Increase in PPARγ inhibitory phosphorylation by Fetuin-A through the activation of Ras-MEK-ERK pathway causes insulin

Snehasis Das1, Dipanjan Chattopadhyay1, Subhendu K Chatterjee1

  • 1Endocrinology and Metabolism Laboratory, Department of Zoology, Siksha Bhavana (Institute of Science), Visva-Bharati (A Central University), Santiniketan - 731235, India.

Insights

Fetuin-A (FetA) drives insulin resistance by promoting inhibitory phosphorylation of PPARγ via the Ras-MEK-ERK pathway. This disrupts adiponectin signaling, impairing skeletal muscle energy production and overall metabolic health.

Area of Science:

  • Metabolic diseases
  • Molecular endocrinology
  • Cellular signaling

Background:

  • Obesity-induced insulin resistance is linked to inhibitory phosphorylation of peroxisome proliferator-activated receptor γ (PPARγS273).
  • Identifying upstream regulators of this pathway is crucial for therapeutic development.

Purpose of the Study:

  • To investigate Fetuin-A (FetA) as a potential upstream regulator of PPARγ inhibitory phosphorylation in insulin resistance.
  • To elucidate the molecular mechanisms by which FetA influences this pathway and its impact on skeletal muscle.

Main Methods:

  • Utilized mouse models (standard diet, high-fat diet, HFD with FetA knockdown).
  • Employed primary adipocytes, 3T3-L1 preadipocytes, and C2C12 myotubes for mechanistic studies.
  • Analyzed PPARγS273 phosphorylation, Ras, MEK, ERK, TNFα, adiponectin, and AMPK activation.

Main Results:

  • Increased FetA in high-fat diet (HFD) mice correlated with elevated PPARγS273 phosphorylation in adipocytes; FetA knockdown suppressed this.
  • FetA activated Ras, leading to MEK/ERK activation, and triggered TNFα release in inflamed adipocytes.
  • FetA reduced adiponectin, attenuated AMPK activation in skeletal muscle, and impaired mitochondrial ATP production.

Conclusions:

  • FetA plays a key role in regulating PPARγ inhibitory phosphorylation through the Ras-MEK-ERK pathway.
  • FetA-mediated PPARγ inactivation disrupts adipocyte-myocyte crosstalk, leading to impaired skeletal muscle bioenergetics and insulin sensitivity.
  • FetA represents a potential therapeutic target for metabolic disorders.

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