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Glucagon resistance of hepatoma cells. Evidence for receptor and post-receptor defects

The Biochemical Journal
|September 15, 1983
PubMed

Insights

Cultured hepatoma cells (Fao cells) lack glucagon response due to receptor and post-receptor defects. Glucagon failed to stimulate amino acid transport or tyrosine aminotransferase (TAT) activity, unlike primary hepatocytes.

Area of Science:

  • Hepatology
  • Cellular Metabolism
  • Hormone Signaling

Background:

  • Primary hepatocytes are the only liver cells responsive to glucagon in vitro.
  • Glucagon regulates key metabolic functions like amino acid transport and tyrosine aminotransferase (TAT) activity in the liver.

Purpose of the Study:

  • To investigate glucagon's effects on amino acid transport and TAT activity in Fao cells, a rat hepatoma cell line.
  • To determine the mechanisms behind Fao cells' lack of glucagon responsiveness.

Main Methods:

  • Assessed glucagon stimulation of alpha-aminoisobutyric acid (AIB) transport and TAT activity in Fao cells.
  • Measured [125I]iodoglucagon and insulin binding in Fao cells and primary hepatocytes.
  • Evaluated the effects of dibutyryl cyclic AMP and cholera toxin on Fao cell activities.

Main Results:

  • Glucagon did not affect AIB transport or TAT activity in Fao cells, despite insulin and dexamethasone induction.
  • Fao cells exhibited significantly lower glucagon binding but higher insulin binding compared to hepatocytes.
  • Dibutyryl cyclic AMP and cholera toxin induced TAT activity but not AIB transport in Fao cells.

Conclusions:

  • Fao cells' lack of glucagon responsiveness is due to both a receptor defect and a post-receptor defect for amino acid transport.
  • Amino acid transport and TAT activity are regulated by distinct mechanisms in response to cyclic AMP in liver cells.

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