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Updated: Mar 2, 2026

Hyperinsulinemic-euglycemic Clamps in Conscious, Unrestrained Mice
Published on: November 16, 2011
Hypoglycemic Effect of Combined Ghrelin and Glucagon Receptor Blockade
Bharath K Mani1, Aki Uchida2, Young Lee3
1Divisions of Hypothalamic Research and Endocrinology, Department of Internal Medicine and Department of Psychiatry, University of Texas Southwestern Medical Center, Dallas, TX.
Abstract:
Glucagon receptor (GcgR) blockade has been proposed as an alternative to insulin monotherapy for treating type 1 diabetes since deletion or inhibition of GcgRs corrects hyperglycemia in models of diabetes. The factors regulating glycemia in a setting devoid of insulin and glucagon function remain unclear but may include the hormone ghrelin. Not only is ghrelin release controlled by glucose but also ghrelin has many actions that can raise or reduce falls in blood glucose level. Here, we tested the hypothesis that ghrelin rises to prevent hypoglycemia in the absence of glucagon function. Both GcgR knockout (Gcgr-/-) mice and db/db mice that were administered GcgR monoclonal antibody displayed lower blood glucose levels accompanied by elevated plasma ghrelin levels. Although treatment with the pancreatic β-cell toxin streptozotocin induced hyperglycemia and raised plasma ghrelin levels in wild-type mice, hyperglycemia was averted in similarly treated Gcgr-/- mice and the plasma ghrelin level was further increased. Notably, administration of a ghrelin receptor antagonist further reduced blood glucose levels into the markedly hypoglycemic range in overnight-fasted, streptozotocin-treated Gcgr-/- mice. A lowered blood glucose level also was observed in overnight-fasted, streptozotocin-treated ghrelin receptor-null mice that were administered GcgR monoclonal antibody. These data suggest that when glucagon activity is blocked in the setting of type 1 diabetes, the plasma ghrelin level rises, preventing hypoglycemia.
Insights
In type 1 diabetes, blocking the glucagon receptor (GcgR) causes ghrelin levels to rise, preventing dangerous drops in blood glucose. This suggests ghrelin plays a key role in maintaining glucose homeostasis when insulin and glucagon are absent.
Area of Science:
- Endocrinology
- Metabolism
- Diabetes Research
Background:
- Glucagon receptor (GcgR) blockade is a potential alternative therapy for type 1 diabetes.
- The role of hormones like ghrelin in glucose regulation without insulin and glucagon is not fully understood.
Purpose of the Study:
- To investigate if ghrelin levels increase to prevent hypoglycemia when glucagon function is absent.
- To explore the interplay between glucagon signaling, ghrelin, and glucose homeostasis.
Main Methods:
- Utilized glucagon receptor knockout (Gcgr-/-) mice and GcgR monoclonal antibody treatment.
- Administered streptozotocin to induce diabetes and ghrelin receptor antagonist to assess effects.
- Measured plasma ghrelin levels and blood glucose in various experimental conditions.
Main Results:
- Gcgr-/- mice and antibody-treated mice showed lower blood glucose and higher plasma ghrelin.
- In streptozotocin-treated Gcgr-/- mice, hyperglycemia was prevented, and plasma ghrelin increased further.
- Ghrelin receptor antagonism led to significant hypoglycemia in diabetic Gcgr-/- mice.
Conclusions:
- Ghrelin levels rise to prevent hypoglycemia when glucagon activity is blocked in type 1 diabetes models.
- Ghrelin signaling is crucial for maintaining glucose balance in the absence of functional glucagon.
- These findings highlight ghrelin as a potential therapeutic target in diabetes management.
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