Related Experiment Video
Updated: Jun 14, 2026

Glucose-Stimulated Insulin Secretion via Perfusion through the Mice Vasculature with an Intact Pancreas
Published on: July 25, 2025
Glucose supply and insulin demand dynamics of antidiabetic agents
Scott V Monte1, Jerome J Schentag, Martin H Adelman
1CPL Associates, LLC, Amherst, New York 14226, USA. smonte@cplassociates.com
Insights
Intensive blood glucose reduction benefits microvascular outcomes in type 1 and type 2 diabetes. For type 2 diabetes, the method of glucose lowering, not just the extent, is crucial for macrovascular benefit.
Area of Science:
- Endocrinology
- Pharmacology
- Metabolic Diseases
Background:
- Intensive glucose lowering shows microvascular benefits in type 1 and type 2 diabetes mellitus (T1DM, T2DM).
- Macrovascular benefits are proven in T1DM but not consistently in T2DM with conventional intensive glucose-lowering strategies.
- Cardiovascular outcome trials suggest the method of glucose reduction may be as important as the degree of reduction in T2DM.
Purpose of the Study:
- To develop a pharmacokinetic/pharmacodynamic model to characterize antidiabetic agents' effects on glucose supply and insulin demand dynamics.
- To quantify differences in agents' impact on carbohydrate exposure, glucose uptake, gluconeogenesis, insulin resistance, and insulin exposure.
- To establish a Supply-Demand (SD) ratio for comparing glucose supply versus insulin demand effects.
Main Methods:
- Developed a pharmacokinetic/pharmacodynamic model to assess antidiabetic agents.
- Quantified effects on carbohydrate exposure, hepatic glucose uptake, gluconeogenesis, insulin resistance, and insulin exposure.
- Calculated a Supply-Demand (SD) ratio by dividing glucose supply effects by insulin demand effects.
Main Results:
- Alpha-glucosidase inhibitors, metformin, and thiazolidinediones (TZDs) showed a greater effect on glucose supply (SD ratio >1).
- Secretagogues, basal insulins, and bolus insulins demonstrated a greater effect on insulin demand (SD ratio <1).
- Specific SD ratios were calculated for each drug class.
Conclusions:
- Agents like alpha-glucosidase inhibitors, metformin, and TZDs primarily impact glucose supply.
- Agents like secretagogues and insulins primarily impact insulin demand.
- For T2DM macrovascular outcomes, a model considering both glucose lowering extent (HbA1c) and the method (SD ratio) is logical, especially given limitations of insulin-demand-focused conventional algorithms.
Background:
For microvascular outcomes, there is compelling historical and contemporary evidence for intensive blood glucose reduction in patients with either type 1 diabetes mellitus (T1DM) or type 2 diabetes mellitus (T2DM). There is also strong evidence to support macrovascular benefit with intensive blood glucose reduction in T1DM. Similar evidence remains elusive for T2DM. Because cardiovascular outcome trials utilizing conventional algorithms to attain intensive blood glucose reduction have not demonstrated superiority to less aggressive blood glucose reduction (Action to Control Cardiovascular Risk in Diabetes; Action in Diabetes and Vascular Disease: Preterax and Diamicron Modified Release Controlled Evaluation; and Veterans Affairs Diabetes Trial), it should be considered that the means by which the blood glucose is reduced may be as important as the actual blood glucose.
Methods:
By identifying quantitative differences between antidiabetic agents on carbohydrate exposure (CE), hepatic glucose uptake (HGU), hepatic gluconeogenesis (GNG), insulin resistance (IR), peripheral glucose uptake (PGU), and peripheral insulin exposure (PIE), we created a pharmacokinetic/pharmacodynamic model to characterize the effect of the agents on the glucose supply and insulin demand dynamic. Glucose supply was defined as the cumulative percentage decrease in CE, increase in HGU, decrease in GNG, and decrease in IR, while insulin demand was defined as the cumulative percentage increase in PIE and PGU. With the glucose supply and insulin demand effects of each antidiabetic agent summated, the glucose supply (numerator) was divided by the insulin demand (denominator) to create a value representative of the glucose supply and insulin demand dynamic (SD ratio).
Results:
Alpha-glucosidase inhibitors (1.25), metformin (2.20), and thiazolidinediones (TZDs; 1.25-1.32) demonstrate a greater effect on glucose supply (SD ratio >1), while secretagogues (0.69-0.81), basal insulins (0.77-0.79), and bolus insulins (0.62-0.67) demonstrate a greater effect on insulin demand (SD ratio <1).
Conclusion:
Alpha-glucosidase inhibitors, metformin, and TZDs demonstrate a greater effect on glucose supply, while secretagogues, basal insulin, and bolus insulin demonstrate a greater effect on insulin demand. Because T2DM cardiovascular outcome trials have not demonstrated macrovascular benefit with more aggressive blood glucose reduction when using conventional algorithms that predominantly focus on insulin demand, it would appear logical to consider a model that incorporates both the extent of blood glucose lowering (hemoglobin A1c) and the means by which the blood glucose was reduced (SD ratio) when considering macrovascular outcomes.
Related Concept Videos
Glucose Homeostasis: Pancreatic Islets and Insulin Secretion
Insulin and C-peptide are co-secreted in...
Oral Hypoglycemic Agents: Glinides
Glucose Homeostasis: Regulation of Blood Glucose
During fasting, when blood glucose levels are low, the pancreas secretes glucagon. it...
Hormones Regulating Blood Glucose
In addition to accelerating glucose uptake and utilization, insulin has...
Insulin: Dosing Regimen and Adverse Effects
The basal dose constitutes about 40%-50% of the total daily dose, with the rest as premeal insulin. The mealtime insulin dose should mirror...
Hypoglycemia and Glucagon

