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Updated: Oct 20, 2025

SUMO-Binding Entities SUBEs as Tools for the Enrichment, Isolation, Identification, and Characterization of the SUMO Proteome in Liver Cancer
Published on: November 1, 2019
Therapeutic Potential of Targeting the SUMO Pathway in Cancer
Antti Kukkula1, Veera K Ojala1,2,3,4, Lourdes M Mendez5
1Cancer Research Unit, FICAN West Cancer Center Laboratory, Institute of Biomedicine, Turku University Hospital, University of Turku, FI-20520 Turku, Finland.
Abstract:
SUMOylation is a dynamic and reversible post-translational modification, characterized more than 20 years ago, that regulates protein function at multiple levels. Key oncoproteins and tumor suppressors are SUMO substrates. In addition to alterations in SUMO pathway activity due to conditions typically present in cancer, such as hypoxia, the SUMO machinery components are deregulated at the genomic level in cancer. The delicate balance between SUMOylation and deSUMOylation is regulated by SENP enzymes possessing SUMO-deconjugation activity. Dysregulation of SUMO machinery components can disrupt the balance of SUMOylation, contributing to the tumorigenesis and drug resistance of various cancers in a context-dependent manner. Many molecular mechanisms relevant to the pathogenesis of specific cancers involve SUMO, highlighting the potential relevance of SUMO machinery components as therapeutic targets. Recent advances in the development of inhibitors targeting SUMOylation and deSUMOylation permit evaluation of the therapeutic potential of targeting the SUMO pathway in cancer. Finally, the first drug inhibiting SUMO pathway, TAK-981, is currently also being evaluated in clinical trials in cancer patients. Intriguingly, the inhibition of SUMOylation may also have the potential to activate the anti-tumor immune response. Here, we comprehensively and systematically review the recent developments in understanding the role of SUMOylation in cancer and specifically focus on elaborating the scientific rationale of targeting the SUMO pathway in different cancers.
Insights
SUMOylation, a protein modification, is crucial in cancer development and drug resistance. Targeting this pathway, including with new inhibitors like TAK-981, shows therapeutic promise and may boost anti-tumor immunity.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- SUMOylation is a key post-translational modification regulating protein function.
- SUMOylation pathway components are frequently deregulated in cancer, impacting tumorigenesis and drug resistance.
- SENP enzymes balance SUMOylation and deSUMOylation, with their dysregulation contributing to cancer progression.
Purpose of the Study:
- To review recent advancements in understanding SUMOylation's role in cancer.
- To elaborate on the scientific rationale for targeting the SUMO pathway in various cancers.
- To highlight the therapeutic potential of SUMOylation and deSUMOylation inhibitors.
Main Methods:
- Systematic review of recent literature on SUMOylation in cancer.
- Analysis of the molecular mechanisms linking SUMOylation to cancer pathogenesis.
- Evaluation of emerging therapeutic strategies targeting the SUMO pathway.
Main Results:
- SUMOylation pathway dysregulation is implicated in cancer development and resistance.
- Inhibitors targeting SUMOylation and deSUMOylation are under development, with TAK-981 in clinical trials.
- SUMOylation inhibition may enhance anti-tumor immune responses.
Conclusions:
- Targeting the SUMO pathway presents a promising therapeutic strategy for various cancers.
- Understanding SUMOylation's context-dependent role is crucial for effective cancer treatment.
- SUMOylation inhibition offers potential for novel anti-cancer therapies and immune activation.
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