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Updated: Apr 27, 2026

Author Spotlight: Understanding DNA Damage Response in Mammalian Oocytes and Preimplantation Embryos
Published on: June 23, 2023
DNA damage to a single chromosome end delays anaphase onset
Bárbara Alcaraz Silva1, Jessica R Stambaugh2, Kyoko Yokomori3
1Beckman Laser Institute and Medical Clinic, Irvine, California 92612,; Department of Developmental and Cell Biology, School of Biological Sciences, University of California, Irvine, California 92617.
Abstract:
Chromosome ends contain nucleoprotein structures known as telomeres. Damage to chromosome ends during interphase elicits a DNA damage response (DDR) resulting in cell cycle arrest. However, little is known regarding the signaling from damaged chromosome ends (designated here as "TIPs") during mitosis. In the present study, we investigated the consequences of DNA damage induced at a single TIP in mitosis. We used laser microirradiation to damage mitotic TIPs or chromosome arms (non-TIPs) in PtK2 kidney epithelial cells. We found that damage to a single TIP, but not a non-TIP, delays anaphase onset. This TIP-specific checkpoint response is accompanied by differential recruitment of DDR proteins. Although phosphorylation of H2AX and the recruitment of several repair factors, such as Ku70-Ku80, occur in a comparable manner at both TIP and non-TIP damage sites, DDR factors such as ataxia telangiectasia mutated (ATM), MDC1, WRN, and FANCD2 are specifically recruited to TIPs but not to non-TIPs. In addition, Nbs1, BRCA1, and ubiquitin accumulate at damaged TIPs more rapidly than at damaged non-TIPs. ATR and 53BP1 are not detected at either TIPs or non-TIPs in mitosis. The observed delay in anaphase onset is dependent on the activity of DDR kinases ATM and Chk1, and the spindle assembly checkpoint kinase Mps1. Cells damaged at a single TIP or non-TIP eventually exit mitosis with unrepaired lesions. Damaged TIPs are segregated into micronuclei at a significantly higher frequency than damaged non-TIPs. Together, these findings reveal a mitosis-specific DDR uniquely associated with chromosome ends.
Insights
Damage to chromosome ends (telomeres) during mitosis triggers a unique DNA damage response (DDR), delaying cell division. This telomere-specific DDR involves distinct protein recruitment and leads to increased micronuclei formation.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Chromosome ends, known as telomeres, are crucial for genomic stability.
- DNA damage during interphase activates a DNA damage response (DDR), causing cell cycle arrest.
- The response to damaged telomeres (TIPs) during mitosis remains poorly understood.
Purpose of the Study:
- To investigate the consequences of DNA damage specifically at mitotic telomeres (TIPs).
- To identify the proteins involved in the DDR at damaged TIPs during mitosis.
- To elucidate the impact of TIP damage on cell cycle progression and genomic integrity.
Main Methods:
- Laser microirradiation of single mitotic telomeres (TIPs) and chromosome arms (non-TIPs) in PtK2 cells.
- Analysis of DDR protein recruitment to damage sites using immunofluorescence.
- Assessment of anaphase onset delay and micronuclei formation.
Main Results:
- Damage to a single mitotic TIP, but not a non-TIP, delays anaphase onset.
- Specific DDR factors (ATM, MDC1, WRN, FANCD2) are recruited to damaged TIPs but not non-TIPs.
- Damaged TIPs are segregated into micronuclei more frequently than damaged non-TIPs.
Conclusions:
- A mitosis-specific DDR is uniquely associated with damaged chromosome ends (telomeres).
- This TIP-specific response involves distinct protein recruitment and delays mitosis.
- Mitotic telomere damage compromises genomic integrity, leading to increased micronuclei formation.
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