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Blocking Y-Box Binding Protein-1 through Simultaneous Targeting of PI3K and MAPK in Triple Negative Breast Cancers
Aadhya Tiwari1,2,3, Mari Iida4, Corinna Kosnopfel5
1Division of Radiobiology and Molecular Environmental Research, Department of Radiation Oncology, University of Tuebingen, 72076 Tuebingen, Germany.
Abstract:
The multifunctional protein Y-box binding protein-1 (YB-1) regulates all the so far described cancer hallmarks including cell proliferation and survival. The MAPK/ERK and PI3K/Akt pathways are also the major pathways involved in cell growth, proliferation, and survival, and are the frequently hyperactivated pathways in human cancers. A gain of function mutation in KRAS mainly leads to the constitutive activation of the MAPK pathway, while the activation of the PI3K/Akt pathway occurs either through the loss of PTEN or a gain of function mutation of the catalytic subunit alpha of PI3K (PIK3CA). In this study, we investigated the underlying signaling pathway involved in YB-1 phosphorylation at serine 102 (S102) in KRAS(G13D)-mutated triple-negative breast cancer (TNBC) MDA-MB-231 cells versus PIK3CA(H1047R)/PTEN(E307K) mutated TNBC MDA-MB-453 cells. Our data demonstrate that S102 phosphorylation of YB-1 in KRAS-mutated cells is mainly dependent on the MAPK/ERK pathway, while in PIK3CA/PTEN-mutated cells, YB-1 S102 phosphorylation is entirely dependent on the PI3K/Akt pathway. Independent of the individual dominant pathway regulating YB-1 phosphorylation, dual targeting of MEK and PI3K efficiently inhibited YB-1 phosphorylation and blocked cell proliferation. This represents functional crosstalk between the two pathways. Our data obtained from the experiments, applying pharmacological inhibitors and genetic approaches, shows that YB-1 is a key player in cell proliferation, clonogenic activity, and tumor growth of TNBC cells through the MAPK and PI3K pathways. Therefore, dual inhibition of these two pathways or single targeting of YB-1 may be an effective strategy to treat TNBC.
Insights
Y-box binding protein-1 (YB-1) phosphorylation is regulated by distinct MAPK/ERK and PI3K/Akt pathways in triple-negative breast cancer. Dual targeting of these pathways or YB-1 offers a promising therapeutic strategy for TNBC.
Area of Science:
- Molecular Biology
- Cancer Signaling Pathways
- Cellular Biology
Background:
- Y-box binding protein-1 (YB-1) is a multifunctional protein regulating cancer hallmarks like proliferation and survival.
- MAPK/ERK and PI3K/Akt pathways are frequently hyperactivated in cancers and drive cell growth.
- Mutations in KRAS, PIK3CA, or PTEN activate these critical signaling pathways.
Purpose of the Study:
- To investigate the signaling pathways controlling YB-1 phosphorylation at serine 102 (S102) in distinct triple-negative breast cancer (TNBC) cell lines.
- To determine the role of YB-1 in TNBC proliferation and tumor growth.
- To explore therapeutic strategies targeting YB-1 and associated signaling pathways.
Main Methods:
- Utilized KRAS(G13D)-mutated (MDA-MB-231) and PIK3CA(H1047R)/PTEN(E307K)-mutated (MDA-MB-453) TNBC cell lines.
- Employed pharmacological inhibitors and genetic approaches to study signaling pathways.
- Assessed YB-1 phosphorylation, cell proliferation, clonogenic activity, and tumor growth.
Main Results:
- YB-1 S102 phosphorylation is MAPK/ERK-dependent in KRAS-mutated cells and PI3K/Akt-dependent in PIK3CA/PTEN-mutated cells.
- Functional crosstalk exists between MAPK and PI3K pathways, as dual inhibition blocked YB-1 phosphorylation and proliferation.
- YB-1 is crucial for TNBC cell proliferation, clonogenic activity, and tumor growth via MAPK and PI3K pathways.
Conclusions:
- YB-1 phosphorylation is differentially regulated by MAPK/ERK and PI3K/Akt pathways in distinct TNBC subtypes.
- Dual inhibition of MEK and PI3K effectively suppresses TNBC cell proliferation.
- Targeting YB-1 or simultaneously inhibiting MAPK and PI3K pathways represents a potential therapeutic approach for TNBC.
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