Related Experiment Video
Updated: Feb 6, 2026

Author Spotlight: Assessment of Mitophagy Flux in Pancreatic β-Cells Using Effective and Robust Complementary Approaches
Published on: September 15, 2023
SGLT2 knockout prevents hyperglycemia and is associated with reduced pancreatic β-cell death in genetically obese
Michael J Jurczak1, Saumya Saini2, Simona Ioja2
1a Department of Medicine , University of Pittsburgh School of Medicine , Pittsburgh , PA , USA.
Abstract:
Inhibition of the sodium-glucose co-transporter type 2 (SGLT2) has received growing acceptance as a novel, safe and effective means to improve glycemic control in patients with type 2 diabetes. Inhibition of SGLT2 lowers the renal glucose threshold and reduces plasma glucose by promoting glucose excretion in urine. Both animal studies and clinical trials in man suggest that SGLT2 inhibition has the potential to improve pancreatic β-cell function by reducing glucose toxicity. However, there is limited data exploring how reducing glucotoxicity via SGLT2 inhibition affects rates of β-cell proliferation and death throughout life in the context of insulin resistance and type 2 diabetes. SGLT2-/- mice were backcrossed to the db/db strain to produce littermate control db/db-SGLT2+/+ and experimental db/db-SGLT2-/- mice. Mice were euthanized at 5, 12 and 20 weeks of age to collect plasma for glucose, insulin, lipid and cytokine measures, and pancreata for histological analysis including determination of β-cell mass and rates of proliferation and death. SGLT2 deletion in db/db mice reduced plasma glucose as early as 5 weeks of age and continued throughout life without changes in plasma lipids or cytokines. Reduced plasma glucose levels occurred in parallel with an increase in the relative β-cell volume and reduced frequency of β-cell death, and no apparent change in rates of β-cell proliferation. These data add to a growing body of evidence demonstrating that improved glycemic control achieved through SGLT2 inhibition can preserve β-cell function and endogenous insulin secretion by reducing glucose toxicity and rates of β-cell death.
Insights
Inhibiting sodium-glucose co-transporter type 2 (SGLT2) in type 2 diabetes models reduces blood glucose. This preserves pancreatic beta-cell function by decreasing glucose toxicity and cell death.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Diabetes Research
Background:
- Sodium-glucose co-transporter type 2 (SGLT2) inhibition is a recognized strategy for managing type 2 diabetes.
- SGLT2 inhibitors lower plasma glucose by increasing urinary glucose excretion.
- Evidence suggests SGLT2 inhibition may improve pancreatic beta-cell function by mitigating glucose toxicity.
Purpose of the Study:
- To investigate the long-term effects of SGLT2 inhibition on beta-cell proliferation and death in the context of insulin resistance.
- To determine if reducing glucotoxicity through SGLT2 deletion impacts beta-cell mass and function throughout life.
Main Methods:
- SGLT2 knockout mice (SGLT2-/-) were crossed with the db/db mouse model of type 2 diabetes.
- Plasma glucose, insulin, lipids, and cytokines were measured at 5, 12, and 20 weeks of age.
- Histological analysis of pancreata assessed beta-cell mass, proliferation, and death rates.
Main Results:
- SGLT2 deletion in db/db mice significantly reduced plasma glucose levels from 5 weeks of age onwards.
- Reduced glucose levels were associated with increased relative beta-cell volume and decreased beta-cell death frequency.
- No significant changes were observed in plasma lipids, cytokines, or beta-cell proliferation rates.
Conclusions:
- SGLT2 inhibition effectively improves glycemic control in a type 2 diabetes model.
- Preserving beta-cell function and endogenous insulin secretion is achievable by reducing glucose toxicity via SGLT2 inhibition.
- SGLT2 inhibition demonstrates a protective effect on beta-cells, reducing cell death without altering proliferation.
Related Concept Videos
Autophagic Cell Death
Autophagy and Apoptosis
Autophagy can activate apoptosis. In normal conditions, the autophagy activating protein Beclin-1 and...
Overview of Cell Death
Cell death was observed in the early 19th century, but there was no experimental evidence to prove it. In 1842, Carl Vogt first discovered cell death in a metamorphic toad; however, it was not termed ‘cell death.’ Scientists discovered different cell death pathways only in the...
Obesity
Genetics of Speciation
Cancer Prevention
Some...
Reducing Line Loss
With a step-up transformer at the source, the voltage is increased, thereby reducing the current in the transmission lines since power loss in...

