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A Semi-Quantitative Drug Affinity Responsive Target Stability DARTS assay for studying Rapamycin/mTOR interaction
Published on: August 27, 2019
Investigation of Macrocyclic mTOR Modulators of Rapamycin Binding Site via Pharmacoinformatics Approaches
Shraddha Parate1, Vikas Kumar2, Jong Chan Hong3
1Plant Molecular Biology and Biotechnology Research Center (PMBBRC), Division of Applied Life Science, Gyeongsang National University (GNU), 501 Jinju-daero, Jinju 52828, South Korea; Department of Chemistry and Molecular Biology, University of Gothenburg, 405 30 Göteborg, Sweden.
Abstract:
The PI3K/Akt/mTOR is an essential intracellular signaling pathway in which the serine/threonine mTOR kinase portrays a major role in cell growth, proliferation and survival. The mTOR kinase is frequently dysregulated in a broad spectrum of cancers, thus making it a potential target. Rapamycin and its analogs (rapalogs) allosterically inhibit mTOR, thereby dodging the deleterious effects prompted by ATP-competitive mTOR inhibitors. However, the available mTOR allosteric site inhibitors exhibit low oral bioavailability and suboptimal solubility. Bearing in mind this narrow therapeutic window of the current allosteric mTOR inhibitors, an in silico study was designed in search of new macrocyclic inhibitors. The macrocycles from the ChemBridge database (12,677 molecules) were filtered for their drug-likeness properties and the procured compounds were subjected for molecular docking within the binding cleft between FKBP25 and FRB domains of mTOR. The docking analysis resulted with 15 macrocycles displaying higher scores than the selective mTOR allosteric site inhibitor, DL001. The docked complexes were refined by subsequent molecular dynamics simulations for a period of 100 ns. Successive binding free energy computation revealed a total of 7 macrocyclic compounds (HITS) demonstrating better binding affinity than DL001, towards mTOR. The consequent assessment of pharmacokinetic properties resulted in HITS with similar or better properties than the selective inhibitor, DL001. The HITS from this investigation could act as effective mTOR allosteric site inhibitors and serve as macrocyclic scaffolds for developing compounds targeting the dysregulated mTOR.
Insights
Researchers identified novel macrocyclic compounds as potential allosteric inhibitors of the mTOR pathway, crucial for cancer treatment. These compounds show promising binding affinity and pharmacokinetic properties, offering new therapeutic scaffolds for targeting cancer.
Area of Science:
- Biochemistry
- Pharmacology
- Computational Chemistry
Background:
- The PI3K/Akt/mTOR pathway regulates cell growth, proliferation, and survival.
- mTOR kinase is a key target in various cancers due to its frequent dysregulation.
- Current allosteric mTOR inhibitors (rapalogs) have limitations in oral bioavailability and solubility.
Purpose of the Study:
- To identify novel macrocyclic inhibitors targeting the allosteric site of mTOR.
- To overcome the limitations of existing allosteric mTOR inhibitors.
Main Methods:
- In silico screening of 12,677 macrocycles from the ChemBridge database.
- Molecular docking of filtered compounds into the mTOR binding cleft.
- Refinement of docked complexes using 100 ns molecular dynamics simulations.
- Binding free energy computations and pharmacokinetic property assessments.
Main Results:
- 15 macrocycles showed higher docking scores than the reference inhibitor DL001.
- 7 macrocyclic compounds (HITS) exhibited superior binding affinity to mTOR compared to DL001.
- Identified HITS possess comparable or improved pharmacokinetic properties over DL001.
Conclusions:
- The identified macrocyclic compounds are potential candidates for novel mTOR allosteric site inhibitors.
- These HITS can serve as valuable scaffolds for developing new anti-cancer therapeutics targeting dysregulated mTOR.
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