Location of oncogene-induced DNA damage sites revealed by quantitative analysis of a DNA counterstain

Greta Paternò1, Silvia Scalisi1, Gaetano Ivan Dellino2,3

  • 1Department of Physics and Astronomy "Ettore Majorana", University of Catania, Via S. Sofia 64, 95123, Catania, Italy.

Insights

Oncogene activation causes DNA damage that preferentially localizes in euchromatin. This new understanding of DNA damage distribution in cancer cells offers insights into genomic instability and potential therapeutic targets.

Area of Science:

  • Cell Biology
  • Genetics
  • Cancer Research

Background:

  • Oncogene activation drives cancer by causing DNA replication stress and damage.
  • The relationship between oncogene-induced DNA damage and chromatin organization remains unclear.
  • Genomic instability in cancer is linked to accumulated DNA damage in specific regions.

Purpose of the Study:

  • To develop a quantitative method (QUANDO) to analyze the subnuclear localization of DNA damage.
  • To investigate the distribution of DNA damage foci in relation to chromatin density.
  • To explore the interplay between oncogene activation, DNA damage, and chromatin organization in acute promyelocytic leukemia (APL) cells.

Main Methods:

  • Quantitative Analysis of DNA counterstains (QUANDO) using advanced imaging.
  • Dual-color confocal microscopy of DNA damage marker γ-H2AX and DAPI counterstain.
  • Image cross-correlation spectroscopy (ICCS) to map foci and correlate with chromatin density.

Main Results:

  • Spontaneous and oncogene-PML-RARα-induced DNA damage predominantly localized in euchromatic regions.
  • Neocarzinostatin (NCS)-induced DNA damage showed a more even distribution between euchromatin and heterochromatin.
  • QUANDO enabled single-cell measurement of foci distribution within low and high DNA density areas.

Conclusions:

  • Oncogene activation influences the subnuclear distribution of DNA damage, primarily in euchromatin.
  • Disruptions in DNA damage localization contribute to cancer-related genomic instability.
  • Findings provide insights for developing targeted DNA repair therapies in cancer treatment.

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