Secretory kinase FAM20C triggers adipocyte dysfunction, inciting insulin resistance and inflammation in obesity

Ankit Gilani1, Benjamin D Stein2, Anne Hoffmann3

  • 1Division of Cardiology, Department of Medicine, Weill Center for Metabolic Health, Cardiovascular Research Institute, and.

Insights

Obesity drives type 2 diabetes through adipocyte dysfunction. Researchers found FAM20C kinase is an early mediator, and inhibiting it may treat diabetes by restoring adipocyte health.

Area of Science:

  • Metabolic disorders
  • Molecular biology
  • Adipocyte biology

Background:

  • Obesity is a key driver of type 2 diabetes (T2D) and metabolic disorders.
  • Chronic inflammation and adipocyte dysfunction characterize these conditions.
  • The molecular triggers initiating these processes are not fully understood.

Purpose of the Study:

  • To identify early molecular mediators of obesity-induced adipocyte dysfunction.
  • To investigate the role of FAM20C in metabolic impairment.
  • To explore FAM20C as a potential therapeutic target for T2D.

Main Methods:

  • Gene expression analysis in adipocytes.
  • Forced expression and genetic deletion of Fam20c in mouse models.
  • Phosphoproteomic studies to identify FAM20C substrates.
  • Correlation analysis of FAM20C expression with insulin resistance in human adipose tissue.

Main Results:

  • FAM20C expression is upregulated in obesity and promotes inflammation and insulin resistance in adipocytes.
  • Adipocyte-specific deletion of FAM20C improves glucose tolerance and insulin sensitivity.
  • FAM20C regulates phosphorylation of key proteins involved in inflammation, metabolism, and ECM remodeling.
  • Human visceral adipose FAM20C expression correlates positively with insulin resistance.

Conclusions:

  • FAM20C is an early regulator of obesity-induced adipocyte dysfunction and systemic metabolic disease.
  • Targeting FAM20C kinase activity offers a potential therapeutic strategy for T2D.
  • Restoring adipocyte health through FAM20C inhibition may ameliorate metabolic impairments.

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