Carlen, P. L., et al. “Three Distinct Neuronal Phenotypes Exist in Embryonic Rat Hippocampal Neurons Cultured in Basic Fibroblast Growth Factor”. Neuroscience Letters, vol. 204, no. 1-2, 1996, pp. 5-8, https://scholar2.islandarchives.ca/islandora/object/ir%3Air-batch6-442.

Genre

  • Journal Article
Contributors
Author: Carlen, P. L.
Author: Mills, L. R.
Author: Perez-Velazquez, J. L.
Author: Jones, O. T.
Author: Eubanks, J. H.
Author: Kerr, Russell G.
Date Issued
1996
Abstract

The possibility that neurons cultured in basic fibroblast growth factor (bFGF) are heterogeneous raises concerns about their subsequent use in gene transfection and transplantation studies. We have examined the fate of embryonic hippocampal neurons in bFGF culture, and now conclude that these cells are not only heterogeneous, but possess neurons of various stages of development. Morphological and immunocytochemical analysis reveal three distinct developmental classes of neurons are present in extended bFGF culture. This tripartite classification is supported by electrophysiological analysis, which reveals that upon depolarization, neurons with precursor and juvenile neuron morphologies are unable to fire action potentials. The third class of neurons, which resemble age-matched polarized neurons in standard serum culture, fired multiple action potentials indicative of a mature phenotype. These data show neurons at multiple developmental stages co-exist in bFGF culture, and provide an experimental basis for their classification.

Note

Playfair Neuroscience Unit, Toronto Western Hospital, Ontario, Canada.

IRELAND

LR: 20061115; PUBM: Print; JID: 7600130; 0 (Calcium Channels); 0 (Culture Media); 0 (Potassium Channels); 103107-01-3 (Fibroblast Growth Factor 2); ppublish

Source type: Electronic(1)

Language

  • English

Subjects

  • animals
  • Electrophysiology
  • Fibroblast Growth Factor 2/pharmacology
  • Calcium Channels/metabolism
  • Cells, Cultured
  • Action Potentials/physiology
  • Phenotype
  • Neurons/metabolism/physiology
  • Mitosis
  • Immunohistochemistry
  • Rats
  • Culture Media
  • Hippocampus/cytology/metabolism
  • Potassium Channels/metabolism
Page range
5-8
Host Title
Neuroscience Letters
Host Abbreviated Title
Neurosci.Lett.
Volume
204
Issue
1-2
ISSN
0304-3940