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Updated: May 17, 2026

Method for Measuring the Activity of Deubiquitinating Enzymes in Cell Lines and Tissue Samples
Published on: May 10, 2015
Deubiquitinase USP9x confers radioresistance through stabilization of Mcl-1
Donatella Trivigno1, Frank Essmann, Stephan M Huber
1Department of Radiation Oncology, University Hospital Tübingen, Tübingen, Germany.
Abstract:
Myeloid cell leukemia sequence 1 (Mcl-1), an antiapoptotic member of the Bcl-2 family, is often overexpressed in tumor cells limiting the therapeutic success. Mcl-1 differs from other Bcl-2 members by its high turnover rate. Its expression level is tightly regulated by ubiquitylating and deubiquitylating enzymes. Interaction of Mcl-1 with certain Bcl-2 homology domain 3 (BH3)-only members of the Bcl-2 family can limit the access to Mcl-1 ubiquitin ligase E3 and stabilizes the antiapoptotic protein. In addition, the overexpression of the deubiquitinase ubiquitin-specific protease 9x (USP9x) can result in the accumulation of Mcl-1 by removing poly-ubiquitin chains from Mcl-1 preventing its proteasomal degradation. Analyzing radiation-induced apoptosis in Jurkat cells, we found that Mcl-1 was downregulated more efficiently in sensitive parental cells than in a resistant subclone. The decline of Mcl-1 correlated with cell death induction and clonogenic survival. Knockdown of BH3-only proteins Bim, Puma, and Noxa did not affect Mcl-1 level or radiation-induced apoptosis. However, ionizing radiation resulted in activation of USP9x and enhanced deubiquitination of Mcl-1 in the radioresistant cells preventing fast Mcl-1 degradation. USP9x knockdown enhanced radiation-induced decrease of Mcl-1 and sensitized the radioresistant cells to apoptosis induction, whereas USP9x knockdown alone did not change Mcl-1 level in unirradiated cells. Together, our results indicate that radiation-induced activation of USP9x inhibits Mcl-1 degradation and apoptosis resulting in increased radioresistance.
Insights
Myeloid cell leukemia sequence 1 (Mcl-1) protein accumulation, due to activated ubiquitin-specific protease 9x (USP9x), drives radioresistance by inhibiting apoptosis. Targeting USP9x may re-sensitize resistant cells to radiation therapy.
Area of Science:
- Molecular Biology
- Cancer Biology
- Cell Death Pathways
Background:
- Myeloid cell leukemia sequence 1 (Mcl-1) is an antiapoptotic protein frequently overexpressed in tumors, hindering cancer therapy.
- Mcl-1's stability is regulated by ubiquitylation and deubiquitylation, with ubiquitin-specific protease 9x (USP9x) playing a key role.
Purpose of the Study:
- To investigate the role of Mcl-1 regulation by USP9x in radioresistant cancer cells.
- To determine if USP9x activation contributes to Mcl-1 accumulation and subsequent resistance to radiation-induced apoptosis.
Main Methods:
- Analysis of radiation-induced apoptosis in sensitive and radioresistant Jurkat cell lines.
- Assessment of Mcl-1 protein levels and ubiquitination status following ionizing radiation.
- Evaluation of USP9x activity and the effect of USP9x knockdown on Mcl-1 degradation and apoptosis.
Main Results:
- Mcl-1 was downregulated more effectively in radiation-sensitive cells compared to resistant subclones.
- Ionizing radiation activated USP9x in radioresistant cells, leading to enhanced Mcl-1 deubiquitination and prevention of degradation.
- USP9x knockdown sensitized radioresistant cells to radiation-induced apoptosis by promoting Mcl-1 decrease.
Conclusions:
- Radiation-induced activation of USP9x stabilizes Mcl-1 by inhibiting its degradation.
- USP9x-mediated Mcl-1 stabilization contributes significantly to cancer cell radioresistance.
- Targeting USP9x presents a potential therapeutic strategy to overcome radioresistance in cancer treatment.
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