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Exploring a kinase inhibitor targeting PI3KCA mutant cancer cells
Dana F AlKharboush1, Maan T Khayat1, Alam Jamal2
1Department of Pharmaceutical Chemistry, Faculty of Pharmacy, King Abdulaziz University, Jeddah, Saudi Arabia.
Abstract:
The PI3K/mTOR signaling pathway is often disrupted in human cancers, with PI3Kα being one of the most mutated kinases. There has been considerable interest in developing small-molecule inhibitors aimed at blocking the mutant PI3Kα-driven phosphatidylinositol 3-kinase (PI3K) signaling pathway as a potential treatment for cancer. In this study, we describe our effort to identify a compound, phenylacetamide-1H-imidazol-5-one (KIM-161), from our in-house oncogenic kinase-targeting inhibitors. KIM-161 showed excellent anti-proliferative activities at sub-nanomolar concentrations, primarily against mutant PI3Kα breast cancer cell lines, when compared with wild-type PI3Kα breast cancer cell lines, producing both dose- and time-dependent effects with an IC50 range of 1.42 - 0.064 µM. Next, we observed that KIM-161 was able to induce ROS production by modulating breast cancer metabolism, suggesting its broad effects on mutant PI3Kα regulated downstream pathways. We also computationally analyzed the binding interactions between KIM-161 and PI3K-alpha (PDB ID: 8EXL). Molecular docking showed that KIM-161 had a docking score of -7.44 Kcal/mol, compared to the reference compound, which had a docking score of -7.67 Kcal/mol. Moreover, molecular dynamics simulation studies demonstrated that the PI3Ka-KIM-161 complex remained stable throughout the 100 ns simulation, when compared to the PI3Ka complex with the co-crystallized inhibitor. These findings present KIM-161 as a promising lead, providing valuable insights into treatment approaches and resistance mechanisms associated with PI3K inhibitors in specific PIK3CA-mutant cancer subtypes.
Insights
Researchers identified phenylacetamide-1H-imidazol-5-one (KIM-161) as a potent inhibitor targeting mutant PI3Kα in breast cancer. KIM-161 demonstrates significant anti-proliferative effects and modulates cancer metabolism, offering a promising therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Medicinal Chemistry
Background:
- The PI3K/mTOR pathway is frequently dysregulated in human cancers.
- Mutations in PI3Kα are common, driving cancer progression.
- Targeting mutant PI3Kα is a key strategy for cancer therapy.
Purpose of the Study:
- To identify and characterize novel small-molecule inhibitors of mutant PI3Kα.
- To evaluate the anti-cancer efficacy and mechanism of action of a novel compound, KIM-161.
- To computationally analyze the binding interactions of KIM-161 with PI3Kα.
Main Methods:
- In vitro screening of in-house kinase inhibitors.
- Cell proliferation assays (IC50 determination) on breast cancer cell lines.
- Reactive oxygen species (ROS) production assays.
- Computational analysis including molecular docking and molecular dynamics simulations.
Main Results:
- KIM-161 exhibited potent anti-proliferative activity against mutant PI3Kα breast cancer cells (IC50 range 1.42–0.064 µM).
- KIM-161 induced ROS production and modulated cancer cell metabolism.
- Computational studies confirmed stable binding of KIM-161 to PI3Kα (PDB ID: 8EXL).
Conclusions:
- KIM-161 is a promising lead compound for targeting PIK3CA-mutant breast cancers.
- The findings provide insights into potential treatment strategies and resistance mechanisms.
- KIM-161's mechanism involves ROS induction and metabolic modulation.
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