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Updated: Mar 9, 2026

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
HuCOP1 contributes to the regulation of DNA repair in keratinocytes
B Fazekas1, M P Carty2, I Németh3
1Department of Dermatology and Allergology, Faculty of Medicine, University of Szeged, Korányi fasor 6, Szeged, 6720, Hungary. barbara.fazekas8@gmail.com.
Abstract:
We have previously demonstrated that the E3 ligase Human Constitutive Photomorphogenic Protein (huCOP1) is expressed in human keratinocytes and negatively regulates p53. The MutS homolog 2 (MSH2) protein plays a central role in DNA MMR mechanism and is implicated in the cellular response to anticancer agents, such as cisplatin. Our aim was to clarify whether huCOP1 plays a role in DNA MMR by affecting MSH2 protein level in human keratinocytes. To define the role of huCOP1 in DNA mismatch repair, we determined whether huCOP1 affects MSH2 abundance. MSH2 protein level was detected by immunocytochemical staining using a keratinocyte cell line in which the expression level of huCOP1 was stably decreased (siCOP1). To investigate whether huCOP1 silencing influences cisplatin-induced cell death, control and siCOP1 keratinocyte cells were treated with increasing concentrations of cisplatin and cell viability was recorded after 48 and 96 h. Stable silencing of huCOP1 in human keratinocytes resulted in a reduced level of MSH2 protein. huCOP1 silencing also sensitized keratinocytes to the interstrand crosslinking inducer cisplatin. Our results indicate that decreased huCOP1 correlates with lower MSH2 levels. These protein level changes lead to increased sensitivity toward cisplatin treatment, implicating that huCOP1 plays a positive role in maintaining genome integrity in human keratinocytes.
Insights
The E3 ligase Human Constitutive Photomorphogenic Protein (huCOP1) maintains genome integrity in keratinocytes by regulating MSH2 levels. Silencing huCOP1 reduces MSH2, increasing sensitivity to DNA-damaging agents like cisplatin.
Area of Science:
- Cellular Biology
- Molecular Biology
- Cancer Research
Background:
- Human Constitutive Photomorphogenic Protein (huCOP1), an E3 ligase, negatively regulates p53 in human keratinocytes.
- MutS homolog 2 (MSH2) is crucial for DNA mismatch repair (MMR) and cellular responses to chemotherapy.
Purpose of the Study:
- To investigate the role of huCOP1 in DNA mismatch repair by examining its effect on MSH2 protein levels in human keratinocytes.
- To determine if huCOP1 influences the sensitivity of keratinocytes to cisplatin-induced cell death.
Main Methods:
- Stable silencing of huCOP1 in a human keratinocyte cell line (siCOP1).
- Detection of MSH2 protein levels via immunocytochemical staining.
- Assessment of cell viability in control and siCOP1 keratinocytes treated with varying cisplatin concentrations.
Main Results:
- Stable silencing of huCOP1 led to a significant reduction in MSH2 protein levels.
- huCOP1-silenced keratinocytes exhibited increased sensitivity to cisplatin treatment.
- Decreased huCOP1 correlates with lower MSH2 levels and heightened susceptibility to DNA crosslinking agents.
Conclusions:
- huCOP1 plays a positive role in maintaining genome integrity in human keratinocytes.
- The regulation of MSH2 protein levels by huCOP1 is critical for cellular response to DNA damage.
- Targeting huCOP1 may offer therapeutic strategies for enhancing chemotherapy efficacy.
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