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.
Abstract

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