Factors underlying bursting behavior in a network of cultured hippocampal neurons exposed to zero magnesium

J Neurophysiol. 2004 Feb;91(2):946-57. doi: 10.1152/jn.00547.2003. Epub 2003 Oct 8.

Abstract

Factors contributing to reduced magnesium-induced neuronal action potential bursting were investigated in primary hippocampal cell culture at high and low culture density. In nominally zero external magnesium medium, pyramidal neurons from high-density cultures produced recurrent spontaneous action potential bursts superimposed on prolonged depolarizations. These bursts were partially attenuated by the NMDA receptor antagonist d-APV. Pharmacological analysis of miniature excitatory postsynaptic currents (EPSCs) revealed 2 components: one sensitive to d-APV and another to the AMPA receptor antagonist DNQX. The components were kinetically distinct. Participation of NMDA receptors in reduced magnesium-induced synaptic events was supported by the localization of the NR1 subunit of the NMDA receptor with the presynaptic vesicular protein synaptophysin. Presynaptically, zero magnesium induced a significant increase in EPSC frequency likely attributable to increased neuronal hyperexcitability induced by reduced membrane surface charge screening. Mean quantal content was significantly increased in zero magnesium. Cells from low-density cultures did not exhibit action potential bursting in zero magnesium but did show increased EPSC frequency. Low-density neurons had less synaptophysin immunofluorescence and fewer active synapses as determined by FM1-43 analysis. These results demonstrate that multiple factors are involved in network bursting. Increased probability of transmitter release presynaptically, enhanced NMDA receptor-mediated excitability postsynaptically, and extent of neuronal interconnectivity contribute to initiation and maintenance of elevated network excitability.

Publication types

  • Research Support, U.S. Gov't, P.H.S.

MeSH terms

  • Animals
  • Cells, Cultured
  • Excitatory Postsynaptic Potentials / drug effects*
  • Excitatory Postsynaptic Potentials / physiology
  • Hippocampus / drug effects*
  • Hippocampus / physiology*
  • Magnesium / pharmacology*
  • Nerve Net / drug effects*
  • Nerve Net / physiology
  • Neurons / drug effects*
  • Neurons / physiology
  • Quinoxalines / pharmacology
  • Rats
  • Rats, Sprague-Dawley

Substances

  • Quinoxalines
  • FG 9041
  • Magnesium