Heterocyclic amines reduce insulin-induced AKT phosphorylation and induce gluconeogenic gene expression in human

Kennedy M Walls1, Kyung U Hong1, David W Hein2

  • 1Department of Pharmacology and Toxicology and Brown Cancer Center, School of Medicine, University of Louisville, 505 S. Hancock Street, CTR Rm 303, Louisville, KY, 40202, USA.

Insights

Heterocyclic amines (HCAs) in cooked meat disrupt insulin signaling and increase glucose production in human liver cells. This suggests HCAs may contribute to insulin resistance, type II diabetes, and metabolic syndrome independently of meat consumption.

Area of Science:

  • Metabolic disease research
  • Toxicology
  • Endocrinology

Background:

  • Heterocyclic amines (HCAs) are mutagenic compounds formed during meat cooking.
  • Epidemiological studies link dietary HCA exposure to insulin resistance and type II diabetes.
  • The independent role of HCAs in metabolic disease pathogenesis remains unclear.

Purpose of the Study:

  • To investigate the direct effects of common HCAs on insulin signaling and glucose production in human liver cells.
  • To determine if HCAs contribute to insulin resistance and hepatic gluconeogenesis independently of meat consumption.

Main Methods:

  • Human liver cells (HepG2 and primary hepatocytes) were treated with varying concentrations of three HCAs (MeIQ, MeIQx, PhIP).
  • Insulin signaling was assessed by measuring AKT phosphorylation.
  • Gluconeogenic gene expression (G6PC, PCK1) and glucose production were quantified.

Main Results:

  • HCA treatment significantly reduced insulin-induced AKT phosphorylation, indicating impaired insulin signaling.
  • HCAs increased the expression of gluconeogenic genes (G6PC, PCK1) and reduced phosphorylated FOXO1 levels.
  • HCA-treated hepatocytes exhibited increased extracellular glucose production.

Conclusions:

  • HCAs directly impair hepatic insulin signaling and promote glucose production in human liver cells.
  • These findings suggest HCAs may independently contribute to the development of insulin resistance, type II diabetes, and metabolic syndrome.

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