Controlling cytoplasmic c-Fos controls tumor growth in the peripheral and central nervous system
Germán A Gil1, David C Silvestre, Nicolás Tomasini
1Departamento de Química Biológica, CIQUIBIC, Facultad de Ciencias Químicas, Universidad Nacional de Córdoba, Pabellón Argentina, Ciudad Universitaria, 5000 Córdoba, Argentina.
Abstract:
Some 20 years ago c-Fos was identified as a member of the AP-1 family of inducible transcription factors (Angel and Karin in Biochim Biophys Acta 1072:129-157, 1991). More recently, an additional activity was described for this protein: it associates to the endoplasmic reticulum and activates the biosynthesis of phospholipids (Bussolino et al. in FASEB J 15:556-558, 2001), (Gil et al. in Mol Biol Cell 15:1881-1894, 2004), the quantitatively most important components of cellular membranes. This latter activity of c-Fos determines the rate of membrane genesis and consequently of growth in differentiating PC12 cells (Gil et al. in Mol Biol Cell 15:1881-1894, 2004). In addition, it has been shown that c-Fos is over-expressed both in PNS and CNS tumors (Silvestre et al. in PLoS One 5(3):e9544, 2010). Herein, it is shown that c-Fos-activated phospholipid synthesis is required to support membrane genesis during the exacerbated growth characteristic of brain tumor cells. Specifically blocking c-Fos-activated phospholipid synthesis significantly reduces proliferation of tumor cells in culture. Blocking c-Fos expression also prevents tumor progression in mice intra-cranially xeno-grafted human brain tumor cells. In NPcis mice, an animal model of the human disease Neurofibromatosis Type I (Cichowski and Jacks in Cell 104:593-604, 2001), animals spontaneously develop tumors of the PNS and the CNS, provided they express c-Fos (Silvestre et al. in PLoS One 5(3):e9544, 2010). Treatment of PNS tumors with an antisense oligonucleotide that specifically blocks c-Fos expression also blocks tumor growth in vivo. These results disclose cytoplasmic c-Fos as a new target for effectively controlling brain tumor growth.
Insights
Cytoplasmic c-Fos protein activates phospholipid synthesis, crucial for cell membrane generation and growth. Blocking this activity significantly reduces brain tumor cell proliferation and progression in vivo.
Area of Science:
- Molecular Biology
- Oncology
- Cell Biology
Background:
- c-Fos, a transcription factor, also activates phospholipid biosynthesis in the endoplasmic reticulum.
- Phospholipid synthesis is vital for cellular membrane genesis and cell growth.
- c-Fos is overexpressed in both peripheral and central nervous system tumors.
Purpose of the Study:
- To investigate the role of c-Fos-activated phospholipid synthesis in brain tumor growth.
- To determine if blocking c-Fos expression can inhibit tumor progression.
Main Methods:
- In vitro culture of tumor cells to assess proliferation.
- In vivo studies using mouse models with xenografted human brain tumors.
- Treatment of tumors in Neurofibromatosis Type I mouse models with antisense oligonucleotides targeting c-Fos.
Main Results:
- Inhibition of c-Fos-activated phospholipid synthesis significantly reduced tumor cell proliferation in culture.
- Blocking c-Fos expression prevented tumor progression in mice with xenografted brain tumors.
- Antisense oligonucleotide treatment targeting c-Fos effectively inhibited peripheral nervous system tumor growth in vivo.
Conclusions:
- c-Fos-activated phospholipid synthesis is essential for membrane biogenesis during brain tumor cell proliferation.
- Cytoplasmic c-Fos represents a novel therapeutic target for controlling brain tumor growth.
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