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Published on: August 25, 2021
FGF1 protects neuroblastoma SH-SY5Y cells from p53-dependent apoptosis through an intracrine pathway regulated by
Caroline Pirou1, Fatemeh Montazer-Torbati1, Nadège Jah1
1Laboratoire de Génétique et Biologie Cellulaire, EA4589, Université de Versailles Saint-Quentin-en-Yvelines (UVSQ), Université Paris-Saclay, École Pratique des Hautes Etudes (EPHE), PSL Research University, 2 Avenue de la Source de la Bièvre, Montigny-Le-Bretonneux 78180, France.
Abstract:
Neuroblastoma, a sympathetic nervous system tumor, accounts for 15% of cancer deaths in children. In contrast to most human tumors, p53 is rarely mutated in human primary neuroblastoma, suggesting impaired p53 activation in neuroblastoma. Various studies have shown correlations between fgf1 expression levels and both prognosis severity and tumor chemoresistance. As we previously showed that fibroblast growth factor 1 (FGF1) inhibited p53-dependent apoptosis in neuron-like PC12 cells, we initiated the study of the interaction between the FGF1 and p53 pathways in neuroblastoma. We focused on the activity of either extracellular FGF1 by adding recombinant rFGF1 in media, or of intracellular FGF1 by overexpression in human SH-SY5Y and mouse N2a neuroblastoma cell lines. In both cell lines, the genotoxic drug etoposide induced a classical mitochondrial p53-dependent apoptosis. FGF1 was able to inhibit p53-dependent apoptosis upstream of mitochondrial events in SH-SY5Y cells by both extracellular and intracellular pathways. Both rFGF1 addition and etoposide treatment increased fgf1 expression in SH-SY5Y cells. Conversely, rFGF1 or overexpressed FGF1 had no effect on p53-dependent apoptosis and fgf1 expression in neuroblastoma N2a cells. Using different FGF1 mutants (that is, FGF1K132E, FGF1S130A and FGF1S130D), we further showed that the C-terminal domain and phosphorylation of FGF1 regulate its intracrine anti-apoptotic activity in neuroblastoma SH-SY5Y cells. This study provides the first evidence for a role of an intracrine growth factor pathway on p53-dependent apoptosis in neuroblastoma, and could lead to the identification of key regulators involved in neuroblastoma tumor progression and chemoresistance.
Insights
Fibroblast growth factor 1 (FGF1) inhibits p53-dependent apoptosis in neuroblastoma cells, suggesting a role in tumor progression and chemoresistance. This intracrine pathway may offer new therapeutic targets for childhood neuroblastoma.
Area of Science:
- * Oncology
- * Molecular Biology
- * Cell Biology
Background:
- * Neuroblastoma is a significant cause of childhood cancer mortality.
- * p53 mutations are rare in neuroblastoma, indicating impaired p53 activation.
- * Fibroblast growth factor 1 (FGF1) expression correlates with neuroblastoma prognosis and chemoresistance.
Purpose of the Study:
- * To investigate the interaction between FGF1 and p53 pathways in neuroblastoma.
- * To determine the effect of extracellular and intracellular FGF1 on p53-dependent apoptosis.
Main Methods:
- * Used human SH-SY5Y and mouse N2a neuroblastoma cell lines.
- * Applied recombinant FGF1 (rFGF1) and FGF1 overexpression.
- * Induced apoptosis using the genotoxic drug etoposide.
- * Utilized FGF1 mutants to study C-terminal domain and phosphorylation effects.
Main Results:
- * FGF1 inhibited p53-dependent apoptosis upstream of mitochondrial events in SH-SY5Y cells via both extracellular and intracellular pathways.
- * Both rFGF1 and etoposide increased fgf1 expression in SH-SY5Y cells.
- * FGF1 had no effect on p53-dependent apoptosis or fgf1 expression in N2a cells.
- * FGF1's C-terminal domain and phosphorylation regulate its intracrine anti-apoptotic activity in SH-SY5Y cells.
Conclusions:
- * This study provides the first evidence of an intracrine growth factor pathway influencing p53-dependent apoptosis in neuroblastoma.
- * FGF1's role in inhibiting apoptosis suggests potential as a therapeutic target for neuroblastoma treatment and overcoming chemoresistance.
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