Separate signalling mechanisms underlie mGluR1 modulation of leak channels and NMDA receptors in the network underlying locomotion

  1. Evanthia Nanou1,
  2. Alexandros Kyriakatos1,
  3. Petronella Kettunen1 and
  4. Abdeljabbar El Manira1
  1. 1Department of Neuroscience, Karolinska Institutet, 171 77 Stockholm, Sweden
  1. Corresponding author A. El Manira: Department of Neuroscience, Karolinska Institutet, 171 77 Stockholm, Sweden. Email: abdel.elmanira{at}ki.se

Abstract

Metabotropic glutamate receptor subtype 1 (mGluR1) contributes importantly to the activity of the spinal locomotor network. For example, it potentiates NMDA current and inhibits leak conductance in lamprey spinal cord neurons. In this study we examined the signalling pathways underlying the mGluR1 modulation of NMDA receptors and leak channels, respectively. Our results show that mGluR1-induced potentiation of NMDA current required activation of phospholipase C (PLC) and was independent of the increase in the intracellular Ca2+ concentration because it was unaffected by the Ca2+ chelator BAPTA and by depletion of the internal Ca2+ stores with thapsigargin. We also show that the mGluR1-mediated inhibition of leak channels is mediated by activation of G-proteins. Finally, we show that blockade of protein kinase C (PKC) abolished the mGluR1-induced inhibition of leak current without affecting the potentiation of NMDA receptors. The contribution of mGluR1-mediated modulation of leak channels to the potentiation of the locomotor cycle frequency was assessed during fictive locomotion. Blockade of PKC significantly decreased the short-term potentiation of locomotor cycle frequency by mGluR1. These results show that the effects of mGluR1 activation on the two cellular targets, the NMDA receptor and leak channels, are mediated through separate signalling pathways.

Footnotes

  • (Received 16 March 2009; accepted after revision 20 April 2009; first published online 29 April 2009)

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