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Nonrandom degradation of DNA in human leukemic cells during radiation-induced apoptosis

R G Dullea1, J F Robinson, J S Bedford

  • 1Department of Radiological Health Sciences, Colorado State University, Fort Collins 80523-1673, USA.

Cancer Research
|August 14, 1999
PubMed

Insights

Endonuclease activity during apoptosis preferentially targets heterochromatin, not random DNA sites. This selective DNA cleavage in apoptotic cells highlights nonrandom genomic fragmentation patterns.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Genetics

Background:

  • Apoptosis, or programmed cell death, involves DNA fragmentation.
  • Endonuclease enzymes cleave DNA into specific fragment sizes (200 bp multiples).
  • The genomic distribution of this DNA cleavage is not fully understood.

Purpose of the Study:

  • To determine if endonuclease-mediated DNA cleavage during apoptosis occurs randomly or nonrandomly along chromosomes.
  • To investigate whether specific genomic regions are preferentially targeted during apoptotic DNA fragmentation.

Main Methods:

  • Fluorescence in situ hybridization (FISH) using DNA probes from apoptotic and non-apoptotic human T cells.
  • Construction of probes from 200-bp and 400-bp DNA fragments generated during apoptosis.
  • Hybridization experiments with and without blocking DNA, and slot blot analysis using Y chromosome DNA probes.

Main Results:

  • FISH revealed a nonrandom hybridization pattern for apoptotic DNA probes, concentrating on centromeric and heterochromatic regions.
  • Non-irradiated control DNA probes showed random hybridization patterns.
  • Slot blot analysis indicated a significantly higher proportion of Y chromosome heterochromatin DNA in apoptotic DNA compared to random DNA.

Conclusions:

  • Apoptosis-mediated endonuclease attack on DNA is not random but preferentially targets heterochromatic regions.
  • These findings suggest a nonrandom mechanism for DNA fragmentation during programmed cell death.
  • The preferential cleavage in heterochromatin has implications for understanding genome organization and DNA processing during apoptosis.

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