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Raf/MEK/MAPK signaling stimulates the nuclear translocation and transactivating activity of FOXM1c
Richard Y M Ma1, Tommy H K Tong, Alice M S Cheung
1Department of Biochemistry, Faculty of Medicine, The University of Hong Kong, 3/F Laboratory Block, The Faculty of Medicine Building, 21 Sassoon Road, Pokfulam, Hong Kong, China.
Abstract:
The forkhead box (FOX) transcription factor FOXM1 is ubiquitously expressed in proliferating cells. FOXM1 expression peaks at the G2/M phase of the cell cycle and its functional deficiency in mice leads to defects in mitosis. To investigate the role of FOXM1 in the cell cycle, we used synchronized hTERT-BJ1 fibroblasts to examine the cell cycle-dependent regulation of FOXM1 function. We observed that FOXM1 is localized mainly in the cytoplasm in cells at late-G1 and S phases. Nuclear translocation occurs just before entry into the G2/M phase and is associated with phosphorylation of FOXM1. Consistent with the dependency of FOXM1 function on mitogenic signals, nuclear translocation of FOXM1 requires activity of the Raf/MEK/MAPK signaling pathway and is enhanced by the MAPK activator aurintricarboxylic acid. This activating effect was suppressed by the MEK1/2 inhibitor U0126. In transient reporter assays, constitutively active MEK1 enhances the transactivating effect of FOXM1c, but not FOXM1b, on the cyclin B1 promoter. RT-PCR analysis confirmed that different cell lines and tissues predominantly express the FOXM1c transcript. Mutations of two ERK1/2 target sequences within FOXM1c completely abolish the MEK1 enhancing effect, suggesting a direct link between Raf/MEK/MAPK signaling and FOXM1 function. Importantly, inhibition of Raf/MEK/MAPK signaling by U0126 led to suppression of FOXM1 target gene expression and delayed progression through G2/M, verifying the functional relevance of FOXM1 activation by MEK1. In summary, we provide the first evidence that Raf/MEK/MAPK signaling exerts its G2/M regulatory effect via FOXM1c.
Insights
The Raf/MEK/MAPK pathway regulates cell cycle progression by activating the FOXM1 transcription factor. This pathway controls FOXM1 nuclear translocation and activity, crucial for G2/M phase transition and target gene expression.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Forkhead box (FOX) transcription factor FOXM1 is vital for cell proliferation and mitosis.
- FOXM1 expression and function are cell cycle-dependent, peaking at the G2/M phase.
Purpose of the Study:
- To investigate the cell cycle-dependent regulation of FOXM1 function.
- To elucidate the role of the Raf/MEK/MAPK signaling pathway in FOXM1 activation.
Main Methods:
- Synchronization of hTERT-BJ1 fibroblasts to examine cell cycle phases.
- Analysis of FOXM1 localization, phosphorylation, and activity.
- Use of signaling pathway activators (aurintricarboxylic acid) and inhibitors (U0126).
- Transient reporter assays and RT-PCR to assess gene expression and pathway interactions.
Main Results:
- FOXM1 translocates to the nucleus and becomes active before the G2/M phase, dependent on Raf/MEK/MAPK signaling.
- The MAPK pathway, particularly MEK1, directly enhances FOXM1c activity on the cyclin B1 promoter.
- Inhibition of Raf/MEK/MAPK signaling suppresses FOXM1 target gene expression and delays G2/M progression.
Conclusions:
- Raf/MEK/MAPK signaling directly regulates FOXM1c activity and nuclear translocation.
- This pathway is essential for controlling FOXM1-mediated gene expression and cell cycle progression through G2/M.
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