Brefeldin A induces apoptosis and cell cycle blockade in glioblastoma cell lines

Isabelle Pommepuy1, Faraj Terro, Barbara Petit

  • 1Department of Pathology, Limoges University Hospital, Faculty of Medicine, Limoges, France.

Oncology
|May 22, 2003
PubMed

Insights

Brefeldin A (BFA) significantly inhibits glioblastoma cell growth and induces apoptosis through a p53-independent pathway. This fungal metabolite also causes cell cycle arrest, suggesting potential as a novel glioma therapy.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Pharmacology

Background:

  • Glioblastomas (GB) are aggressive brain tumors with poor therapeutic outcomes.
  • Current glioblastoma treatments often fail due to therapy resistance.
  • Brefeldin A (BFA), a fungal metabolite, impacts Golgi apparatus function and induces apoptosis in various cell lines.

Purpose of the Study:

  • To investigate the effects of Brefeldin A (BFA) on human glioblastoma (GB) cell lines.
  • To determine BFA's potential as a chemotherapeutic agent for gliomas.

Main Methods:

  • Treatment of three human GB cell lines (SA4, SA146, U87MG) with BFA.
  • Assessment of cell growth inhibition, apoptosis (DAPI staining, TUNEL assay, flow cytometry), and cell cycle progression (flow cytometry, Ki67 labeling).

Main Results:

  • BFA induced approximately 60% cell growth inhibition in all tested GB cell lines.
  • BFA triggered time- and dose-dependent apoptosis in SA4 and SA146 cells via a p53-independent pathway.
  • BFA caused a cell cycle arrest in the early G0/G1 phase, reducing the S phase population.

Conclusions:

  • Brefeldin A demonstrates potent cell cycle modulation and apoptosis induction in glioblastoma cells.
  • BFA shows promise as a potential chemotherapeutic agent for treating gliomas.

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