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.

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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