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Body Composition and Metabolic Caging Analysis in High Fat Fed Mice
Published on: May 24, 2018
EPRS is a critical mTORC1-S6K1 effector that influences adiposity in mice
Abul Arif1, Fulvia Terenzi1, Alka A Potdar2
1Department of Cellular and Molecular Medicine, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195, USA.
Abstract:
Metabolic pathways that contribute to adiposity and ageing are activated by the mammalian target of rapamycin complex 1 (mTORC1) and p70 ribosomal protein S6 kinase 1 (S6K1) axis. However, known mTORC1-S6K1 targets do not account for observed loss-of-function phenotypes, suggesting that there are additional downstream effectors of this pathway. Here we identify glutamyl-prolyl-tRNA synthetase (EPRS) as an mTORC1-S6K1 target that contributes to adiposity and ageing. Phosphorylation of EPRS at Ser999 by mTORC1-S6K1 induces its release from the aminoacyl tRNA multisynthetase complex, which is required for execution of noncanonical functions of EPRS beyond protein synthesis. To investigate the physiological function of EPRS phosphorylation, we generated Eprs knock-in mice bearing phospho-deficient Ser999-to-Ala (S999A) and phospho-mimetic (S999D) mutations. Homozygous S999A mice exhibited low body weight, reduced adipose tissue mass, and increased lifespan, similar to S6K1-deficient mice and mice with adipocyte-specific deficiency of raptor, an mTORC1 constituent. Substitution of the EprsS999D allele in S6K1-deficient mice normalized body mass and adiposity, indicating that EPRS phosphorylation mediates S6K1-dependent metabolic responses. In adipocytes, insulin stimulated S6K1-dependent EPRS phosphorylation and release from the multisynthetase complex. Interaction screening revealed that phospho-EPRS binds SLC27A1 (that is, fatty acid transport protein 1, FATP1), inducing its translocation to the plasma membrane and long-chain fatty acid uptake. Thus, EPRS and FATP1 are terminal mTORC1-S6K1 axis effectors that are critical for metabolic phenotypes.
Insights
Scientists discovered glutamyl-prolyl-tRNA synthetase (EPRS) as a key factor in obesity and aging, regulated by the mTORC1-S6K1 pathway. Its phosphorylation controls fat metabolism and lifespan.
Area of Science:
- Cellular Biology
- Metabolism
- Aging Research
Background:
- The mammalian target of rapamycin complex 1 (mTORC1) and p70 ribosomal protein S6 kinase 1 (S6K1) pathway regulates metabolic processes linked to adiposity and aging.
- Existing knowledge of mTORC1-S6K1 targets does not fully explain observed loss-of-function phenotypes, indicating the existence of additional downstream effectors.
Purpose of the Study:
- To identify novel downstream effectors of the mTORC1-S6K1 pathway involved in metabolic regulation.
- To investigate the role of glutamyl-prolyl-tRNA synthetase (EPRS) phosphorylation in adiposity and aging.
Main Methods:
- Generated knock-in mice with phospho-deficient (S999A) and phospho-mimetic (S999D) EPRS mutations.
- Assessed metabolic phenotypes including body weight, adipose tissue mass, and lifespan in mutant mice.
- Performed interaction screening to identify binding partners of phosphorylated EPRS (phospho-EPRS).
Main Results:
- Homozygous S999A mice displayed reduced body weight, decreased adipose tissue, and extended lifespan.
- Phosphorylation of EPRS at Ser999 by mTORC1-S6K1 releases it from the aminoacyl tRNA multisynthetase complex.
- Phospho-EPRS binds to fatty acid transport protein 1 (FATP1), promoting fatty acid uptake in adipocytes.
Conclusions:
- EPRS is a novel mTORC1-S6K1 target that significantly influences adiposity and aging.
- EPRS phosphorylation is a critical mediator of S6K1-dependent metabolic responses.
- The EPRS-FATP1 interaction represents a key terminal effector mechanism of the mTORC1-S6K1 pathway in metabolic regulation.
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