PLK1 is a binding partner and a negative regulator of FOXO3 tumor suppressor
Octavian Bucur1, Andreea Lucia Stancu2, Maria Sinziana Muraru2
1Department of Pathology, Harvard Medical School and Beth Israel Deaconess Medical Center, Boston, MA, USA ; Institute of Biochemistry of the Romanian Academy, Bucharest, Romania.
Abstract:
FOXO family members (FOXOs: FOXO1, FOXO3, FOXO4 and FOXO6) are important transcription factors and tumor suppressors controlling cell homeostasis and cell fate. They are characterized by an extraordinary functional diversity, being involved in regulation of cell cycle, proliferation, apoptosis, DNA damage response, oxidative detoxification, cell differentiation and stem cell maintenance, cell metabolism, angiogenesis, cardiac and other organ's development, aging, and other critical cellular processes. FOXOs are tightly regulated by reversible phosphorylation, ubiquitination, acetylation and methylation. Interestingly, the known kinases phosphorylate only a small percentage of the known or predicted FOXOs phosphorylation sites, suggesting that additional kinases that phosphorylate and control FOXOs activity exist. In order to identify novel regulators of FOXO3, we have employed a proteomics screening strategy. Using HeLa cancer cell line and a Tandem Affinity Purification followed by Mass Spectrometry analysis, we identified several proteins as binding partners of FOXO3. Noteworthy, Polo Like Kinase 1 (PLK1) proto-oncogene was one of the identified FOXO3 binding partners. PLK1 plays a critical role during cell cycle (G2-M transition and all phases of mitosis) and in maintenance of genomic stability. Our experimental results presented in this manuscript demonstrate that FOXO3 and PLK1 exist in a molecular complex through most of the phases of the cell cycle, with a higher occurrence in the G2-M cell cycle phases. PLK1 induces translocation of FOXO3 from the nucleus to the cytoplasm and suppresses FOXO3 activity, measured by the decrease in the pro-apoptotic Bim protein levels and in the cell cycle inhibitor protein p27. Furthermore, PLK1 can directly phosphorylate FOXO3 in an in vitro kinase assay. These results present the discovery of PLK1 proto-oncogene as a binding partner and a negative regulator of FOXO3 tumor suppressor.
Insights
Polo Like Kinase 1 (PLK1) binds and negatively regulates the tumor suppressor FOXO3. PLK1 phosphorylates FOXO3, causing its cytoplasmic translocation and reduced activity, impacting cell cycle and apoptosis proteins.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- FOXO proteins are crucial transcription factors and tumor suppressors regulating diverse cellular processes like cell cycle, apoptosis, and metabolism.
- FOXO activity is tightly controlled by post-translational modifications, yet many regulatory kinases remain unidentified.
- The Polo Like Kinase 1 (PLK1) is a key regulator of cell division and genomic stability.
Purpose of the Study:
- To identify novel regulators of the FOXO3 tumor suppressor.
- To investigate the functional relationship between FOXO3 and its binding partners.
Main Methods:
- Proteomics screening using Tandem Affinity Purification and Mass Spectrometry in HeLa cells.
- Co-immunoprecipitation assays to confirm protein complex formation across the cell cycle.
- In vitro kinase assays to assess direct phosphorylation of FOXO3 by PLK1.
Main Results:
- Polo Like Kinase 1 (PLK1) was identified as a binding partner of FOXO3.
- FOXO3 and PLK1 form a molecular complex, particularly during G2-M cell cycle phases.
- PLK1 promotes FOXO3 nuclear export, decreases FOXO3 activity (evidenced by reduced Bim and p27 levels), and directly phosphorylates FOXO3.
Conclusions:
- PLK1 acts as a novel negative regulator of the FOXO3 tumor suppressor.
- The interaction between PLK1 and FOXO3 reveals a new mechanism controlling cell cycle progression and tumor suppression.
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