[Thyroid hormones and muscle phenotype: involvement of new signaling pathways]

André-Xavier Bigard1, Nathalie Koulmann, Lahoucine Bahi

  • 1Département des facteurs humains, centre de recherche du service de santé des armées, BP 87, 38702 La Tronche Cedex, France. xbigard@crssa.net

Insights

Thyroid hormones are crucial for muscle adaptation to calcineurin inhibition. Thyroid hormone deficiency prevents muscle responses to calcineurin inhibition, highlighting an interconnection between these pathways.

Area of Science:

  • Muscle physiology
  • Endocrinology
  • Molecular biology

Background:

  • Thyroid hormones (TH) regulate muscle growth, development, and phenotype.
  • Muscle phenotype is influenced by contractile activity and load via signaling pathways like calcineurin/NFAT.
  • MCIP-1 protein negatively regulates calcineurin activity.

Purpose of the Study:

  • To investigate the interplay between thyroid hormone status and calcineurin signaling in muscle.
  • To determine if calcineurin inhibition effects are dependent on thyroid hormone availability.

Main Methods:

  • Pharmacological calcineurin inhibition using cyclosporin-A (CsA).
  • Induction of thyroid hormone deficiency.
  • Assessment of muscle responses to CsA in both euthyroid and hypothyroid conditions.
  • Measurement of MCIP-1 and MCIP-2 mRNA and protein expression.

Main Results:

  • Calcineurin inhibition with CsA induced expected muscle phenotype changes (slow-to-fast IIA transition, enhanced mitochondrial biogenesis) only in the presence of thyroid hormones.
  • Thyroid hormone deficiency completely abolished the muscle response to calcineurin inhibition.
  • Hypothyroidism significantly decreased the expression of endogenous calcineurin inhibitors MCIP-1 and MCIP-2.

Conclusions:

  • Thyroid hormone and calcineurin signaling pathways are interconnected.
  • Thyroid hormone availability is essential for mediating the effects of calcineurin inhibition on muscle phenotype.
  • Thyroid hormones may regulate the expression or activity of endogenous calcineurin inhibitors.

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