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.

Abstract

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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