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Published on: August 2, 2024
Targeting Ku protein for sensitizing of breast cancer cells to DNA-damage
Li Zhang1, Sunghan Yoo, Anatoly Dritschilo
1Department of Radiation Medicine, Lombardi Cancer Center, Georgetown University, Medical Center, Washington, DC 20057, USA.
Abstract:
Targeting molecular components that are critically involved in the maintenance of genome stability is a promising approach for overcoming intrinsic tumor cell resistance to DNA-damaging treatments. In mammalian cells, the Ku-dependent non-homologous end-joining repair pathway is the predominant process for the repair of double-strand breaks (DSBs) in DNA. Previously, RNA aptamers were selected to efficiently block DNA-binding activity of the Ku protein in vitro. In the present study, we have tested the efficacy of RNA aptamers against the Ku protein as molecular sensitizer of MCF-7 breast carcinoma cells to DNA-damage. Toward this end, we established MCF-7 cell sublines stably expressing SC4 aptamer RNAs under the control of the human 7SL small nuclear RNA gene promoter. Vector-transfected (MCF/7SL) cells and cells stably expressing SC4 aptamers (MCF/SC4) were exposed to the anticancer drug etoposide and cellular responses to DNA-damage were evaluated. We found that the presence of RNA aptamers against Ku protein enhanced etoposide-induced growth inhibition of MCF-7 breast cancer. The SC4 aptamer-mediated sensitization of MCF-7 cells to the anticancer drug is attributable to an increased susceptibility of these cells to apoptosis. The observed effects cannot be accounted for by the differential expression levels of Ku protein in control and SC4 aptamer-expressing cells, but are rather due to augmented DNA binding-capacity of Ku protein, as demonstrated in in vitro studies. Thus, RNA aptamers against Ku protein show potential to sensitize MCF-7 breast carcinoma cells to DNA-damaging agents.
Insights
RNA aptamers targeting the Ku protein enhance DNA-damaging cancer drug efficacy in breast cancer cells. This sensitization increases apoptosis, offering a potential strategy to overcome treatment resistance.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Genome stability is crucial for cancer treatment efficacy.
- The Ku protein is essential for DNA double-strand break repair via non-homologous end-joining.
- RNA aptamers can inhibit the DNA-binding activity of the Ku protein.
Purpose of the Study:
- To evaluate the efficacy of RNA aptamers against the Ku protein as sensitizers for MCF-7 breast carcinoma cells treated with DNA-damaging agents.
- To investigate the mechanism by which Ku-targeting RNA aptamers affect cancer cell response to chemotherapy.
Main Methods:
- MCF-7 breast carcinoma cell sublines were engineered to stably express SC4 aptamer RNAs targeting the Ku protein.
- Cells were treated with etoposide, a DNA-damaging anticancer drug.
- Cellular responses, including growth inhibition and apoptosis, were assessed.
- In vitro studies evaluated the DNA-binding capacity of the Ku protein.
Main Results:
- Stable expression of SC4 aptamers enhanced etoposide-induced growth inhibition in MCF-7 cells.
- The sensitization effect was linked to increased susceptibility to apoptosis.
- The observed sensitization was not due to altered Ku protein expression levels.
- In vitro data indicated augmented DNA-binding capacity of Ku protein in the presence of aptamers.
Conclusions:
- RNA aptamers targeting the Ku protein can sensitize MCF-7 breast carcinoma cells to DNA-damaging agents like etoposide.
- This sensitization mechanism involves enhanced apoptosis induction.
- Ku-targeting RNA aptamers represent a potential strategy to overcome chemoresistance in breast cancer.
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