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A Multiplexed Luciferase-based Screening Platform for Interrogating Cancer-associated Signal Transduction in Cultured Cells
Published on: July 3, 2013
Targeting the DNA replication stress phenotype of KRAS mutant cancer cells
Tara Al Zubaidi1,2, O H Fiete Gehrisch1,2, Marie-Michelle Genois3
1Department of Radiation Oncology, Massachusetts General Hospital, Harvard Medical School, 55 Fruit Street, Boston, MA, 02114, USA.
Abstract:
Mutant KRAS is a common tumor driver and frequently confers resistance to anti-cancer treatments such as radiation. DNA replication stress in these tumors may constitute a therapeutic liability but is poorly understood. Here, using single-molecule DNA fiber analysis, we first characterized baseline replication stress in a panel of unperturbed isogenic and non-isogenic cancer cell lines. Correlating with the observed enhanced replication stress we found increased levels of cytosolic double-stranded DNA in KRAS mutant compared to wild-type cells. Yet, despite this phenotype replication stress-inducing agents failed to selectively impact KRAS mutant cells, which were protected by CHK1. Similarly, most exogenous stressors studied did not differentially augment cytosolic DNA accumulation in KRAS mutant compared to wild-type cells. However, we found that proton radiation was able to slow fork progression and preferentially induce fork stalling in KRAS mutant cells. Proton treatment also partly reversed the radioresistance associated with mutant KRAS. The cellular effects of protons in the presence of KRAS mutation clearly contrasted that of other drugs affecting replication, highlighting the unique nature of the underlying DNA damage caused by protons. Taken together, our findings provide insight into the replication stress response associated with mutated KRAS, which may ultimately yield novel therapeutic opportunities.
Insights
Mutant KRAS drives cancer and treatment resistance. Proton radiation uniquely targets KRAS-mutant cells by inducing DNA replication stress, offering new therapeutic avenues.
Area of Science:
- Oncology
- Molecular Biology
- Radiation Oncology
Background:
- Mutant KRAS is a key driver in many cancers and confers resistance to therapies like radiation.
- Understanding DNA replication stress in KRAS-mutant tumors is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the baseline replication stress in KRAS-mutant cancer cells.
- To explore the differential effects of various stressors, particularly proton radiation, on KRAS-mutant cells.
Main Methods:
- Single-molecule DNA fiber analysis was used to assess replication stress.
- Cytosolic double-stranded DNA levels were measured.
- Cancer cell lines with and without KRAS mutations were treated with various agents and proton radiation.
Main Results:
- KRAS-mutant cells exhibited enhanced baseline replication stress and increased cytosolic DNA.
- CHK1 protected KRAS-mutant cells from some replication stress-inducing agents.
- Proton radiation uniquely slowed fork progression and induced stalling in KRAS-mutant cells, partially overcoming radioresistance.
Conclusions:
- KRAS mutation is associated with a distinct replication stress response.
- Proton radiation exhibits unique DNA-damaging properties in KRAS-mutant contexts.
- Findings suggest novel therapeutic strategies targeting replication stress in KRAS-driven cancers.
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