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Nanoparticle-Mediated PRDX2 Inhibition for Specific Targeting of CHK2-Null Colorectal Cancer
Anas Ahmad1, Ravi Prakash2, Mohd Shahnawaz Khan3
1Chemical Biology Unit, Institute of Nano Science and Technology, Knowledge City, Sector-81, Mohali140306, Punjab, India.
Abstract:
Synthetic lethality is a pragmatic targeted cancer therapy approach in which cancer cells harboring genetic alterations are exploited for the specific killing of cancer cells. Earlier, we have established a synthetic lethal (SL) interaction between two genes that are CHK2 and PRDX2 in colorectal cancer (CRC) cells. The SL interaction between CHK2 and PRDX2 resulted in selective targeting of CHK2-defective CRC cells. N-Carbamoyl alanine (NCA) is a PRDX2 inhibitor and is a peptide-like organic compound, which degrades after oral administration in harsh gastric pH. To overcome the limitations of NCA, a chitosan-based nanocarrier was developed for the entrapment of NCA. In this study, we targeted the SL interaction between PRDX2 and CHK2 using NCA-loaded chitosan nanoparticles (NCA-Chit NPs) to selectively inhibit the CHK2-null HCT116 cells. NCA-Chit NPs were assessed for various physicochemical characterizations such as the hydrodynamic diameter (size), zeta potential, and polydispersity index using a Zetasizer. Additionally, morphological studies for the shape and size of NPs were confirmed by transmission electron microscopy, scanning electron microscopy, and atomic force microscopy. Cellular uptake of NPs was confirmed using confocal microscopy, which exhibited that nanoparticles were able to internalize into the HCT116 cells. Blank Chit NPs were found to be cytocompatible as they did not exert any cytotoxic effects on hTERT, L929, and Caco-2 cells (intestinal epithelial cells). Importantly, NCA-Chit NPs were quite hemocompatible also. In the form of an NCA-chitosan nanoformulation, the efficacy was enhanced by about 8 times compared to free form of NCA towards selective killing of CHK2-null HCT116 cells as compared to HCT116 cells. The chitosan-based nanoformulation for NCA was developed to augment the efficacy of the NCA for enhanced cell death of colorectal cancer cells having CHK2 defects.
Insights
Researchers developed chitosan nanoparticles loaded with N-Carbamoyl alanine (NCA) to target a synthetic lethal (SL) interaction in colorectal cancer (CRC). This nanoformulation selectively kills CHK2-null CRC cells, enhancing treatment efficacy.
Area of Science:
- Biomedical Engineering
- Cancer Biology
- Nanotechnology
Background:
- Synthetic lethality (SL) exploits genetic vulnerabilities in cancer cells for targeted therapy.
- A synthetic lethal interaction between CHK2 and PRDX2 genes was identified in colorectal cancer (CRC).
- N-Carbamoyl alanine (NCA) inhibits PRDX2 but degrades in gastric conditions, limiting its oral effectiveness.
Purpose of the Study:
- To develop a chitosan-based nanocarrier for NCA delivery.
- To target the PRDX2-CHK2 SL interaction in CHK2-null colorectal cancer cells using NCA-loaded chitosan nanoparticles (NCA-Chit NPs).
- To enhance the therapeutic efficacy of NCA for colorectal cancer treatment.
Main Methods:
- NCA was encapsulated into chitosan nanoparticles (NCA-Chit NPs).
- Physicochemical characterizations (size, zeta potential, morphology) and cellular uptake studies were performed.
- Cytocompatibility and hemocompatibility of blank and NCA-Chit NPs were evaluated.
- The efficacy of NCA-Chit NPs in selectively killing CHK2-null HCT116 cells was compared to free NCA.
Main Results:
- NCA-Chit NPs demonstrated suitable physicochemical properties and cellular internalization.
- Blank chitosan nanoparticles showed no cytotoxicity to tested cell lines and were hemocompatible.
- NCA-Chit NPs exhibited an 8-fold enhancement in selectively killing CHK2-null HCT116 cells compared to free NCA.
Conclusions:
- Chitosan-based nanoformulation effectively delivers NCA, overcoming its degradation limitations.
- NCA-Chit NPs represent a promising strategy for targeted colorectal cancer therapy by exploiting the PRDX2-CHK2 synthetic lethality.
- This approach enhances cell death in colorectal cancer cells with CHK2 defects.
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