Related Experiment Video
Updated: Aug 5, 2026

A Microfluidic System for Modeling Endothelial Dysfunction under Combined Physiological Pulsatile Shear Stress and Oscillatory Hyperglycemia
Published on: May 12, 2026
Effects of Pulsed Electromagnetic Field Application on Glucose Metabolism in Rats
Harun Gencer1, Hakkı Murat Bilgin2, Veysi Akpolat3
1Department of Health and Care Services, Mardin Artuklu University, Mardin, Turkey.
None:
The present study aimed to evaluate the effects of pulsed electromagnetic field (PEMF) exposure on glucose metabolism-related hormonal and oxidative stress markers. Twenty-three male Wistar albino rats were randomly assigned to three groups: sham-control (n = 7), PEMF (n = 8), and PEMF + vitamin C (n = 8). The PEMF and PEMF + vitamin C groups were exposed to a pulsed magnetic field at 50 Hz and 1.5 mT for 4 h daily over 4 weeks. Vitamin C (250 mg/kg/day) was administered orally to the PEMF + vitamin C group. Serum and tissue levels of insulin, glucagon, glucagon-like peptide-1 (GLP-1), sirtuin 1 (SIRT1), total antioxidant capacity (TAC), and total oxidant capacity (TOC) were measured. Histopathological evaluations of brain, liver, and pancreatic tissues were also performed. Serum glucose, insulin, glucagon, GLP-1, SIRT1, TAC, and TOC levels did not differ significantly among the experimental groups. Gastric TAC levels were significantly higher in the PEMF + vitamin C group. In renal tissue, insulin levels were significantly elevated only in the PEMF + vitamin C group. PEMF exposure did not induce systemic biochemical changes in healthy rats but elicited tissue-specific biochemical responses, particularly in gastric tissue. These findings suggest that PEMF may modulate glucose-related endocrine and redox pathways at the gastrointestinal level without causing structural tissue damage. Bioelectromagnetics. 00:00-00, 2026. © 2026 Bioelectromagnetics Society.
