Akt mediated ROS-dependent selective targeting of mutant KRAS tumors
Kartini Iskandar1, Majidah Rezlan1, Shazib Pervaiz2
1National University of Singapore (ROS and Tumor Biology), Physiology, Singapore.
Abstract:
Reactive oxygen species (ROS) play a critical role in a variety of cellular processes, ranging from cell survival and proliferation to cell death. Previously, we reported the ability of a small molecule compound, C1, to induce ROS dependent autophagy associated apoptosis in human cancer cell lines and primary tumor cells (Wong C. et al. 2010). Our ongoing investigations have unraveled a hitherto undefined novel signaling network involving hyper-phosphorylation of Akt and Akt-mediated ROS production in cancer cell lines. Interestingly, drug-induced Akt activation is selectively seen in cell lines that carry mutant KRAS; HCT116 cells that carry the V13D KRAS mutation respond favorably to C1 while HT29 cells expressing wild type KRAS are relatively resistant. Of note, not only does the compound target mutant KRAS expressing cells but also induces RAS activation as evidenced by the PAK pull down assay. Corroborating this, pharmacological inhibition as well as siRNA mediated silencing of KRAS or Akt, blocked C1-induced ROS production and rescued tumor colony forming ability in HCT116 cells. To further confirm the involvement of KRAS, we made use of mutant KRAS transformed RWPE-1 prostate epithelial cells. Notably, drug-induced ROS generation and death sensitivity was significantly higher in RWPE-1-KRAS cells than the RWPE-1-vector cells, thus confirming the results obtained with mutant KRAS colorectal carcinoma cell line. Lastly, we made use of HCT116 mutant KRAS knockout cells (KO) where the mutant KRAS allele had been deleted, thus expressing a single wild-type KRAS allele. Exposure of the KO cells to C1 failed to induce Akt activation and mitochondrial ROS production. Taken together, results show the involvement of activated Akt in ROS-mediated selective targeting of mutant KRAS expressing tumors, which could have therapeutic implications given the paucity of chemotherapeutic strategies specifically targeting KRAS mutant cancers.
Insights
A novel compound C1 selectively targets cancer cells with mutant KRAS by activating Akt and inducing reactive oxygen species (ROS), leading to cell death. This discovery offers potential new therapies for KRAS-mutant cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Reactive oxygen species (ROS) are crucial in cellular processes like survival, proliferation, and death.
- Previous work demonstrated compound C1 induces ROS-dependent apoptosis in cancer cells.
- A novel signaling network involving Akt hyper-phosphorylation and Akt-mediated ROS production has been identified.
Purpose of the Study:
- To investigate the novel signaling network involving Akt and ROS in cancer cells.
- To determine the role of KRAS mutations in the response to compound C1.
- To explore the therapeutic potential of targeting mutant KRAS-expressing tumors.
Main Methods:
- Utilized human cancer cell lines with varying KRAS mutation statuses (HCT116, HT29).
- Employed pharmacological inhibition and siRNA to silence KRAS and Akt.
- Used mutant KRAS-transformed RWPE-1 prostate epithelial cells and KRAS knockout cells.
Main Results:
- Compound C1 selectively activated Akt and induced ROS in KRAS-mutant cell lines (HCT116, RWPE-1-KRAS).
- Silencing KRAS or Akt blocked C1-induced ROS production and restored tumor colony formation.
- C1 failed to induce Akt activation and ROS in KRAS knockout cells, confirming KRAS dependence.
Conclusions:
- Activated Akt plays a key role in ROS-mediated targeting of mutant KRAS-expressing tumors.
- Compound C1 demonstrates selective efficacy against KRAS-mutant cancer cells.
- These findings suggest potential therapeutic strategies for KRAS-mutant cancers.
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