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Published on: August 2, 2024
CDDO-Me reveals USP7 as a novel target in ovarian cancer cells
Dongjun Qin1, Weiwei Wang1, Hu Lei1
1Hongqiao International Institute of Medicine, Shanghai Tongren Hospital/Faculty of Basic Medicine, Chemical Biology Division of Shanghai Universities E-Institutes, Key Laboratory of Cell Differentiation and Apoptosis of the Chinese Ministry of Education, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
Deubiquitinating enzyme USP7 has been involved in the pathogenesis and progression of several cancers. Targeting USP7 is becoming an attractive strategy for cancer therapy. In this study, we identified synthetic triterpenoid C-28 methyl ester of 2-cyano-3, 12-dioxoolen-1, 9-dien-28-oic acid (CDDO-Me) as a novel inhibitor of USP7 but not of other cysteine proteases such as cathepsin B and cathepsin D. CDDO-Me inhibits USP7 activity via a mechanism that is independent of the presence of α, β-unsaturated ketones. Molecular docking studies showed that CDDO-Me fits well in the ubiquitin carboxyl terminus-binding pocket on USP7. Given that CDDO-Me is known to be effective against ovarian cancer cells, we speculated that CDDO-Me may target USP7 in ovarian cancer cells. We demonstrated that ovarian cancer cells have higher USP7 expression than their normal counterparts. Knockdown of USP7 inhibits the proliferation of ovarian cancer cells both in vitro and in vivo. Using the cellular thermal shift assay and the drug affinity responsive target stability assay, we further demonstrated that CDDO-Me directly binds to USP7 in cells, which leads to the decrease of its substrates such as MDM2, MDMX and UHRF1. CDDO-Me suppresses ovarian cancer tumor growth in an xenograft model. In conclusion, we demonstrate that USP7 is a novel target of ovarian cancer cells; targeting USP7 may contribute to the anti-cancer effect of CDDO-Me. The development of novel USP7 selective compounds based on the CDDO-Me-scaffold warrants further investigation.
Insights
Synthetic triterpenoid CDDO-Me inhibits USP7, a key enzyme in ovarian cancer progression. This novel targeting of USP7 by CDDO-Me suppresses tumor growth, offering a potential new therapeutic strategy for ovarian cancer.
Area of Science:
- Oncology
- Biochemistry
- Drug Discovery
Background:
- Deubiquitinating enzyme USP7 is implicated in cancer pathogenesis and progression.
- Targeting USP7 presents a promising therapeutic strategy for various cancers.
Purpose of the Study:
- To identify novel USP7 inhibitors.
- To investigate the potential of CDDO-Me as a USP7 inhibitor in ovarian cancer therapy.
Main Methods:
- In vitro enzyme inhibition assays
- Molecular docking studies
- Cellular thermal shift assay (CETSA)
- Drug affinity responsive target stability (DARTS) assay
- In vitro and in vivo ovarian cancer models
Main Results:
- CDDO-Me selectively inhibits USP7 activity.
- CDDO-Me directly binds to USP7 in ovarian cancer cells.
- USP7 knockdown inhibits ovarian cancer cell proliferation.
- CDDO-Me suppresses ovarian cancer tumor growth in vivo.
Conclusions:
- USP7 is a novel therapeutic target in ovarian cancer.
- CDDO-Me demonstrates anti-cancer effects by targeting USP7.
- CDDO-Me-based compounds warrant further investigation for ovarian cancer treatment.
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