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Published on: December 2, 2022
A multi-species toolkit of TOP2 hypercleavage mutants for studying topoisomerase II-mediated DNA damage
Abstract:
DNA topoisomerase II (TOP2) generates transient DNA double-strand breaks that are trapped as TOP2-DNA covalent complexes (TOP2cc) by antibiotic and chemotherapy drugs. Here, we characterize tools for study of cellular responses to TOP2cc, exploiting a Saccharomyces cerevisiae TOP2 mutant ( TOP2-F1025Y,R1128G ) that generates spontaneous and inhibitor-induced covalent complexes at elevated frequencies. This Top2-hc (for "hypercleavage") mutant protein inhibits yeast cell growth when expressed alone or with endogenous Top2, and growth defects are exacerbated in DNA-repair-deficient genetic backgrounds and/or in the presence of low doses of the Top2 poison mAMSA. We generated analogous mutations in human and mouse TOP2A and TOP2B that gave increased TOP2cc, hypersensitization to topoisomerase poisons, increased DNA damage, and decreased cell survival in cultured cells. We further established knock-in mouse models with inducible, tissue-specific expression of each TOP2-hc isoform, demonstrating overt organismal toxicity and cellular markers of DNA damage responses. To illustrate the potential of these genetic tools, we carried out proof-of-principle screens in yeast and cultured human cells for sensitivity to TOP2-hc. The yeast screen revealed strong requirements for homologous recombination, moderate roles for sister chromatid cohesion and kinetochore function, and dependencies on vesicle and vacuolar functions. The pilot shRNA screen in human cells revealed shared requirements for resistance to expression of either TOP2A-hc or TOP2B-hc as well as examples of isoform specificity. These findings establish hypercleavage mutant proteins as effective tools for studying topoisomerase isoform-specific DNA damage and offer a foundation for exploring TOP2cc toxicity and tolerance in vivo .
Significance Statement:
DNA topoisomerase II enzymes untangle chromosomes by cutting DNA, but incomplete resealing creates toxic damage that is the basis of antibacterial and chemotherapy drugs. Here we describe toolkits in yeast, mammalian cells, and mice that take advantage of mutant topoisomerase II enzymes that trap on DNA without drugs, creating powerful genetic systems to better study how cells deal with this type of DNA damage. We provide benchmarking data to validate these tools and to illustrate how they can be used for screens in cultured cells or tissue-specific experiments in vivo . These toolkits overcome longstanding technical barriers and enable new ways to study 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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