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Published on: June 26, 2020
Comparison of cell response to chromatin and DNA damage
Artyom Luzhin1, Priyanka Rajan2, Alfiya Safina2
1Department of Cellular Genomics, Institute of Gene Biology of the Russian Academy of Sciences, Moscow, Russia, 119334.
Abstract:
DNA-targeting drugs may damage DNA or chromatin. Many anti-cancer drugs damage both, making it difficult to understand their mechanisms of action. Using molecules causing DNA breaks without altering nucleosome structure (bleomycin) or destabilizing nucleosomes without damaging DNA (curaxin), we investigated the consequences of DNA or chromatin damage in normal and tumor cells. As expected, DNA damage caused p53-dependent growth arrest followed by senescence. Chromatin damage caused higher p53 accumulation than DNA damage; however, growth arrest was p53-independent and did not result in senescence. Chromatin damage activated the transcription of multiple genes, including classical p53 targets, in a p53-independent manner. Although these genes were not highly expressed in basal conditions, they had chromatin organization around the transcription start sites (TSS) characteristic of most highly expressed genes and the highest level of paused RNA polymerase. We hypothesized that nucleosomes around the TSS of these genes were the most sensitive to chromatin damage. Therefore, nucleosome loss upon curaxin treatment would enable transcription without the assistance of sequence-specific transcription factors. We confirmed this hypothesis by showing greater nucleosome loss around the TSS of these genes upon curaxin treatment and activation of a p53-specific reporter in p53-null cells by chromatin-damaging agents but not DNA-damaging agents.
Insights
Chromatin damage, unlike DNA damage, triggers p53-independent gene transcription by destabilizing nucleosomes near transcription start sites. This reveals distinct cellular responses to DNA vs. chromatin damage in anti-cancer drug mechanisms.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- DNA-targeting drugs are crucial anti-cancer agents, but their mechanisms are complex due to potential damage to both DNA and chromatin.
- Distinguishing the cellular consequences of DNA damage versus chromatin damage is essential for understanding drug action and developing targeted therapies.
Approach:
- Utilized bleomycin (DNA breaks) and curaxin (nucleosome destabilization) to selectively induce DNA or chromatin damage.
- Investigated the distinct cellular responses, including growth arrest, senescence, and gene transcription, in normal and tumor cells.
- Analyzed gene expression patterns, chromatin organization around transcription start sites (TSS), and RNA polymerase pausing.
Key Points:
- DNA damage induced p53-dependent growth arrest and senescence.
- Chromatin damage led to higher p53 accumulation but resulted in p53-independent growth arrest without senescence.
- Chromatin damage activated transcription of specific genes in a p53-independent manner, linked to nucleosome sensitivity at TSS.
Conclusions:
- Chromatin damage, specifically nucleosome destabilization, enables p53-independent transcription initiation.
- Nucleosomes around TSS are highly sensitive to chromatin-damaging agents, facilitating transcription without sequence-specific factors.
- Findings differentiate cellular responses to DNA vs. chromatin damage, impacting anti-cancer drug mechanism elucidation.
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