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Disruption of STIM1-mediated Ca2+ sensing and energy metabolism in adult skeletal muscle compromises exercise tolerance, proteostasis, and lean mass.

Publication ,  Journal Article
Wilson, RJ; Lyons, SP; Koves, TR; Bryson, VG; Zhang, H; Li, T; Crown, SB; Ding, J-D; Grimsrud, PA; Rosenberg, PB; Muoio, DM
Published in: Mol Metab
March 2022

OBJECTIVE: Stromal interaction molecule 1 (STIM1) is a single-pass transmembrane endoplasmic/sarcoplasmic reticulum (E/SR) protein recognized for its role in a store operated Ca2+ entry (SOCE), an ancient and ubiquitous signaling pathway. Whereas STIM1 is known to be indispensable during development, its biological and metabolic functions in mature muscles remain unclear. METHODS: Conditional and tamoxifen inducible muscle STIM1 knock-out mouse models were coupled with multi-omics tools and comprehensive physiology to understand the role of STIM1 in regulating SOCE, mitochondrial quality and bioenergetics, and whole-body energy homeostasis. RESULTS: This study shows that STIM1 is abundant in adult skeletal muscle, upregulated by exercise, and is present at SR-mitochondria interfaces. Inducible tissue-specific deletion of STIM1 (iSTIM1 KO) in adult muscle led to diminished lean mass, reduced exercise capacity, and perturbed fuel selection in the settings of energetic stress, without affecting whole-body glucose tolerance. Proteomics and phospho-proteomics analyses of iSTIM1 KO muscles revealed molecular signatures of low-grade E/SR stress and broad activation of processes and signaling networks involved in proteostasis. CONCLUSION: These results show that STIM1 regulates cellular and mitochondrial Ca2+ dynamics, energy metabolism and proteostasis in adult skeletal muscles. Furthermore, these findings provide insight into the pathophysiology of muscle diseases linked to disturbances in STIM1-dependent Ca2+ handling.

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Published In

Mol Metab

DOI

EISSN

2212-8778

Publication Date

March 2022

Volume

57

Start / End Page

101429

Location

Germany

Related Subject Headings

  • Stromal Interaction Molecule 1
  • Proteostasis
  • Muscle, Skeletal
  • Mice
  • Exercise Tolerance
  • Energy Metabolism
  • Calcium
  • Animals
  • 3101 Biochemistry and cell biology
  • 0606 Physiology
 

Citation

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ICMJE
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Wilson, R. J., Lyons, S. P., Koves, T. R., Bryson, V. G., Zhang, H., Li, T., … Muoio, D. M. (2022). Disruption of STIM1-mediated Ca2+ sensing and energy metabolism in adult skeletal muscle compromises exercise tolerance, proteostasis, and lean mass. Mol Metab, 57, 101429. https://doi.org/10.1016/j.molmet.2021.101429
Wilson, Rebecca J., Scott P. Lyons, Timothy R. Koves, Victoria G. Bryson, Hengtao Zhang, TianYu Li, Scott B. Crown, et al. “Disruption of STIM1-mediated Ca2+ sensing and energy metabolism in adult skeletal muscle compromises exercise tolerance, proteostasis, and lean mass.Mol Metab 57 (March 2022): 101429. https://doi.org/10.1016/j.molmet.2021.101429.
Wilson, Rebecca J., et al. “Disruption of STIM1-mediated Ca2+ sensing and energy metabolism in adult skeletal muscle compromises exercise tolerance, proteostasis, and lean mass.Mol Metab, vol. 57, Mar. 2022, p. 101429. Pubmed, doi:10.1016/j.molmet.2021.101429.
Wilson RJ, Lyons SP, Koves TR, Bryson VG, Zhang H, Li T, Crown SB, Ding J-D, Grimsrud PA, Rosenberg PB, Muoio DM. Disruption of STIM1-mediated Ca2+ sensing and energy metabolism in adult skeletal muscle compromises exercise tolerance, proteostasis, and lean mass. Mol Metab. 2022 Mar;57:101429.
Journal cover image

Published In

Mol Metab

DOI

EISSN

2212-8778

Publication Date

March 2022

Volume

57

Start / End Page

101429

Location

Germany

Related Subject Headings

  • Stromal Interaction Molecule 1
  • Proteostasis
  • Muscle, Skeletal
  • Mice
  • Exercise Tolerance
  • Energy Metabolism
  • Calcium
  • Animals
  • 3101 Biochemistry and cell biology
  • 0606 Physiology