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Updated: Dec 11, 2025

In Vitro Analysis of E3 Ubiquitin Ligase Function
Published on: May 14, 2021
Targeting a helix-in-groove interaction between E1 and E2 blocks ubiquitin transfer
Ann M Cathcart1,2,3, Gregory H Bird1,2, Thomas E Wales4
1Department of Pediatric Oncology, Dana-Farber Cancer Institute, Boston, MA, USA.
Abstract:
The ubiquitin-proteasome system (UPS) is a highly regulated protein disposal process critical to cell survival. Inhibiting the pathway induces proteotoxic stress and can be an effective cancer treatment. The therapeutic window observed upon proteasomal blockade has motivated multiple UPS-targeting strategies, including preventing ubiquitination altogether. E1 initiates the cascade by transferring ubiquitin to E2 enzymes. A small molecule that engages the E1 ATP-binding site and derivatizes ubiquitin disrupts enzymatic activity and kills cancer cells. However, binding-site mutations cause resistance, motivating alternative approaches to block this promising target. We identified an interaction between the E2 N-terminal alpha-1 helix and a pocket within the E1 ubiquitin-fold domain as a potentially druggable site. Stapled peptides modeled after the E2 alpha-1 helix bound to the E1 groove, induced a consequential conformational change and inhibited E1 ubiquitin thiotransfer, disrupting E2 ubiquitin charging and ubiquitination of cellular proteins. Thus, we provide a blueprint for a distinct E1-targeting strategy to treat cancer.
Insights
Researchers developed a novel strategy to inhibit the ubiquitin-proteasome system (UPS) by targeting the E1 enzyme. This approach uses stapled peptides to block E1 ubiquitin transfer, offering a new avenue for cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- The ubiquitin-proteasome system (UPS) is crucial for protein homeostasis and cell survival.
- Inhibition of the UPS induces proteotoxic stress, a validated strategy for cancer treatment.
- Current UPS-targeting drugs face resistance due to mutations in binding sites.
Purpose of the Study:
- To identify and validate alternative druggable sites within the UPS.
- To develop a novel therapeutic strategy targeting the E1 enzyme of the UPS.
- To overcome resistance mechanisms associated with existing UPS inhibitors.
Main Methods:
- Identification of an interaction site between E2 and E1 enzymes.
- Design and synthesis of stapled peptides mimicking the E2 alpha-1 helix.
- In vitro assays to assess E1 inhibition and disruption of ubiquitination.
Main Results:
- Stapled peptides successfully bound to a pocket in the E1 ubiquitin-fold domain.
- Peptide binding induced conformational changes in E1, inhibiting ubiquitin thiotransfer.
- This disruption effectively blocked E2 ubiquitin charging and cellular ubiquitination.
Conclusions:
- A novel E1-targeting strategy using stapled peptides was developed.
- This approach offers a distinct mechanism to inhibit the UPS, bypassing existing resistance pathways.
- This study provides a blueprint for developing new anti-cancer therapeutics targeting the UPS.
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