Differential regulation of FBXW7 isoforms by various stress stimuli

Ronit Vogt Sionov1, Efrat Netzer, Eitan Shaulian

  • 1Department of Biochemistry and Molecular Biology; IMRIC; The Hebrew University Hadassah Medical School; Ein Kerem, Jerusalem.

Insights

The study reveals differential regulation of Fbw7 isoforms, with Fbw7β induced by stress in a p53-dependent manner, while Fbw7α and Fbw7γ show distinct, often independent, stress responses and cell cycle regulation.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Cell Biology

Background:

  • Fbxw7 is a crucial tumor suppressor frequently mutated in human cancers.
  • It functions as the substrate recognition subunit of SCF E3 ubiquitin ligases.
  • While Fbxw7 substrates are well-studied, its own isoform regulation remains largely unknown.

Purpose of the Study:

  • To investigate the differential mRNA expression of FBXW7 isoforms during the cell cycle.
  • To examine the impact of various stress stimuli on FBXW7 isoform expression.
  • To elucidate the regulatory mechanisms governing Fbw7 isoform expression, particularly concerning p53.

Main Methods:

  • Analysis of mRNA expression of FBXW7 isoforms (α, β, γ) under different stress conditions.
  • Assessment of p53-dependent and independent regulation.
  • Cell cycle analysis using Fluorescent Ubiquitination-Based Cell Cycle Indicator (FUCCI) in FACS-sorted cells.
  • Utilizing HCT-116 cell line for experiments.

Main Results:

  • Fbw7β is significantly induced by various stress stimuli, primarily in a p53-dependent manner, identified as a potent p53 target gene.
  • FBXW7α and FBXW7γ expression are largely p53-independent and exhibit limited responsiveness to most stress stimuli.
  • Differential stress response patterns observed between isoforms; Fbw7β can be induced while Fbw7α is repressed by the same genotoxic agent.
  • Fbw7γ isoform is significantly repressed during the S phase of the cell cycle in normal cycling cells.

Conclusions:

  • The three Fbw7 isoforms (α, β, and γ) are subject to distinct regulatory mechanisms.
  • Isoform-specific regulation of Fbw7 likely contributes to its multifaceted roles in cancer suppression and cellular homeostasis.
  • Understanding these regulatory differences is crucial for comprehending Fbxw7

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