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  4. Mechanisms Underlying the Recruitment of Inhibitory Interneurons in Fictive Swimming in Developing Xenopus laevis Tadpoles
 
research article

Mechanisms Underlying the Recruitment of Inhibitory Interneurons in Fictive Swimming in Developing Xenopus laevis Tadpoles

Ferrario, Andrea  
•
Saccomanno, Valentina
•
Zhang, Hong-Yan
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February 22, 2023
The Journal of neuroscience

Developing spinal circuits generate patterned motor outputs while many neurons with high membrane resistances are still maturing. In the spinal cord of hatchling frog tadpoles of unknown sex, we found that the firing reliability in swimming of inhibitory interneurons with commissural and ipsilateral ascending axons was negatively correlated with their cellular membrane resistance. Further analyses showed that neurons with higher resistances had outward rectifying properties, low firing thresh-olds, and little delay in firing evoked by current injections. Input synaptic currents these neurons received during swimming, either compound, unitary current amplitudes, or unitary synaptic current numbers, were scaled with their membrane resis-tances, but their own synaptic outputs were correlated with membrane resistances of their postsynaptic partners. Analyses of neuronal dendritic and axonal lengths and their activities in swimming and cellular input resistances did not reveal a clear correlation pattern. Incorporating these electrical and synaptic properties into a computer swimming model produced robust swimming rhythms, whereas randomizing input synaptic strengths led to the breakdown of swimming rhythms, coupled with less synchronized spiking in the inhibitory interneurons. We conclude that the recruitment of these developing interneurons in swimming can be predicted by cellular input resistances, but the order is opposite to the motor-strength-based recruit-ment scheme depicted by Henneman's size principle. This form of recruitment/integration order in development before the emergence of refined motor control is progressive potentially with neuronal acquisition of mature electrical and synaptic properties, among which the scaling of input synaptic strengths with cellular input resistance plays a critical role.

  • Details
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Type
research article
DOI
10.1523/JNEUROSCI.0520-22.2022
Web of Science ID

WOS:000948195700009

Author(s)
Ferrario, Andrea  
Saccomanno, Valentina
Zhang, Hong-Yan
Borisyuk, Roman
Li, Wen-Chang
Date Issued

2023-02-22

Publisher

SOC NEUROSCIENCE

Published in
The Journal of neuroscience
Volume

43

Issue

8

Start page

1387

End page

1404

Subjects

Neurosciences

•

Neurosciences & Neurology

•

integration

•

interneuron

•

modeling

•

recruitment

•

spinal

•

swimming

•

electrophysiological properties

•

spinal-cord

•

brain-stem

•

excitatory interneurons

•

postnatal-development

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intrinsic-properties

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pattern generator

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locomotor rhythm

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larval zebrafish

•

vesicle pools

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
BIOROB  
Available on Infoscience
April 10, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/196798
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