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Updated: Nov 2, 2025

A Semi-Quantitative Drug Affinity Responsive Target Stability DARTS assay for studying Rapamycin/mTOR interaction
Published on: August 27, 2019
Comparative metabolomics and lipidomics study to evaluate the metabolic differences between first- and
Md Mamunur Rashid1,2, Hyunbeom Lee1, Jinyoung Park1
1Molecular Recognition Research Center, Korea Institute of Science and Technology, Seoul, South Korea.
Abstract:
Mammalian or mechanistic target of rapamycin (mTOR) drives its fundamental cellular functions through two distinct catalytic subunits, mTORC1 and mTORC2, and is frequently dysregulated in most cancers. To treat cancers, developed mTOR inhibitors have been classified into first and second generations based on their ability to inhibit single (first-generation) and dual (second-generation) mTOR subunits. However, the underlying metabolic differences due to the effects of first- and second-generation mTOR inhibitors have not been clearly evaluated. In this study, rapamycin (sirolimus) and AZD8055 and PP242 were selected as first- and second-generation mTOR inhibitors, respectively, to evaluate the metabolic differences due to these two generations of mTOR inhibitors after a single oral dose using untargeted metabolomics and lipidomics approaches. The metabolic differences at each time point were compared using multivariate analysis. The multivariate and data analyses showed that metabolic disparity was more prominent within 8 h after drug administration and a broad class of metabolites were affected by the administration of both generations of mTOR inhibitors. Among the metabolite classes, changes in the pattern of fatty acids and glycerophospholipids were opposite, specifically at 4 and 8 h between the two generations of mTOR inhibitors. We speculate that the inhibition of the mTORC2 subunit by the second-generation mTOR inhibitor may have resulted in a distinct metabolic pattern between the first- and second-generation inhibitors. Finally, the findings of this study could assist in a more detailed understanding of the key metabolic differences caused by first- and second-generation mTOR inhibitors.
Insights
First- and second-generation mTOR inhibitors cause distinct metabolic changes, particularly in fatty acids and glycerophospholipids within 8 hours. This study highlights key metabolic differences for better cancer treatment strategies.
Area of Science:
- Biochemistry
- Oncology
- Metabolomics
Background:
- Mammalian target of rapamycin (mTOR) pathway is crucial for cellular functions and often dysregulated in cancers.
- mTOR inhibitors are classified into first-generation (single mTOR subunit inhibition) and second-generation (dual mTOR subunit inhibition).
- Metabolic consequences of these inhibitor generations remain underexplored.
Purpose of the Study:
- To evaluate the distinct metabolic differences induced by first- and second-generation mTOR inhibitors.
- To compare the effects of rapamycin (first-generation) versus AZD8055 and PP242 (second-generation) on cellular metabolism.
Main Methods:
- Untargeted metabolomics and lipidomics approaches were employed.
- Single oral dose administration of mTOR inhibitors in a mammalian model.
- Multivariate analysis was used to compare metabolic profiles at various time points.
Main Results:
- Significant metabolic disparity was observed within 8 hours post-administration for both inhibitor generations.
- Fatty acid and glycerophospholipid patterns showed opposite changes between first- and second-generation inhibitors at 4 and 8 hours.
- Both inhibitor generations affected a broad range of metabolites.
Conclusions:
- Second-generation mTOR inhibitors, by inhibiting mTORC2, may induce unique metabolic profiles compared to first-generation inhibitors.
- Understanding these metabolic differences is crucial for optimizing cancer therapy.
- Findings provide insights into the differential metabolic effects of mTOR inhibitor generations.
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