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Updated: Jun 10, 2026

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
MCL-1 localizes to sites of DNA damage and regulates DNA damage response
Sarwat Jamil1, Cezar Stoica, Tillie-Louise Hackett
1Department of Medicine, University of British Columbia and Vancouver Coastal Health Research Institute, Vancouver, BC, Canada.
Abstract:
MCL-1, a pro-survival member of the BCL-2 family, was previously shown to have functions in ATR-dependent Chk1 phosphorylation following DNA damage. To further delineate these functions, we explored possible differences in DNA damage response caused by lack of MCL-1 in mouse embryo fibroblasts (MEFs). As expected, Mcl-1(-/-) MEFs had delayed Chk1 phosphorylation following etoposide treatment, compared to wild type MEFs. However, their response to hydroxyurea, which causes a G(1)/S checkpoint response, was not significantly different. In addition, appearance of gamma-H2AX was delayed in the Mcl-1(-/-) MEFs treated with etoposide. We next investigated whether MCL-1 is present, together with other DNA damage response proteins, at the sites of DNA damage. Immunoprecipitation of etoposide-treated extracts with anti-MCL-1 antibody showed association of MCL-1 with gamma-H2AX as well as NBS1. Immunofluorescent staining for MCL-1 further showed increased co-staining of MCL-1 and NBS1 following DNA damage. By using a system that creates DNA double strand breaks at specific sites in the genome, we demonstrated that MCL-1 is recruited directly adjacent to the sites of damage. Finally, in a direct demonstration of the importance of MCL-1 in allowing proper repair of DNA damage, we found that treatment for two brief exposures to etoposide , followed by periods of recovery, which mimics the clinical situation of etoposide use, resulted in greater accumulation of chromosomal abnormalities in the MEFs that lacked MCL-1. Together, these data indicate an important role for MCL-1 in coordinating DNA damage mediated checkpoint response, and have broad implications for the importance of MCL-1 in maintenance of genome integrity.
Insights
MCL-1 protein is crucial for coordinating DNA damage response and maintaining genome integrity. Its absence delays DNA repair and increases chromosomal abnormalities, highlighting its importance in cellular defense.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- MCL-1, a BCL-2 family member, regulates cell survival and has known roles in DNA damage response.
- Previous studies linked MCL-1 to ATR-dependent Chk1 phosphorylation after DNA damage.
Purpose of the Study:
- To investigate the specific functions of MCL-1 in DNA damage response pathways.
- To determine the impact of MCL-1 deficiency on cellular responses to genotoxic stress.
Main Methods:
- Utilized Mcl-1 knockout mouse embryo fibroblasts (MEFs) and wild-type controls.
- Assessed DNA damage response via etoposide and hydroxyurea treatments.
- Analyzed Chk1 phosphorylation, gamma-H2AX formation, and protein localization using immunoprecipitation and immunofluorescence.
- Evaluated chromosomal abnormalities after etoposide treatment in Mcl-1 deficient cells.
Main Results:
- Mcl-1(-/-) MEFs exhibited delayed Chk1 phosphorylation and gamma-H2AX appearance after etoposide treatment.
- MCL-1 was found to associate with DNA damage markers like gamma-H2AX and NBS1 at damage sites.
- MCL-1 recruitment to specific DNA double-strand breaks was observed.
- Absence of MCL-1 led to increased chromosomal abnormalities following etoposide exposure.
Conclusions:
- MCL-1 plays a significant role in coordinating DNA damage checkpoint responses.
- MCL-1 is essential for the proper repair of DNA damage and maintenance of genome integrity.
- These findings have implications for understanding cancer therapy resistance and genome stability.
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