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Updated: Aug 20, 2025

Monitoring eIF4F Assembly by Measuring eIF4E-eIF4G Interaction in Live Cells
Published on: May 1, 2020
Activation of eIF4E-binding-protein-1 rescues mTORC1-induced sarcopenia by expanding lysosomal degradation capacity
Elisa M Crombie1, Seonyoung Kim1, Stuart Adamson2
1Department of Physiology, Yong Loo Lin School of Medicine, National University of Singapore, Singapore.
Background:
Chronic mTORC1 activation in skeletal muscle is linked with age-associated loss of muscle mass and strength, known as sarcopenia. Genetic activation of mTORC1 by conditionally ablating mTORC1 upstream inhibitor TSC1 in skeletal muscle accelerates sarcopenia development in adult mice. Conversely, genetic suppression of mTORC1 downstream effectors of protein synthesis delays sarcopenia in natural aging mice. mTORC1 promotes protein synthesis by activating ribosomal protein S6 kinases (S6Ks) and inhibiting eIF4E-binding proteins (4EBPs). Whole-body knockout of S6K1 or muscle-specific over-expression of a 4EBP1 mutant transgene (4EBP1mt), which is resistant to mTORC1-mediated inhibition, ameliorates muscle loss with age and preserves muscle function by enhancing mitochondria activities, despite both transgenic mice showing retarded muscle growth at a young age. Why repression of mTORC1-mediated protein synthesis can mitigate progressive muscle atrophy and dysfunction with age remains unclear.
Methods:
Mice with myofiber-specific knockout of TSC1 (TSC1mKO), in which mTORC1 is hyperactivated in fully differentiated myofibers, were used as a mouse model of sarcopenia. To elucidate the role of mTORC1-mediated protein synthesis in regulating muscle mass and physiology, we bred the 4EBP1mt transgene or S6k1 floxed mice into the TSC1mKO mouse background to generate 4EBP1mt-TSC1mKO or S6K1-TSC1mKO mice, respectively. Functional and molecular analyses were performed to assess their role in sarcopenia development.
Results:
Here, we show that 4EBP1mt-TSC1mKO, but not S6K1-TSC1mKO, preserved muscle mass (36.7% increase compared with TSC1mKO, P < 0.001) and strength (36.8% increase compared with TSC1mKO, P < 0.01) at the level of control mice. Mechanistically, 4EBP1 activation suppressed aberrant protein synthesis (two-fold reduction compared with TSC1mKO, P < 0.05) and restored autophagy flux without relieving mTORC1-mediated inhibition of ULK1, an upstream activator of autophagosome initiation. We discovered a previously unidentified phenotype of lysosomal failure in TSC1mKO mouse muscle, in which the lysosomal defect was also conserved in the naturally aged mouse muscle, whereas 4EBP1 activation enhanced lysosomal protease activities to compensate for impaired autophagy induced by mTORC1 hyperactivity. Consequently, 4EBP1 activation relieved oxidative stress to prevent toxic aggregate accumulation (0.5-fold reduction compared with TSC1mKO, P < 0.05) in muscle and restored mitochondrial homeostasis and function.
Conclusions:
We identify 4EBP1 as a communication hub coordinating protein synthesis and degradation to protect proteostasis, revealing therapeutic potential for activating lysosomal degradation to mitigate sarcopenia.
Insights
Activating 4EBP1 in skeletal muscle prevents age-related muscle loss and dysfunction by enhancing lysosomal degradation and restoring mitochondrial function. This finding reveals a therapeutic strategy for mitigating sarcopenia.
Area of Science:
- Muscle physiology
- Molecular biology
- Aging research
Background:
- Chronic activation of mTORC1 in skeletal muscle contributes to sarcopenia, the age-associated loss of muscle mass and strength.
- Genetic manipulation of mTORC1 signaling, either by activating it (TSC1 ablation) or inhibiting its downstream effectors (S6K1 knockout or 4EBP1 mutant expression), impacts sarcopenia development and muscle function.
- The precise mechanisms by which suppressing mTORC1-mediated protein synthesis can counteract age-related muscle atrophy and dysfunction remain incompletely understood.
Purpose of the Study:
- To investigate the role of mTORC1-mediated protein synthesis in regulating muscle mass and physiology during aging.
- To determine whether inhibiting protein synthesis via 4EBP1 activation or S6K1 inhibition can ameliorate sarcopenia in a mouse model with hyperactivated mTORC1.
- To elucidate the molecular mechanisms underlying the protective effects of 4EBP1 activation against sarcopenia.
Main Methods:
- Generation of transgenic mice with muscle-specific knockout of TSC1 (TSC1mKO) to model sarcopenia.
- Breeding 4EBP1 mutant (4EBP1mt) or S6K1 floxed mice into the TSC1mKO background to create 4EBP1mt-TSC1mKO and S6K1-TSC1mKO mice.
- Functional and molecular analyses, including assessment of muscle mass, strength, protein synthesis, autophagy flux, lysosomal function, oxidative stress, and mitochondrial homeostasis.
Main Results:
- Muscle-specific activation of 4EBP1 (4EBP1mt-TSC1mKO) significantly preserved muscle mass and strength compared to TSC1mKO mice, whereas S6K1 inhibition did not.
- 4EBP1 activation suppressed aberrant protein synthesis and restored autophagy flux, while also enhancing lysosomal protease activity to compensate for mTORC1-induced autophagy impairment.
- Lysosomal failure was identified as a key phenotype in TSC1mKO muscle, which was ameliorated by 4EBP1 activation, leading to reduced oxidative stress, prevention of toxic aggregate accumulation, and restored mitochondrial function.
Conclusions:
- 4EBP1 acts as a crucial regulator coordinating protein synthesis and degradation to maintain proteostasis in skeletal muscle.
- Activation of lysosomal degradation pathways presents a promising therapeutic strategy for mitigating sarcopenia.
- Targeting 4EBP1 and enhancing lysosomal function could offer a novel approach to combat age-related muscle decline.
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