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Glucagon resistance of hepatoma cells. Evidence for receptor and post-receptor defects
Abstract:
Of all available liver cells in culture, only primary cultured hepatocytes are known to respond to glucagon in vitro. In the present study we investigated whether glucagon could stimulate amino acid transport and tyrosine aminotransferase (TAT;EC 2.6.1.5) activity (two well-characterized glucagon effects in the liver) in Fao cells, a highly differentiated rat hepatoma cell line. We found that glucagon had no effect on transport of alpha-aminoisobutyric acid (AIB; a non-metabolizable alanine analogue) nor on TAT activity, even though both activities could be fully induced by insulin [2-fold and 3-fold effects for AIB transport and TAT activity, respectively, after 6h; EC50 (median effective concentration) = 0.3 nM], or by dexamethasone (5-8-fold effects after 20 h; EC50 = 2 nM). Analysis of [125I]iodoglucagon binding revealed that Fao cells bind less than 1% as much glucagon as do hepatocytes, whereas insulin binding in Fao cells was 50% higher than in hepatocytes. The addition of dibutyryl cyclic AMP, which fully mimics the glucagon stimulation of both AIB transport and TAT activity in hepatocytes, induced TAT activity in Fao cells (a 2-fold effect at 0.1 mM-dibutyryl cyclic AMP) but had no effect on AIB transport. Cholera toxin stimulated TAT activity to the same extent as did dibutyryl cyclic AMP. These results indicate that the lack of glucagon responsiveness in cultured hepatoma cells results from both a receptor defect and, for amino acid transport, an additional post-receptor defect. Moreover, the results show that amino acid transport and TAT activity, which appeared to be co-induced by insulin or by dexamethasone in these cells, respond differently to cyclic AMP. This suggests that different mechanisms are involved in the induction of these activities by glucagon in liver.
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.