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Updated: May 23, 2026

In Vitro Ubiquitination and Deubiquitination Assays of Nucleosomal Histones
Published on: July 25, 2019
Ubiquitin-activating enzyme UBA1 is required for cellular response to DNA damage
Pavel Moudry1, Claudia Lukas, Libor Macurek
1Department of Genome Integrity, Institute of Molecular Genetics of the ASCR, v.v.i., Prague, Czech Republic.
Abstract:
The cellular DNA damage response (DDR) machinery that maintains genomic integrity and prevents severe pathologies, including cancer, is orchestrated by signaling through protein modifications. Protein ubiquitylation regulates repair of DNA double-strand breaks (DSBs), toxic lesions caused by various metabolic as well as environmental insults such as ionizing radiation (IR). Whereas several components of the DSB-evoked ubiquitylation cascade have been identified, including RNF168 and BRCA1 ubiquitin ligases, whose genetic defects predispose to a syndrome mimicking ataxia-telangiectasia and cancer, respectively, the identity of the apical E1 enzyme involved in DDR has not been established. Here, we identify ubiquitin-activating enzyme UBA1 as the E1 enzyme required for responses to IR and replication stress in human cells. We show that siRNA-mediated knockdown of UBA1, but not of another UBA family member UBA6, impaired formation of both ubiquitin conjugates at the sites of DNA damage and IR-induced foci (IRIF) by the downstream components of the DSB response pathway, 53BP1 and BRCA1. Furthermore, chemical inhibition of UBA1 prevented IRIF formation and severely impaired DSB repair and formation of 53BP1 bodies in G 1, a marker of response to replication stress. In contrast, the upstream steps of DSB response, such as phosphorylation of histone H2AX and recruitment of MDC1, remained unaffected by UBA1 depletion. Overall, our data establish UBA1 as the apical enzyme critical for ubiquitylation-dependent signaling of both DSBs and replication stress in human cells, with implications for maintenance of genomic integrity, disease pathogenesis and cancer treatment.
Insights
The study identifies ubiquitin-activating enzyme UBA1 as crucial for the DNA damage response (DDR) in human cells. UBA1 is essential for ubiquitylation signaling following DNA double-strand breaks and replication stress, impacting genomic integrity.
Area of Science:
- Molecular Biology
- Cellular Biology
- Genetics
Background:
- The DNA damage response (DDR) maintains genomic integrity and prevents diseases like cancer.
- Protein ubiquitylation is key to repairing DNA double-strand breaks (DSBs) from insults like ionizing radiation (IR).
- The apical E1 enzyme in the DSB-evoked ubiquitylation cascade remained unidentified.
Purpose of the Study:
- To identify the apical E1 enzyme involved in the DNA damage response (DDR).
- To investigate the role of ubiquitin-activating enzyme UBA1 in cellular responses to IR and replication stress.
Main Methods:
- siRNA-mediated knockdown of UBA1 and UBA6 in human cells.
- Assessment of ubiquitin conjugate formation at DNA damage sites.
- Analysis of IR-induced foci (IRIF) formation and recruitment of 53BP1 and BRCA1.
- Chemical inhibition of UBA1 to study DSB repair and 53BP1 body formation.
- Evaluation of histone H2AX phosphorylation and MDC1 recruitment.
Main Results:
- UBA1 knockdown impaired ubiquitin conjugate formation and IRIF by 53BP1 and BRCA1.
- UBA1 inhibition prevented IRIF, impaired DSB repair, and blocked 53BP1 body formation.
- UBA1 depletion did not affect upstream DDR events like H2AX phosphorylation or MDC1 recruitment.
- UBA1, not UBA6, was identified as the apical E1 enzyme for DDR.
Conclusions:
- UBA1 is the apical E1 enzyme critical for ubiquitylation-dependent signaling of DSBs and replication stress in human cells.
- This finding has implications for understanding genomic integrity maintenance, disease pathogenesis, and cancer treatment strategies.
- UBA1's role highlights the importance of ubiquitylation in cellular responses to DNA damage.
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