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Updated: Feb 11, 2026

Quantifying Replication Stress in Ovarian Cancer Cells Using Single-Stranded DNA Immunofluorescence
Published on: February 10, 2023
Active DNA end processing in micronuclei of ovarian cancer cells
Zizhi Tang1, Juan Yang2, Xin Wang1
1Department of Pharmacology, West China Second University Hospital, Key Laboratory of Birth Defects and Related Diseases of Women and Children (Ministry of Education), Sichuan University, Chengdu, 610041, People's Republic of China.
Background:
Ovarian cancer is one of the most deadly gynecological malignancies and inclined to recurrence and drug resistance. Previous studies showed that the tumorigenesis of ovarian cancers and their major histotypes are associated with genomic instability caused by defined sets of pathogenic mutations. In contrast, the mechanism that influences the development of drug resistance and disease recurrence is not well elucidated. Solid tumors are prone to chromosomal instability (CIN) and micronuclei formation (MN). Although MN is traditionally regarded as the outcome of genomic instability, recent investigation on its origin and final consequences reveal that the abnormal DNA metabolism in MN is a driver force for some types of catastrophic genomic rearrangements, accelerating dramatic genetic variation of cancer cells.
Methods:
We used Indirect Immunofluorescent staining to visualize micronuclei and activation of DNA repair factors in ovarian cancer cell lines and biopsies.
Results:
We show that ovarian cancer cells are disposed to form micronuclei upon genotoxic insults. Double strand DNA breaks (DSBs)-triggered insurgence of micronuclei is associated with unrepaired chromosomes passing through mitosis. According to their morphology and DNA staining, micronuclei compartments are divided into early and late stages that can be further characterized by differential staining of γH2AX and 53BP1. We also show that MN compartments do not halt controlled DNA metabolism as sequestered nuclear repair factors are enriched at DNA breaks in MN compartments and efficiently process DNA ends to generate single-stranded DNA (ssDNA) structures. Interestingly, unknown factors are required for DNA end processing in MN in addition to the nuclear resection machinery. Finally, these hallmarks of micronuclei evolution depicted in cell culture were recapitulated in different stages of ovarian cancer biopsies.
Conclusions:
In aggregate, our findings demonstrate that ovarian cancer cells are inclined to form micronuclei that undergo robust DNA metabolism and generate ssDNA structures, potentially destabilizing genomic structures and triggering genetic variation.
Insights
Ovarian cancer cells form micronuclei (MN) that actively metabolize DNA, generating single-stranded DNA (ssDNA). This process may drive genomic instability and accelerate cancer cell variation, contributing to drug resistance and recurrence.
Area of Science:
- Oncology
- Genetics
- Cell Biology
Background:
- Ovarian cancer is a deadly gynecological malignancy known for recurrence and drug resistance.
- Genomic instability, driven by mutations, contributes to ovarian cancer development.
- Mechanisms underlying drug resistance and recurrence, particularly the role of chromosomal instability (CIN) and micronuclei (MN) formation, are not fully understood.
Purpose of the Study:
- To investigate the role of micronuclei (MN) in ovarian cancer cell behavior and genomic instability.
- To explore the DNA metabolism within MN and its potential contribution to cancer progression.
Main Methods:
- Indirect immunofluorescent staining was employed to visualize MN and DNA repair factors.
- Ovarian cancer cell lines and patient biopsies were analyzed.
Main Results:
- Ovarian cancer cells readily form MN following genotoxic stress, linked to unrepaired chromosomes during mitosis.
- MN compartments exhibit active DNA metabolism, with enriched repair factors processing DNA breaks into single-stranded DNA (ssDNA).
- These MN hallmarks were observed in both cell cultures and ovarian cancer biopsies.
Conclusions:
- Ovarian cancer cells exhibit a propensity for MN formation.
- MN undergo significant DNA metabolism, producing ssDNA structures.
- This MN evolution can destabilize the genome, driving genetic variation and potentially contributing to ovarian cancer recurrence and drug resistance.
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