Pid1 induces insulin resistance in both human and mouse skeletal muscle during obesity

Sabeera Bonala1, Craig McFarlane, Jackie Ang

  • 1School of Biological Sciences, Nanyang Technological University, Singapore 637551.

Insights

Phosphotyrosine interaction domain-containing protein 1 (PID1) is elevated in obesity, hindering insulin signaling and glucose uptake in muscle. Reducing PID1 improves insulin sensitivity, suggesting it

Area of Science:

  • Metabolic disease research
  • Molecular biology
  • Cellular signaling

Background:

  • Obesity is linked to insulin resistance and impaired glucose uptake in peripheral tissues.
  • The precise molecular mechanisms affecting insulin signaling in human skeletal muscle during obesity remain unclear.

Purpose of the Study:

  • To investigate the role of the Pid1 gene and its protein product in insulin resistance within human skeletal muscle.
  • To identify regulators of Pid1 expression and its impact on cellular metabolism.

Main Methods:

  • Microarray analysis to identify differentially expressed genes in overweight, insulin-resistant individuals.
  • Molecular analysis of Pid1 mRNA and protein levels in cell culture models.
  • Functional studies involving PID1 overexpression and knockdown in human myoblasts.
  • Assessment of mitochondrial content and insulin signaling pathways.
  • Analysis of Pid1 expression in mouse models of diet-induced obesity.
  • In silico and experimental validation of nuclear factor-κB (NF-κB) as a regulator of Pid1.

Main Results:

  • Pid1 gene expression is increased in myoblasts from overweight, insulin-resistant individuals and in cell culture models of insulin resistance.
  • Overexpression of PID1 reduces insulin signaling and glucose uptake, while PID1 knockdown enhances these processes.
  • PID1 overexpression leads to a significant reduction in mitochondrial number.
  • Pid1 levels are elevated in liver, skeletal muscle, and adipose tissue of diet-induced obese mice.
  • NF-κB directly up-regulates Pid1 transcription, and myostatin enhances Pid1 expression via NF-κB signaling.

Conclusions:

  • Pid1 acts as a significant intracellular inhibitor of the insulin signaling pathway in the context of obesity.
  • Pid1 dysregulation contributes to insulin resistance in both human and mouse models.
  • NF-κB and myostatin are key regulators of Pid1 expression in obesity-related insulin resistance.

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