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Published on: May 1, 2020
Cooperation between fibroblast growth factor receptor-4 and ErbB2 in regulation of cyclin D1 translation
Magdalena Koziczak1, Nancy E Hynes
1Friedrich Miescher Institute for Biomedical Research, Maulbeerstrasse 66, 4058 Basel, Switzerland.
Abstract:
Alterations in ErbB2 or fibroblast growth factor receptor-4 (FGFR-4) expression and activity occur in a significant fraction of breast cancers. Because signaling molecules and pathways cooperate to drive cancer progression, simultaneous targeting of multiple pathways is an appealing therapeutic strategy. With this in mind, we examined breast tumor cells for their sensitivity to the ErbB2 and FGFR inhibitors, PKI166 and PD173074, respectively. Simultaneous blocking of ErbB2 and FGFR-4 in MDA-MB-453 tumor cells had a stronger anti-proliferative effect than treatment with individual inhibitors. Examination of cell cycle regulators revealed a novel translation-mediated mechanism whereby ErbB2 and FGFR-4 cooperate to regulate cyclin D1 levels. Our results showed that FGFR-4 and ErbB2 via the MAPK and the phosphatidylinositol 3-kinase/protein kinase B pathways, respectively, both contribute to the maintenance of constitutive activity of the mammalian target of rapamycin translational pathway. Dual inhibition of these receptors strongly blocked S6 kinase 1 (S6K1) activity and cyclin D1 translation, as attested by a decrease in cyclin D1 mRNA association with polysomes. Ectopic expression of active protein kinase B or active S6K1 abrogated the dual inhibitor-mediated down-regulation of cyclin D1 expression, demonstrating the importance of these FGFR-4/ErbB2 signaling targets in regulating cyclin D1 translation. S6K1 has the central role in this process, since small interfering RNA-targeted S6K1 depletion led to a decrease in cellular S6K1 activity and, as a consequence, repression of cyclin D1 expression. Thus, we propose a novel mechanism for controlling cyclin D1 expression downstream of combined activity of ErbB2 and FGFR-4 that involves S6K1-mediated translation.
Insights
Targeting both ErbB2 and fibroblast growth factor receptor-4 (FGFR-4) simultaneously in breast cancer cells showed a stronger anti-proliferative effect. This dual inhibition impacts cyclin D1 translation via S6 kinase 1 (S6K1) signaling.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- Alterations in ErbB2 and fibroblast growth factor receptor-4 (FGFR-4) are common in breast cancers.
- Cooperative signaling pathways drive cancer progression, necessitating multi-targeted therapies.
Purpose of the Study:
- To investigate the anti-proliferative effects of simultaneously targeting ErbB2 and FGFR-4 in breast cancer cells.
- To elucidate the underlying molecular mechanisms, particularly the regulation of cell cycle proteins.
Main Methods:
- Treatment of MDA-MB-453 breast tumor cells with ErbB2 inhibitor (PKI166) and FGFR-4 inhibitor (PD173074).
- Analysis of cell cycle regulators, including cyclin D1, and signaling pathways (MAPK, PI3K/Akt, mTOR).
- Assessment of S6 kinase 1 (S6K1) activity and cyclin D1 translation using polysome association assays and siRNA-mediated depletion.
Main Results:
- Simultaneous inhibition of ErbB2 and FGFR-4 exhibited a greater anti-proliferative effect than individual inhibitors.
- Dual inhibition suppressed cyclin D1 translation through the mammalian target of rapamycin (mTOR) pathway, impacting S6K1 activity.
- ErbB2 and FGFR-4 signaling converge on S6K1 to regulate cyclin D1 translation, with S6K1 playing a central role.
Conclusions:
- Combined ErbB2 and FGFR-4 inhibition offers a potent therapeutic strategy for certain breast cancers.
- A novel mechanism involving S6K1-mediated translation controls cyclin D1 expression downstream of dual ErbB2/FGFR-4 signaling.
- Targeting this pathway could be crucial for overcoming resistance and improving treatment outcomes.
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