Chalcone-based small-molecule inhibitors attenuate malignant phenotype via targeting deubiquitinating enzymes
Olga A Issaenko1, Alexander Yu Amerik
1Russian Academy of Science, St. Petersburg, Russia; University of Minnesota, Minneapolis, MN USA. issaenko@msn.com
Abstract:
The ubiquitin-proteasome system (UPS) is usurped by many if not all cancers to regulate their survival, proliferation, invasion, angiogenesis and metastasis. Bioflavonoids curcumin and chalcones exhibit anti-neoplastic selectivity through inhibition of the 26S proteasome-activity within the UPS. Here, we provide evidence for a novel mechanism of action of chalcone-based derivatives AM146, RA-9 and RA-14, which exert anticancer activity by targeting deubiquitinating enzymes (DUB) without affecting 20S proteasome catalytic-core activity. The presence of the α,β-unsaturated carbonyl group susceptible to nucleophilic attack from the sulfhydryl of cysteines in the active sites of DUB determines the capacity of novel small-molecules to act as cell-permeable, partly selective DUB inhibitors and induce rapid accumulation of polyubiquitinated proteins and deplete the pool of free ubiquitin. These chalcone-derivatives directly suppress activity of DUB UCH-L1, UCH-L3, USP2, USP5 and USP8, which are known to regulate the turnover and stability of key regulators of cell survival and proliferation. Inhibition of DUB-activity mediated by these compounds downregulates cell-cycle promoters, e.g., cyclin D1 and upregulates tumor suppressors p53, p27(Kip1) and p16(Ink4A). These changes are associated with arrest in S-G 2/M, abrogated anchorage-dependent growth and onset of apoptosis in breast, ovarian and cervical cancer cells without noticeable alterations in primary human cells. Altogether, this work provides evidence of antitumor activity of novel chalcone-based derivatives mediated by their DUB-targeting capacity; supports the development of pharmaceuticals to directly target DUB as a most efficient strategy compared with proteasome inhibition and also provides a clear rationale for the clinical evaluation of these novel small-molecule DUB inhibitors.
Insights
Novel chalcone derivatives target deubiquitinating enzymes (DUBs), inhibiting cancer cell growth and promoting apoptosis. This DUB-targeting strategy shows promise for cancer therapy, offering an alternative to proteasome inhibition.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- The ubiquitin-proteasome system (UPS) is crucial for cancer cell survival and proliferation.
- Bioflavonoids like curcumin and chalcones can inhibit cancer growth by targeting the 26S proteasome.
- A deeper understanding of novel anticancer mechanisms is needed.
Purpose of the Study:
- To investigate the anticancer activity of novel chalcone derivatives.
- To elucidate the mechanism of action of these derivatives, specifically their effect on deubiquitinating enzymes (DUBs).
- To evaluate their potential as therapeutic agents against cancer.
Main Methods:
- Synthesis and characterization of chalcone-based derivatives (AM146, RA-9, RA-14).
- Assay of DUB inhibitory activity and proteasome activity.
- Analysis of protein ubiquitination levels and cell cycle progression.
- Assessment of apoptosis and cell growth in various cancer cell lines.
Main Results:
- Chalcone derivatives selectively inhibit DUBs (UCH-L1, UCH-L3, USP2, USP5, USP8) without affecting 20S proteasome activity.
- Inhibition of DUBs leads to polyubiquitinated protein accumulation and depletion of free ubiquitin.
- Compounds downregulate cell-cycle promoters (e.g., cyclin D1) and upregulate tumor suppressors (p53, p27Kip1, p16Ink4A).
- Anticancer effects include S-G2/M arrest, abrogated anchorage-dependent growth, and apoptosis induction in cancer cells, with minimal impact on normal cells.
Conclusions:
- Novel chalcone derivatives exhibit antitumor activity by targeting DUBs.
- Direct DUB inhibition is a potentially more effective cancer therapeutic strategy than proteasome inhibition.
- These compounds warrant further clinical evaluation as novel small-molecule DUB inhibitors.
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