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Anticancer compound XL765 as PI3K/mTOR dual inhibitor: A structural insight into the inhibitory mechanism using
Mohd Rehan1,2
1King Fahd Medical Research Center, King Abdulaziz University, Jeddah, Saudi Arabia.
Abstract:
The PI3K-AKT-mTOR pathway is often a commonly disrupted pathway in human cancer and, therefore, it is widely exploited for cancer therapy. The inhibitors for the important proteins of the pathway including PI3K and mTOR have been increasingly designed. The dual inhibitors targeting PI3K and mTOR both have proven to be more effective than those targeting single protein only. An orally-active compound XL765 is well established as PI3K/mTOR dual inhibitor and have shown in vitro and in vivo anticancer activity against a variety of cancer types and is undergoing clinical trials. The present study explored the exact binding pose and the the interactive forces holding XL765 within the active sites of PI3Kγ and mTOR using molecular docking analyses. The XL765 interacting residues of both the proteins were delineated and the degree of participation in binding was estimated by various methods. In the process, among the interacting residues of PI3Kγ, the Lys-890 and the Met-953 were recognized as the key residues involved in XL765 binding. While, in mTOR case, the Trp-2239 was recognized as the key residue playing role in the XL765 binding. In order to explore the better inhibitors, the study also generated combinatorial chemical library by modifying the scaffold considered from XL765. The virtual screening of the generated compound library led to identification of six novel promising compounds proposed as PI3K/mTOR dual inhibitors. Thus, the present work will through light on the drug inhibitory mechanism of XL765 for PI3K and mTOR, and will also assist in designing novel efficacious drug candidates.
Insights
This study investigates the PI3K-AKT-mTOR pathway inhibitors, detailing XL765
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- The PI3K-AKT-mTOR pathway is frequently dysregulated in human cancers.
- Targeting this pathway with inhibitors is a key cancer therapy strategy.
- Dual PI3K/mTOR inhibitors show enhanced efficacy compared to single-target agents.
Purpose of the Study:
- To elucidate the binding interactions of the PI3K/mTOR inhibitor XL765.
- To identify key amino acid residues involved in XL765 binding to PI3Kγ and mTOR.
- To discover novel PI3K/mTOR dual inhibitors through virtual screening.
Main Methods:
- Molecular docking analyses to determine binding poses and interactions.
- Identification of key interacting residues in PI3Kγ (Lys-890, Met-953) and mTOR (Trp-2239).
- Generation and virtual screening of a combinatorial chemical library based on the XL765 scaffold.
Main Results:
- Detailed binding mechanisms of XL765 with PI3Kγ and mTOR were elucidated.
- Specific key residues critical for XL765 binding were identified.
- Six novel compounds were identified as potential PI3K/mTOR dual inhibitors.
Conclusions:
- The study provides insights into the drug-target interactions of XL765.
- Identified key residues can guide future drug design efforts.
- Novel compounds offer potential for developing more effective cancer therapeutics.
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