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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.
Abstract:
Connective-tissue growth factor (CTGF/CCN2) is a matricellular-secreted protein involved in complex processes such as wound healing, angiogenesis, fibrosis and metastasis, in the regulation of cell proliferation, migration and extracellular matrix remodeling. Glioblastoma (GBM) is the major malignant primary brain tumor and its adaptation to the central nervous system microenvironment requires the production and remodeling of the extracellular matrix. Previously, we published an in vitro approach to test if neurons can influence the expression of the GBM extracellular matrix. We demonstrated that neurons remodeled glioma cell laminin. The present study shows that neurons are also able to modulate CTGF expression in GBM. CTGF immnoreactivity and mRNA levels in GBM cells are dramatically decreased when these cells are co-cultured with neonatal neurons. As proof of particular neuron effects, neonatal neurons co-cultured onto GBM cells also inhibit the reporter luciferase activity under control of the CTGF promoter, suggesting inhibition at the transcription level. This inhibition seems to be contact-mediated, since conditioned media from embryonic or neonatal neurons do not affect CTGF expression in GBM cells. Furthermore, the inhibition of CTGF expression in GBM/neuronal co-cultures seems to affect the two main signaling pathways related to CTGF. We observed inhibition of TGFβ luciferase reporter assay; however phopho-SMAD2 levels did not change in these co-cultures. In addition levels of phospho-p44/42 MAPK were decreased in co-cultured GBM cells. Finally, in transwell migration assay, CTGF siRNA transfected GBM cells or GBM cells co-cultured with neurons showed a decrease in the migration rate compared to controls. Previous data regarding laminin and these results demonstrating that CTGF is down-regulated in GBM cells co-cultured with neonatal neurons points out an interesting view in the understanding of the tumor and cerebral microenvironment interactions and could open up new strategies as well as suggest a new target in GBM control.
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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