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Updated: Oct 18, 2025

In Vitro Ubiquitination and Deubiquitination Assays of Nucleosomal Histones
Published on: July 25, 2019
From the Evasion of Degradation to Ubiquitin-Dependent Protein Stabilization
Yamen Abu Ahmad1, Avital Oknin-Vaisman1, Eliya Bitman-Lotan1
1Rappaport Faculty of Medicine, R-TICC, Technion-IIT, Efron St. Bat-Galim, Haifa 3109610, Israel.
Abstract:
A hallmark of cancer is dysregulated protein turnover (proteostasis), which involves pathologic ubiquitin-dependent degradation of tumor suppressor proteins, as well as increased oncoprotein stabilization. The latter is due, in part, to mutation within sequences, termed degrons, which are required for oncoprotein recognition by the substrate-recognition enzyme, E3 ubiquitin ligase. Stabilization may also result from the inactivation of the enzymatic machinery that mediates the degradation of oncoproteins. Importantly, inactivation in cancer of E3 enzymes that regulates the physiological degradation of oncoproteins, results in tumor cells that accumulate multiple active oncoproteins with prolonged half-lives, leading to the development of "degradation-resistant" cancer cells. In addition, specific sequences may enable ubiquitinated proteins to evade degradation at the 26S proteasome. While the ubiquitin-proteasome pathway was originally discovered as central for protein degradation, in cancer cells a ubiquitin-dependent protein stabilization pathway actively translates transient mitogenic signals into long-lasting protein stabilization and enhances the activity of key oncoproteins. A central enzyme in this pathway is the ubiquitin ligase RNF4. An intimate link connects protein stabilization with tumorigenesis in experimental models as well as in the clinic, suggesting that pharmacological inhibition of protein stabilization has potential for personalized medicine in cancer. In this review, we highlight old observations and recent advances in our knowledge regarding protein stabilization.
Insights
Cancer cells stabilize oncoproteins by disrupting protein degradation pathways, creating "degradation-resistant" cells. Targeting this protein stabilization offers a new avenue for cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Cancer is characterized by disrupted protein turnover (proteostasis).
- Oncoprotein stabilization, often due to mutations in degrons or inactivation of E3 ubiquitin ligases, contributes to cancer development.
- Cancer cells can develop resistance to protein degradation, accumulating multiple active oncoproteins.
Purpose of the Study:
- To review recent advances in understanding protein stabilization in cancer.
- To highlight the role of the ubiquitin-proteasome system in both protein degradation and stabilization in cancer cells.
- To explore the therapeutic potential of targeting protein stabilization in cancer treatment.
Main Methods:
- Literature review of existing research on protein turnover and cancer.
- Analysis of the ubiquitin-proteasome pathway's dual role in protein degradation and stabilization.
- Discussion of key enzymes like RNF4 (a ubiquitin ligase) in cancer-related protein stabilization.
Main Results:
- Dysregulated proteostasis in cancer involves both tumor suppressor degradation and oncoprotein stabilization.
- Inactivation of E3 ubiquitin ligases leads to accumulation of active oncoproteins and "degradation-resistant" cancer cells.
- A ubiquitin-dependent protein stabilization pathway, involving enzymes like RNF4, promotes tumorigenesis.
Conclusions:
- Protein stabilization is intimately linked with tumorigenesis.
- Targeting protein stabilization pathways presents a promising strategy for personalized cancer medicine.
- Further research into protein stabilization mechanisms could uncover novel therapeutic targets.
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