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Updated: Jun 26, 2026

A Semi-Quantitative Drug Affinity Responsive Target Stability (DARTS) assay for studying Rapamycin/mTOR interaction
Published on: August 27, 2019
Rapamycin administration in humans blocks the contraction-induced increase in skeletal muscle protein synthesis
Micah J Drummond1, Christopher S Fry, Erin L Glynn
1Departments of Physical Therapy, University of Texas Medical Branch, Galveston, 77555-1144, USA.
Abstract:
Muscle protein synthesis and mTORC1 signalling are concurrently stimulated following muscle contraction in humans. In an effort to determine whether mTORC1 signalling is essential for regulating muscle protein synthesis in humans, we treated subjects with a potent mTORC1 inhibitor (rapamycin) prior to performing a series of high-intensity muscle contractions. Here we show that rapamycin treatment blocks the early (1-2 h) acute contraction-induced increase ( approximately 40%) in human muscle protein synthesis. In addition, several downstream components of the mTORC1 signalling pathway were also blunted or blocked by rapamycin. For instance, S6K1 phosphorylation (Thr421/Ser424) was increased post-exercise 6-fold in the control group while being unchanged with rapamycin treatment. Furthermore, eEF2 phosphorylation (Thr56) was reduced by approximately 25% post-exercise in the control group but phosphorylation following rapamycin treatment was unaltered, indicating that translation elongation was inhibited. Rapamycin administration prior to exercise also reduced the ability of raptor to associate with mTORC1 during post-exercise recovery. Surprisingly, rapamycin treatment prior to resistance exercise completely blocked the contraction-induced increase in the phosphorylation of ERK1/2 (Thr202/Tyr204) and blunted the increase in MNK1 (Thr197/202) phosphorylation. However, the phosphorylation of a known target of MNK1, eIF4E (Ser208), was similar in both groups (P > 0.05) which is consistent with the notion that rapamycin does not directly inhibit MAPK signalling. We conclude that mTORC1 signalling is, in part, playing a key role in regulating the contraction-induced stimulation of muscle protein synthesis in humans, while dual activation of mTORC1 and ERK1/2 stimulation may be required for full stimulation of human skeletal muscle protein synthesis.
Insights
Rapamycin, an mTORC1 inhibitor, blocks exercise-induced muscle protein synthesis in humans. This highlights the crucial role of mTORC1 signaling in muscle growth and repair following physical activity.
Area of Science:
- Exercise Physiology
- Molecular Biology
- Biochemistry
Background:
- Muscle contraction stimulates muscle protein synthesis (MPS) and mTORC1 signaling in humans.
- The essentiality of mTORC1 signaling for exercise-induced MPS requires elucidation.
Purpose of the Study:
- To determine if mTORC1 signaling is essential for regulating muscle protein synthesis after muscle contractions in humans.
- To investigate the effects of mTORC1 inhibition on downstream signaling pathways and MPS.
Main Methods:
- Subjects received rapamycin (mTORC1 inhibitor) before high-intensity muscle contractions.
- Muscle protein synthesis rates and signaling pathway components (e.g., S6K1, eEF2, ERK1/2, MNK1, eIF4E phosphorylation) were assessed post-exercise.
Main Results:
- Rapamycin treatment blocked the acute increase in human muscle protein synthesis post-contraction.
- Key downstream mTORC1 signaling components, including S6K1 and eEF2 phosphorylation, were blunted or blocked.
- Rapamycin also inhibited contraction-induced ERK1/2 and MNK1 phosphorylation, suggesting interplay between mTORC1 and MAPK pathways.
Conclusions:
- mTORC1 signaling plays a significant role in regulating contraction-induced muscle protein synthesis in humans.
- Dual activation of mTORC1 and ERK1/2 signaling pathways may be necessary for maximal stimulation of human skeletal muscle protein synthesis.
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