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Updated: Nov 10, 2025

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
Critical roles of Rad54 in tolerance to apigenin-induced Top1-mediated DNA damage
Zilu Zhao1, Xiaohua Wu2, Fang He2
1Department of Pharmacology, Key Laboratory of Drug-Targeting and Drug Delivery Systems of the Education Ministry, West China School of Pharmacy, Sichuan University, Chengdu, Sichuan 610041, P.R. China.
Abstract:
Apigenin (APG), a flavone sub-class of flavonoids, possesses a diverse range of biological activities, including anti-cancer and anti-inflammatory effects. Previous studies identified the genotoxicity of APG in certain cancer cells, which may be associated with its anticancer effect. However, the DNA damage repair mechanism induced by APG has remained elusive. In order to clarify the molecular mechanisms, the present study determined the toxicity of APG to the wild-type (WT) DT40 chicken B-lymphocyte cell line, as well as to DT40 cells with deletions in various DNA repair genes, and their sensitivities were compared. It was demonstrated that cells deficient of Rad54, a critical homologous recombination gene, were particularly sensitive to APG. Cell-cycle analysis demonstrated that APG caused an increase in the G2/M-phase population of Rad54 cells that was greater than that in WT cells. Furthermore, it was demonstrated by immunofluorescence assay that Rad54 cells exhibited significantly increased numbers of γ-phosphorylated H2AX variant histone foci and chromosomal aberrations compared to the WT cells in response to APG. Of note, the in vitro complex of enzyme assay indicated that APG induced increased topoisomerase I (Top1) covalent protein DNA complex in Rad54 cells compared to WT cells. Finally, these results were verified using the TK6 human lymphoblastoid cell line and it was demonstrated that, as for DT40 cells, Rad54 deficiency sensitized TK6 cells to APG. The present study demonstrated that Rad54 was involved in the repair of APG-induced DNA damage, which was associated with Top1 inhibition.
Insights
Apigenin (APG) causes DNA damage, particularly in cells lacking Rad54, a key DNA repair gene. This suggests Rad54 is crucial for repairing APG-induced DNA damage, potentially through topoisomerase I inhibition.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Apigenin (APG), a flavonoid, exhibits anti-cancer and anti-inflammatory properties.
- Previous research indicated APG's genotoxicity in cancer cells, but its DNA damage repair mechanisms remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of DNA damage repair induced by Apigenin (APG).
- To investigate the role of Rad54 in repairing APG-induced DNA damage.
Main Methods:
- Comparing the toxicity of APG in wild-type (WT) DT40 cells and DT40 cells deficient in DNA repair genes, focusing on Rad54.
- Utilizing cell-cycle analysis, immunofluorescence assays for γH2AX foci, and in vitro enzyme assays.
Main Results:
- DT40 cells deficient in Rad54 showed increased sensitivity to APG.
- APG induced G2/M-phase arrest, elevated γH2AX foci, and chromosomal aberrations in Rad54-deficient cells.
- APG increased topoisomerase I (Top1) covalent complex formation in Rad54-deficient cells, indicating Top1 inhibition.
Conclusions:
- Rad54 plays a significant role in repairing Apigenin-induced DNA damage.
- The DNA repair mechanism involves the inhibition of topoisomerase I by Apigenin.
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