department of Neurobiology and Behavior, Cornell University, W 159 Seeley G. Mudd Hall, Ithaca, New York 14853, USA.
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