Connective tissue growth factor (CTGF/CCN2) is negatively regulated during neuron-glioblastoma interaction

Luciana F Romão1, Fabio A Mendes, Natalia M Feitosa

  • 1Universidade Federal do Rio de Janeiro, Campus Macaé, Rio de Janeiro, Brazil.

Plos One
|February 6, 2013
PubMed

Insights

Neurons can decrease connective-tissue growth factor (CTGF) in glioblastoma (GBM) cells. This neuron-GBM interaction, mediated by cell contact, inhibits GBM cell migration and offers potential new GBM treatment strategies.

Area of Science:

  • Neuroscience
  • Oncology
  • Cell Biology

Background:

  • Connective-tissue growth factor (CTGF/CCN2) is crucial for extracellular matrix remodeling and cell signaling.
  • Glioblastoma (GBM) extensively remodels its microenvironment, necessitating matrix production.
  • Previous studies showed neurons remodel GBM laminin, suggesting neural influence on GBM matrix.

Purpose of the Study:

  • To investigate if neurons modulate CTGF expression in GBM cells.
  • To explore the mechanisms and signaling pathways involved in neuron-mediated CTGF regulation.
  • To assess the impact of neuron-GBM interactions on GBM cell migration.

Main Methods:

  • Co-culture of GBM cells with neonatal neurons.
  • Measurement of CTGF immunoreactivity and mRNA levels.
  • Reporter assays for CTGF promoter activity and TGFβ signaling.
  • Analysis of phospho-SMAD2 and phospho-p44/42 MAPK levels.
  • Transwell migration assays with CTGF siRNA and co-cultured GBM cells.

Main Results:

  • Neurons significantly decreased CTGF immunoreactivity and mRNA levels in GBM cells.
  • Neuron-GBM co-culture inhibited CTGF promoter activity, suggesting transcriptional regulation.
  • Inhibition was contact-mediated, as conditioned media had no effect.
  • CTGF down-regulation correlated with decreased phospho-p44/42 MAPK signaling.
  • GBM cell migration was reduced in co-cultures and with CTGF knockdown.

Conclusions:

  • Neurons actively down-regulate CTGF expression in GBM cells via contact-dependent mechanisms.
  • This interaction impacts GBM cell migration and associated signaling pathways.
  • Neuron-GBM interactions present novel therapeutic targets for glioblastoma control.

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