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Updated: Oct 22, 2025

Evaluation of Substrate Ubiquitylation by E3 Ubiquitin-ligase in Mammalian Cell Lysates
Published on: May 10, 2022
Quantitative analyses for effects of neddylation on CRL2VHL substrate ubiquitination and degradation
Kankan Wang1, Kurt M Reichermeier2,3, Xing Liu1,4
1Department of Biochemistry, Purdue University, West Lafayette, Indiana, USA.
Abstract:
Through catalyzing the ubiquitination of key regulatory proteins, cullin-RING ubiquitin ligases (CRLs) play essential biological roles and their activities are controlled by multiple mechanisms including neddylation, the conjugation of NEDD8 to cullins. Upon neddylation, a CRL, such as the CUL1-based CRL1, undergoes conformational changes that accelerate substrate ubiquitination. Given the structural diversity across subfamilies of CRLs and their substrates, to what extent neddylation modulates the activity of individual CRLs remains to be evaluated. Here, through reconstituting the CRL2 ubiquitination reaction in vitro, we showed that neddylation promotes CRL2VHL -dependent degradation of both full-length HIF1α and the degron peptide of HIF1α, resulting in more than 10-fold increase in the rate of substrate ubiquitination. Consistently, pevonedistat (also known as MLN4924), an inhibitor of neddylation, inhibits the degradation of HIF1α in RCC4 cells stably expressing VHL in cycloheximide chase assays. However, such inhibitory effect of pevonedistat on HIF1α degradation was not observed in HEK293 cells, which was further found to be due to CRL2VHL -independent degradation that was active in HEK293 but not RCC4 cells. After truncating HIF1α to its Carboxy-terminal Oxygen-Dependent Degradation (CODD) domain, we showed that pevonedistat inhibited the degradation of CODD and increased its half-life by six-fold in HEK293 cells. Our results demonstrate that neddylation plays a significant role in activating CRL2, and the cellular activity of CRL2VHL is better reflected by the degradation of CODD than that of HIF1α, especially under conditions where CRL2-independent degradation of HIF1α is active.
Insights
Neddylation significantly enhances cullin-RING ligase 2 (CRL2) activity, boosting substrate ubiquitination. This study reveals neddylation
Area of Science:
- Biochemistry
- Molecular Biology
- Cellular Biology
Background:
- Cullin-RING ligases (CRLs) are crucial for protein ubiquitination and cellular regulation.
- Neddylation, the conjugation of NEDD8 to cullins, modulates CRL activity.
- The precise impact of neddylation on individual CRL subfamilies, like CRL2, requires further investigation.
Purpose of the Study:
- To investigate the role of neddylation in regulating CRL2 ubiquitin ligase activity.
- To determine how neddylation affects the degradation of HIF1α by CRL2VHL.
- To compare the cellular activity of CRL2VHL using different substrates.
Main Methods:
- In vitro reconstitution of CRL2 ubiquitination reactions.
- Analysis of HIF1α and its degron peptide ubiquitination and degradation.
- Cycloheximide chase assays in cell lines (RCC4 and HEK293) with and without pevonedistat (neddylation inhibitor).
- Truncation of HIF1α to its Carboxy-terminal Oxygen-Dependent Degradation (CODD) domain.
Main Results:
- Neddylation increased CRL2VHL-dependent substrate ubiquitination by over 10-fold.
- Pevonedistat inhibited HIF1α degradation in RCC4 cells but not HEK293 cells due to CRL2VHL-independent pathways.
- Pevonedistat treatment increased the half-life of the HIF1α CODD domain by six-fold in HEK293 cells.
Conclusions:
- Neddylation is a key activator of CRL2 ubiquitin ligase activity.
- The degradation of the HIF1α CODD domain is a more accurate measure of CRL2VHL cellular activity than full-length HIF1α.
- CRL2-independent degradation pathways can influence substrate turnover in cells.
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