TFE3 regulates muscle metabolic gene expression, increases glycogen stores, and enhances insulin sensitivity in mice

Hitoshi Iwasaki1, Ayano Naka, Kaoruko Tada Iida

  • 1Department of Internal Medicine, Faculty of Medicine, Graduate School of Comprehensive Human Sciences, University of Tsukuba, Japan.

Insights

Transcription factor E3 (TFE3) enhances skeletal muscle glucose metabolism and mass by upregulating key metabolic genes. This improves insulin sensitivity and exercise endurance, offering potential for metabolic disease treatment.

Area of Science:

  • Molecular Biology
  • Metabolic Research
  • Physiology

Background:

  • Transcription factor E3 (TFE3) is a known regulator in immunology and cancer.
  • Previous research established TFE3's role in hepatic insulin signaling and diabetes amelioration.
  • The function of TFE3 in skeletal muscle, a key metabolic organ, remained largely unexplored.

Purpose of the Study:

  • To investigate the effects of TFE3 on skeletal muscle.
  • To determine TFE3's impact on glucose metabolism and muscle mass in vivo.
  • To assess TFE3's influence on insulin sensitivity and exercise performance.

Main Methods:

  • Generation of transgenic mice with skeletal muscle-specific TFE3 expression.
  • Analysis of muscle mass, glycogen stores, and gene expression related to glucose metabolism.
  • Assessment of insulin sensitivity and exercise endurance capacity.

Main Results:

  • TFE3 transgenic mice showed increased muscle mass and glycogen accumulation.
  • Upregulation of glucose transporter 4, hexokinase II, and glycogen synthase observed in TFE3 transgenic muscle.
  • Enhanced insulin sensitivity and improved exercise endurance capacity in TFE3 transgenic mice.

Conclusions:

  • TFE3 plays a significant role in regulating glucose metabolism and muscle mass in skeletal muscle.
  • TFE3 enhances insulin sensitivity and exercise performance, partly via IRS-2 upregulation.
  • Targeting TFE3 in skeletal muscle presents a potential therapeutic strategy for metabolic diseases and enhancing athletic performance.

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