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N-Carbamoyl Alanine-Mediated Selective Targeting for CHEK2-Null Colorectal Cancer
Anas Ahmad1, Ravi Prakash2, Mohd Shahnawaz Khan3
1Chemical Biology Unit, Institute of Nano Science and Technology, Knowledge City, Sector-81, Mohali 140306, Punjab, India.
Abstract:
Colorectal cancer (CRC) is one of the major causes of cancer-linked mortality worldwide. Selective therapeutic approaches toward cancer are the need of the hour to combat cancer. Synthetic lethality is a pragmatic targeted cancer therapy in which cancer cell-specific vulnerabilities such as genetic defects/somatic mutations are exploited for selective cancer therapy by targeting genetic interactors (synthetic lethal interactors) of such mutation/defects present in cancer cells. In this study, we investigated the synthetic lethal interaction between checkpoint kinase 2 (CHEK2) and peroxiredoxin-2 (PRDX2) in CRC cells to precisely target CRC cells having CHEK2 defects. We have performed siRNA-mediated silencing and n-carbamoyl alanine (NCA)-mediated inhibition of PRDX2 in CHEK2-null HCT116 cells to confirm the synthetic lethal (SL) interaction between PRDX2 and CHEK2 as the cell population reduced significantly after silencing/inhibition of PRDX2. Additionally, treatment with NCA resulted in an increased level of total ROS in both cell types (HCT116 and CHEK2-null HCT116 cells), which further confirms that inhibition of PRDX2 results in an increased ROS level, which are mainly responsible for DNA double-strand breaks (DSBs). ROS-induced DNA DSBs get repaired in HCT116 cells, in which CHEK2 is in the normal functional state, but these DNA DSBs persist in CHEK2-null HCT116 cells as confirmed by the immunofluorescence analysis of 53BP1 and γ-H2AX. Finally, CHEK2-null HCT116 cells undergo apoptosis due to persistent DNA damage as confirmed by immunofluorescence analysis of cleaved caspase-3. The findings of this study suggest that PRDX2 has a SL interaction with CHEK2, and this interaction can be exploited for the targeted cancer therapy using NCA as a drug inhibitor of PRDX2 for the therapy of colorectal cancer having CHEK2 defects. Further studies are warranted to confirm the interaction in the preclinical model.
Insights
Checkpoint kinase 2 (CHEK2) defects in colorectal cancer cells create a synthetic lethal vulnerability with peroxiredoxin-2 (PRDX2). Inhibiting PRDX2 selectively targets and eliminates CHEK2-deficient cancer cells by inducing DNA damage and apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Colorectal cancer (CRC) is a leading cause of cancer mortality globally.
- Targeted cancer therapies exploiting synthetic lethality offer a promising approach for selective cancer treatment.
- Synthetic lethality involves targeting genetic interactors of cancer-specific mutations.
Purpose of the Study:
- To investigate the synthetic lethal interaction between checkpoint kinase 2 (CHEK2) and peroxiredoxin-2 (PRDX2) in colorectal cancer cells.
- To explore the potential of targeting PRDX2 for selective therapy in CRC with CHEK2 defects.
Main Methods:
- Utilized siRNA-mediated silencing and n-carbamoyl alanine (NCA)-mediated inhibition of PRDX2 in CHEK2-null HCT116 cells.
- Assessed cell population reduction, reactive oxygen species (ROS) levels, and DNA double-strand breaks (DSBs) via immunofluorescence (53BP1, γ-H2AX).
- Analyzed apoptosis induction using cleaved caspase-3 immunofluorescence.
Main Results:
- Silencing or inhibiting PRDX2 significantly reduced the population of CHEK2-deficient CRC cells, confirming a synthetic lethal interaction.
- PRDX2 inhibition led to increased ROS levels and subsequent DNA DSBs.
- Persistent DNA damage and apoptosis were observed in CHEK2-null cells following PRDX2 inhibition, unlike normal HCT116 cells.
Conclusions:
- Peroxiredoxin-2 (PRDX2) exhibits a synthetic lethal interaction with checkpoint kinase 2 (CHEK2) in colorectal cancer.
- N-carbamoyl alanine (NCA) can be utilized as a therapeutic agent to target PRDX2 in CRC patients with CHEK2 defects.
- This strategy offers a potential targeted therapy for a specific subset of colorectal cancers.
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