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Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
The Bromodomain Inhibitor PFI-3 Sensitizes Cancer Cells to DNA Damage by Targeting SWI/SNF
Daye Lee1, Da-Yeon Lee1, You-Son Hwang1
1Department of Life Science, The Research Center for Cellular Homeostasis, Ewha Womans University, Seoul, Republic of South Korea.
Abstract:
Many chemotherapeutic drugs produce double-strand breaks (DSB) on cancer cell DNA, thereby inducing cell death. However, the DNA damage response (DDR) enables cancer cells to overcome DNA damage and escape cell death, often leading to therapeutic resistance and unsuccessful outcomes. It is therefore important to develop inhibitors that target DDR proteins to render cancer cells hypersensitive to DNA damage. Here, we investigated the applicability of PFI-3, a recently developed bromodomain inhibitor specifically targeting the SWI/SNF chromatin remodeler that functions to promote DSB repair, in cancer treatment. We verified that PFI-3 effectively blocks chromatin binding of its target bromodomains and dissociates the corresponding SWI/SNF proteins from chromatin. We then found that, while having little toxicity as a single agent, PFI-3 synergistically sensitizes several human cancer cell lines to DNA damage induced by chemotherapeutic drugs such as doxorubicin. This PFI-3 activity occurs only for the cancer cells that require SWI/SNF for DNA repair. Our mechanism studies show that PFI-3 exerts the DNA damage-sensitizing effect by directly blocking SWI/SNF's chromatin binding, which leads to defects in DSB repair and aberrations in damage checkpoints, eventually resulting in increase of cell death primarily via necrosis and senescence. This work therefore demonstrates the activity of PFI-3 to sensitize cancer cells to DNA damage and its mechanism of action via SWI/SNF targeting, providing an experimental rationale for developing PFI-3 as a sensitizing agent in cancer chemotherapy. IMPLICATIONS: This study, revealing the activity of PFI-3 to sensitize cancer cells to chemotherapeutic drugs, provides an experimental rationale for developing this bromodomain inhibitor as a sensitizing agent in cancer chemotherapy.
Insights
PFI-3, a bromodomain inhibitor, sensitizes cancer cells to chemotherapy by blocking DNA repair. This drug targets the SWI/SNF chromatin remodeler, enhancing cancer cell death when combined with DNA-damaging agents.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Chemotherapy induces DNA double-strand breaks (DSB) to kill cancer cells.
- Cancer cells utilize the DNA damage response (DDR) to repair DSBs, leading to therapeutic resistance.
- Targeting DDR proteins is crucial to overcome resistance and improve chemotherapy outcomes.
Purpose of the Study:
- To investigate PFI-3, a bromodomain inhibitor of the SWI/SNF chromatin remodeler, as a sensitizing agent in cancer treatment.
- To elucidate the mechanism by which PFI-3 affects DNA repair and cancer cell survival.
Main Methods:
- Utilized PFI-3 to inhibit SWI/SNF chromatin binding in human cancer cell lines.
- Assessed PFI-3's effect on cancer cell sensitivity to chemotherapeutic drugs like doxorubicin.
- Conducted mechanistic studies to analyze DNA repair defects and cell death pathways.
Main Results:
- PFI-3 effectively inhibited SWI/SNF bromodomain binding and dissociation from chromatin.
- PFI-3 showed minimal toxicity alone but synergistically sensitized cancer cells to chemotherapy.
- Sensitization was observed in cancer cells reliant on SWI/SNF for DNA repair.
- PFI-3 induced DSB repair defects and cell death via necrosis and senescence.
Conclusions:
- PFI-3 demonstrates efficacy in sensitizing cancer cells to DNA-damaging chemotherapy.
- The mechanism involves blocking SWI/SNF's role in DSB repair and DNA damage checkpoints.
- PFI-3 offers a potential strategy to enhance cancer chemotherapy by targeting the DDR.
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