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Targeting the DNA Damage Response Pathways and Replication Stress in Colorectal Cancer
Erika Durinikova1, Nicole M Reilly1,2, Kristi Buzo1,2
1Candiolo Cancer Institute, FPO - IRCCS, Candiolo, Torino, Italy.
Purpose:
Genomic instability is a hallmark of cancer and targeting DNA damage response (DDR) is emerging as a promising therapeutic strategy in different solid tumors. The effectiveness of targeting DDR in colorectal cancer has not been extensively explored.
Experimental Design:
We challenged 112 cell models recapitulating the genomic landscape of metastatic colorectal cancer with ATM, ATR, CHK1, WEE1, and DNA-PK inhibitors, in parallel with chemotherapeutic agents. We focused then on ATR inhibitors (ATRi) and, to identify putative biomarkers of response and resistance, we analyzed at multiple levels colorectal cancer models highly sensitive or resistant to these drugs.
Results:
We found that around 30% of colorectal cancers, including those carrying KRAS and BRAF mutations and unresponsive to targeted agents, are sensitive to at least one DDR inhibitor. By investigating potential biomarkers of response to ATRi, we found that ATRi-sensitive cells displayed reduced phospho-RPA32 foci at basal level, while ATRi-resistant cells showed increased RAD51 foci formation in response to replication stress. Lack of ATM and RAD51C expression was associated with ATRi sensitivity. Analysis of mutational signatures and HRDetect score identified a subgroup of ATRi-sensitive models. Organoids derived from patients with metastatic colorectal cancer recapitulated findings obtained in cell lines.
Conclusions:
In conclusion, a subset of colorectal cancers refractory to current therapies could benefit from inhibitors of DDR pathways and replication stress. A composite biomarker involving phospho-RPA32 and RAD51 foci, lack of ATM and RAD51C expression, as well as analysis of mutational signatures could be used to identify colorectal cancers likely to respond to ATRi.
Insights
Genomic instability is a hallmark of cancer. Targeting DNA damage response (DDR) pathways, particularly ATR inhibitors, shows promise for a subset of colorectal cancers resistant to current therapies.
Area of Science:
- Oncology
- Cancer Genomics
- Drug Discovery
Background:
- Genomic instability is a key feature of cancer.
- Targeting DNA damage response (DDR) pathways is a promising therapeutic strategy for solid tumors.
- The efficacy of DDR inhibition in colorectal cancer remains underexplored.
Purpose of the Study:
- To investigate the effectiveness of targeting DDR pathways in colorectal cancer models.
- To identify biomarkers for response and resistance to ATR inhibitors (ATRi) in colorectal cancer.
Main Methods:
- Screened 112 metastatic colorectal cancer cell models with ATM, ATR, CHK1, WEE1, and DNA-PK inhibitors.
- Focused on ATR inhibitors and analyzed sensitive/resistant models for biomarkers.
- Utilized organoids derived from patients with metastatic colorectal cancer.
Main Results:
- Approximately 30% of colorectal cancers, including KRAS/BRAF-mutated types, responded to at least one DDR inhibitor.
- ATRi-sensitive cells showed reduced basal phospho-RPA32 foci; resistant cells had increased RAD51 foci upon replication stress.
- Lack of ATM/RAD51C expression and specific mutational signatures correlated with ATRi sensitivity.
Conclusions:
- A subset of colorectal cancers refractory to existing treatments may benefit from DDR and replication stress inhibitors.
- A composite biomarker including phospho-RPA32, RAD51 foci, ATM/RAD51C expression, and mutational signatures can predict ATRi response.
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