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Decisions on life and death: FOXO Forkhead transcription factors are in command when PKB/Akt is off duty
Boudewijn M T Burgering1, René H Medema
1Department of Physiological Chemistry and Center for Biomedical Genetics, University Medical Center Utrecht, The Netherlands. r.medema@nki.nl
Abstract:
Forkhead transcription factors of the FOXO family are important downstream targets of protein kinase B (PKB)/Akt, a kinase shown to play a decisive role in cell proliferation and cell survival. Direct phosphorylation by PKB/Akt inhibits transcriptional activation by FOXO factors, causing their displacement from the nucleus into the cytoplasm. Work from recent years has shown that this family of transcription factors regulates the expression of a number of genes that are crucial for the proliferative status of a cell, as well as a number of genes involved in programmed cell death. As such, these transcription factors appear to play an essential role in many of the effects of PKB/Akt on cell proliferation and survival. Indeed, in cells of the hematopoietic system, mere activation of a FOXO factor is sufficient to activate a variety of proapoptotic genes and to trigger apoptosis. In contrast, in most other cell types, activation of FOXO blocks cellular proliferation and drives cells into a quiescent state. In such cell types, FOXO factors also provide the protective mechanisms that are required to adapt to the altered metabolic state of quiescent cells. Thus, as PKB/Akt signaling is switched off, FOXO factors take over to determine the fate of a cell, long-term survival in a quiescent state, or programmed cell death. This review summarizes our current understanding of the mechanisms by which PKB/Akt and FOXO factors regulate these decisions.
Insights
Protein kinase B (PKB)/Akt signaling regulates cell fate by controlling FOXO transcription factors. PKB/Akt phosphorylation inactivates FOXO, influencing cell survival, proliferation, and apoptosis.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- FOXO transcription factors are key targets of PKB/Akt signaling.
- PKB/Akt plays a critical role in cell proliferation and survival.
- Phosphorylation by PKB/Akt inhibits FOXO's transcriptional activity and causes nuclear exclusion.
Purpose of the Study:
- To review the mechanisms by which PKB/Akt and FOXO factors regulate cell fate decisions.
- To summarize the role of FOXO factors in cell proliferation, survival, and apoptosis.
- To elucidate the interplay between PKB/Akt signaling and FOXO-mediated cellular responses.
Main Methods:
- Literature review of studies on PKB/Akt and FOXO signaling pathways.
- Analysis of gene expression data related to FOXO targets.
- Integration of findings on cellular responses in different cell types.
Main Results:
- PKB/Akt-mediated phosphorylation of FOXO factors is a critical regulatory mechanism.
- FOXO factors control genes involved in cell proliferation, apoptosis, and quiescence.
- FOXO activation leads to apoptosis in hematopoietic cells but quiescence in other cell types.
- FOXO factors mediate adaptation to metabolic changes in quiescent cells.
Conclusions:
- PKB/Akt and FOXO signaling pathways are central to determining cell fate.
- The cellular context dictates whether FOXO activation promotes apoptosis or quiescence.
- Understanding this pathway is crucial for comprehending cell survival and death processes.
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