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Published on: July 25, 2020
Targeting the 3D genome by anthracyclines for chemotherapeutic effects
Minkang Tan1, Shengnan Sun1, Yuchen Liu2
1Department of Cell and Chemical Biology, Leiden University Medical Center, Leiden 2300 RC, The Netherlands.
Abstract:
The chromatin is folded into three-dimensional (3D) structures, and aberrant 3D chromatin folding has been implicated in cancer. We performed ATAC-seq and TOP2A ChIP-seq to assess the potential effects of various anthracycline drugs on the chromatin architecture. We found that specific anthracycline variants selectively disrupt chromatin looping anchors by interfering with CTCF binding, suggesting an additional therapeutic mechanism of anthracycline drugs targeting the 3D genome. Hi-C experiments in K562 cells treated with anthracycline drugs revealed widespread disruption of 3D chromatin organization, including altered long-range regulation at the Myc locus. Furthermore, AML patients treated with anthracycline drugs exhibited changes in chromatin structures near possible looping anchors, which were associated with distinct clinical outcomes. Together, our findings indicate that anthracycline drugs function as potent and selective epigenomic modulators, with the capacity to further target the 3D genome to exert anticancer effects, highlighting their potential for personalized therapy in tumors with aberrant 3D chromatin architecture.
Insights
Anthracycline drugs disrupt three-dimensional (3D) chromatin folding by interfering with CTCF binding, offering a new anticancer mechanism. This epigenomic modulation targets the 3D genome, potentially benefiting cancer patients.
Area of Science:
- Genomics
- Epigenetics
- Cancer Biology
Background:
- Aberrant three-dimensional (3D) chromatin folding is linked to cancer development.
- Anthracycline drugs are widely used in cancer chemotherapy.
Purpose of the Study:
- To investigate the effects of anthracycline drugs on 3D chromatin architecture.
- To explore the therapeutic mechanisms of anthracyclines targeting the 3D genome.
Main Methods:
- Assessing chromatin architecture using ATAC-seq and TOP2A ChIP-seq.
- Performing Hi-C experiments in anthracycline-treated K562 cells.
- Analyzing chromatin structure changes in AML patients treated with anthracyclines.
Main Results:
- Specific anthracyclines disrupt chromatin looping anchors by inhibiting CTCF binding.
- Widespread alterations in 3D chromatin organization were observed, including at the Myc locus.
- Changes in chromatin structure in AML patients correlated with clinical outcomes.
Conclusions:
- Anthracycline drugs act as selective epigenomic modulators targeting the 3D genome.
- These drugs offer a potential mechanism for personalized therapy in cancers with aberrant 3D chromatin architecture.
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