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J Neurophysiol 97: 3331-3339, 2007. First published March 14, 2007; doi:10.1152/jn.01302.2006
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Endogenous Tachykinin Release Contributes to the Locomotor Activity in Lamprey

Carolina Thörn Pérez, Russell H. Hill and Sten Grillner

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

Submitted 13 December 2006; accepted in final form 7 March 2007

Tachykinins are present in lamprey spinal cord. The goal of this study was to investigate whether an endogenous release of tachykinins contributes to the activity of the spinal network generating locomotor activity. The locomotor network of the isolated lamprey spinal cord was activated by bath-applied N-methyl-D-aspartate (NMDA) and the efferent activity recorded from the ventral roots. When spantide II, a tachykinin receptor antagonist, was bath-applied after reaching a steady-state burst frequency (>2 h), it significantly lowered the burst rate compared with control pieces from the same animal. In addition, the time to reach the steady-state burst frequency (>2 h) was lengthened in spantide II. These data indicate that an endogenous tachykinin release contributes to the ongoing activity of the locomotor network by modulating the glutamate–glycine neuronal network responsible for the locomotor pattern. We also explored the effects of a 10-min exogenous application of substance P (1 µM), a tachykinin, and showed that its effect on the burst rate depended on the initial NMDA induced burst frequency. At low initial burst rates (~0.5 Hz), tachykinins caused a marked further slowing to 0.1 Hz, whereas at higher initial burst rates, it instead caused an enhanced burst rate as previously reported, and in addition, a slower modulation (0.1 Hz) of the amplitude of the motor activity. These effects occurred during an initial period of ~1 h, whereas a modest long-lasting increase of the burst rate remained after >2 h.


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




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T. Mentel, L. Cangiano, S. Grillner, and A. Buschges
Neuronal Substrates for State-Dependent Changes in Coordination between Motoneuron Pools during Fictive Locomotion in the Lamprey Spinal Cord
J. Neurosci., January 23, 2008; 28(4): 868 - 879.
[Abstract] [Full Text] [PDF]




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