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Updated: Jun 17, 2026

Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
Complex regulation of cell-cycle inhibitors by Fbxw7 in mouse embryonic fibroblasts
K Masuda1, Y Ishikawa, I Onoyama
1Department of Developmental Genetics, Center for Translational and Advanced Animal Research, Graduate School of Medicine, Tohoku University, Aoba-ku, Sendai 980-8575, Japan.
Abstract:
The F-box protein Fbxw7 (also known as Fbw7, SEL-10, hCdc4 or hAgo) mediates the ubiquitylation and thereby contributes to the degradation of proteins that positively regulate cell cycle. Conditional ablation of Fbxw7 in mouse embryonic fibroblasts (MEFs) induces cell-cycle arrest accompanied by abnormal accumulation of the intracellular domain of Notch1 (NICD1) and c-Myc. However, the molecular mechanisms by which the accumulation of NICD1 and c-Myc induces cell-cycle arrest have remained unclear. We have now examined the expression of cell-cycle inhibitors in Fbxw7-deficient MEFs and found that the abundance of p27(Kip1) and p57(Kip2) is paradoxically decreased. This phenomenon appears to be attributable to the accumulation of NICD1, given that it was recapitulated by overexpression of NICD1 and blocked by ablation of RBP-J. Conversely, the expression of p16(Ink4a) and p19(ARF) was increased in an NICD1-independent manner in Fbxw7-null MEFs. The increased expression of p19(ARF) was recapitulated by overexpression of c-Myc and abolished by ablation of c-Myc, suggesting that the accumulation of c-Myc is primarily responsible for that of p19(ARF). In contrast, the upregulation of p16(Ink4a) appeared to be independent of c-Myc. These results indicate that cell-cycle inhibitors undergo complex regulation by the Fbxw7-mediated proteolytic system.
Insights
The F-box protein Fbxw7 regulates cell cycle proteins. Its absence causes cell cycle arrest by altering levels of key inhibitors like p27(Kip1), p57(Kip2), p16(Ink4a), and p19(ARF), revealing complex proteolytic control.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- F-box protein Fbxw7 targets cell cycle regulators for degradation.
- Fbxw7 deficiency in mouse embryonic fibroblasts (MEFs) leads to cell cycle arrest.
- Accumulation of Notch1 intracellular domain (NICD1) and c-Myc are observed in Fbxw7-deficient MEFs.
Purpose of the Study:
- To elucidate the molecular mechanisms linking NICD1 and c-Myc accumulation to cell cycle arrest.
- To investigate the regulation of cell-cycle inhibitors in Fbxw7-deficient MEFs.
Main Methods:
- Conditional ablation of Fbxw7 in MEFs.
- Analysis of cell-cycle inhibitor expression (p27(Kip1), p57(Kip2), p16(Ink4a), p19(ARF)).
- Manipulation of NICD1 and c-Myc levels and their downstream effects.
Main Results:
- Fbxw7 deficiency paradoxically decreased p27(Kip1) and p57(Kip2) abundance, linked to NICD1 accumulation.
- p16(Ink4a) and p19(ARF) expression increased in Fbxw7-null MEFs independently of NICD1.
- c-Myc accumulation was responsible for increased p19(ARF), while p16(Ink4a) upregulation was independent of c-Myc.
Conclusions:
- Cell-cycle inhibitors are complexly regulated by the Fbxw7-mediated proteolytic system.
- NICD1 and c-Myc accumulation differentially impact cell-cycle inhibitor expression.
- These findings provide insights into the Fbxw7 pathway's role in cell cycle control.
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