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Reporter-based Growth Assay for Systematic Analysis of Protein Degradation
Published on: November 6, 2014
Fos family protein degradation by the proteasome
Tiphanie Gomard1, Isabelle Jariel-Encontre, Jihane Basbous
1Institut de Génétique Moléculaire de Montpellier, CNRS, Universités Montpellier I et II, UMR 5535, IFR 122, 1919 Route de Mende, Montpellier F-34293, France.
Abstract:
c-Fos proto-oncoprotein defines a family of closely related transcription factors (Fos proteins) also comprising Fra-1, Fra-2, FosB and DeltaFosB, the latter two proteins being generated by alternative splicing. Through the regulation of many genes, most of them still unidentified, they regulate major functions from the cell level up to the whole organism. Thus they are involved in the control of proliferation, differentiation and apoptosis, as well as in the control of responses to stresses, and they play important roles in organogenesis, immune responses and control of cognitive functions, among others. Fos proteins are intrinsically unstable. We have studied how two of them, c-Fos and Fra-1, are degraded. Departing from the classical scenario where unstable key cell regulators are hydrolysed by the proteasome after polyubiquitination, we showed that the bulk of c-Fos and Fra-1 can be broken down independently of any prior ubiquitination. Certain conserved structural domains suggest that similar mechanisms may also apply to Fra-2 and FosB. Computer search indicates that certain motifs shared by the Fos proteins and putatively responsible for instability are found in no other protein, suggesting the existence of degradation mechanisms specific for this protein family. Under particular signalling conditions, others have shown that a part of cytoplasmic c-Fos requires ubiquitination for fast turnover. This poses the question of the multiplicity of degradation pathways that apply to proteins depending on their intracellular localization.
Insights
Fos proteins, crucial for cell regulation, are often unstable. This study reveals that c-Fos and Fra-1 degradation can occur without ubiquitination, suggesting unique protein family mechanisms.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Fos proteins (c-Fos, Fra-1, Fra-2, FosB, DeltaFosB) are transcription factors regulating vital cellular functions.
- These functions include proliferation, differentiation, apoptosis, stress response, organogenesis, immunity, and cognition.
- Fos proteins are known for their intrinsic instability, necessitating efficient degradation pathways.
Purpose of the Study:
- To investigate the degradation mechanisms of c-Fos and Fra-1 proteins.
- To determine if ubiquitination is a prerequisite for the degradation of these Fos proteins.
- To explore potential degradation mechanisms specific to the Fos protein family.
Main Methods:
- Analysis of c-Fos and Fra-1 protein degradation.
- Investigation of ubiquitination-independent degradation pathways.
- Bioinformatic analysis to identify conserved instability motifs in Fos proteins.
Main Results:
- The majority of c-Fos and Fra-1 degradation occurs independently of polyubiquitination.
- Conserved structural domains suggest similar non-ubiquitin-dependent degradation for Fra-2 and FosB.
- Unique instability motifs in Fos proteins indicate specialized degradation mechanisms.
- Cytoplasmic c-Fos degradation can be ubiquitination-dependent under specific signaling conditions.
Conclusions:
- Fos protein degradation is not solely reliant on the classical ubiquitination-proteasome pathway.
- Multiple degradation pathways exist for Fos proteins, potentially varying with intracellular localization.
- Specialized degradation mechanisms likely exist for the entire Fos protein family.
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