A multi-species toolkit of TOP2 hypercleavage mutants for studying topoisomerase II-mediated DNA damage

Insights

New tools using hypercleavage DNA topoisomerase II (TOP2) mutants enable study of TOP2-DNA covalent complexes (TOP2cc) without drugs. These systems reveal cellular responses to TOP2cc-induced DNA damage in yeast, human cells, and mice.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • DNA topoisomerase II (TOP2) is crucial for DNA management, but its inhibition by drugs leads to toxic TOP2-DNA covalent complexes (TOP2cc).
  • Studying cellular responses to TOP2cc has been challenging due to reliance on drug-induced complexes.

Purpose of the Study:

  • To characterize novel genetic tools for studying cellular responses to TOP2cc.
  • To develop systems that generate TOP2cc independently of cytotoxic drugs.
  • To investigate the DNA damage response pathways to TOP2cc in various model organisms.

Main Methods:

  • Engineering of Saccharomyces cerevisiae TOP2 mutant (TOP2-F1025Y,R1128G) generating spontaneous TOP2cc.
  • Introduction of analogous mutations into human and mouse TOP2A and TOP2B isoforms.
  • Establishment of knock-in mouse models with inducible, tissue-specific expression of TOP2-hc isoforms.
  • Conducting genetic screens in yeast and human cells to identify genes involved in TOP2cc sensitivity.

Main Results:

  • TOP2-hc mutants in yeast and mammalian cells increased TOP2cc formation, hypersensitivity to topoisomerase poisons, DNA damage, and decreased cell survival.
  • Inducible TOP2-hc mouse models exhibited organismal toxicity and DNA damage markers.
  • Yeast screens highlighted roles for homologous recombination, sister chromatid cohesion, kinetochore, vesicle, and vacuolar functions in TOP2cc response.
  • Human cell screens identified shared and isoform-specific requirements for resistance to TOP2A-hc and TOP2B-hc.

Conclusions:

  • Hypercleavage mutant TOP2 proteins are effective tools for studying TOP2 isoform-specific DNA damage.
  • These tools provide a foundation for exploring TOP2cc toxicity and tolerance mechanisms in vivo.
  • The developed genetic systems overcome technical barriers, enabling new avenues for topoisomerase II-mediated DNA damage research.

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