Naringenin modulates skeletal muscle differentiation via estrogen receptor α and β signal pathway regulation

Marco Pellegrini1, Pamela Bulzomi, Paola Galluzzo

  • 1Department of Sciences, Biomedical and Technology Science Section, University Roma Tre, Viale G. Marconi 446, 00146, Roma, Italy.

Genes & Nutrition
|August 27, 2014
PubMed

Insights

Naringenin (Nar) impacts muscle cell differentiation by affecting estrogen receptor alpha (ERα) signals. However, it activates estrogen receptor beta (ERβ) pathways, potentially mitigating oxidative stress in skeletal muscle.

Area of Science:

  • Cell Biology
  • Endocrinology
  • Muscle Physiology

Background:

  • Naringenin (Nar) shows health benefits, including potential use in post-menopausal women as an alternative to estrogen therapy.
  • Limited data exist on Nar's effects on estrogen-regulated cellular functions, particularly in muscle cells.

Purpose of the Study:

  • To investigate the impact of Nar on estrogen receptor (ERα and ERβ)-dependent signaling pathways in muscle cells.
  • To determine how Nar affects 17β-estradiol (E2)-mediated effects on muscle cell differentiation and function.

Main Methods:

  • Experiments were conducted on rat L6 myoblasts, mouse C2C12 myoblasts, and mouse skeletal muscle satellite cells.
  • The study assessed Nar's effects on differentiation markers (GLUT4, myogenin, MHC isoforms), AKT activation, and p38/MAPK phosphorylation.
  • Specific focus was placed on ERα and ERβ signaling pathways.

Main Results:

  • Nar, at dietary concentrations, delayed skeletal muscle differentiation markers and impaired E2-induced AKT activation via ERα.
  • Nar did not affect IGF-I-induced AKT activation or myoblast differentiation.
  • Nar activated p38/MAPK via ERβ, which is involved in reducing reactive oxygen species (ROS).

Conclusions:

  • Nar impairs ERα-mediated muscle cell differentiation signals but activates ERβ pathways.
  • ERβ activation by Nar may counterbalance the negative effects on differentiation by reducing oxidative stress in skeletal muscle cells.

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