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J Neurophysiol 100: 716-722, 2008. First published May 28, 2008; doi:10.1152/jn.90206.2008
0022-3077/08 $8.00
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The Activity of Spinal Commissural Interneurons During Fictive Locomotion in the Lamprey

Zoltán Biró, Russell H. Hill and Sten Grillner

The Nobel Institute for Neurophysiology, Department of Neuroscience, Karolinska Institutet, Stockholm, Sweden

Submitted 30 January 2008; accepted in final form 22 May 2008

Commissural interneurons in the lamprey coordinate activity of the hemisegmental oscillators to ensure proper left–right alternation during swimming. The activity of interneuronal axons at the ventral commissure was studied together with potential target motoneurons during fictive locomotion in the isolated lamprey spinal cord. To estimate the unperturbed activity of the interneurons, axonal recordings were chosen because soma recordings inevitably will affect the level of membrane depolarization and thereby spike initiation. Of 227 commissural axons recorded during locomotor activity, 14 produced inhibitory and 3 produced excitatory postsynaptic potentials (PSPs) in target motoneurons. The axons typically fired multiple spikes per locomotor cycle, with ~10 Hz sustained frequency. The average shortest spike interval in a burst corresponded to an instantaneous frequency of ~50 Hz for both the excitatory and inhibitory axons. The maximum number of spikes per locomotor cycle was inversely related to the locomotor frequency, in accordance with previous observations in the spinal hemicord preparation. In axons that fired multiple spikes per cycle, the mean interspike intervals were in the range in which the amplitude of the slow afterhyperpolarization (sAHP) is large, providing further support for the role of the sAHP in spike timing. One hundred ninety-five axons (86%) fired rhythmically during fictive locomotion, with preferred phase of firing distributed over either the segmental locomotor burst phase (40% of axons) or the transitional phase (between bursts; 60%). Thus in lamprey commissural interneurons, we found a broad distribution of firing rates and phases during fictive locomotion.


Address for reprint requests and other correspondence: S. Grillner, The Nobel Inst. for Neurophysiology, Dept. of Neuroscience, Karolinska Inst., SE 171 77 Stockholm, Sweden (E-mail: sten.grillner{at}ki.se)




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