Related Experiment Video
Updated: Jul 16, 2026

Intramuscular Transplantation of Human Pluripotent Stem Cell-derived Pancreatic Endocrine Cells in Mice
Published on: April 10, 2026
Trafficking of ENaC subunits in response to acute insulin in mouse kidney
Swasti Tiwari1, Lina Nordquist, Veerendra K Madala Halagappa
1Dept. of Medicine, Georgetown University, Box 571412, Washington, DC 20057-1412, USA.
Abstract:
Studies done in cell culture have demonstrated that insulin activates the epithelial sodium channel (ENaC) via a variety of mechanisms. However, to date, upregulation of ENaC in native renal tissue by in vivo administration of insulin has not been demonstrated. To address this, we injected 6-mo-old male C57BL/CBA mice (n = 14/group) intraperitoneally with vehicle or 0.5 U/kg body wt insulin and examined short-term (1-2 h) sodium excretion and kidney ENaC subunits (alpha, beta, and gamma) and serum and glucocorticoid-induced kinase (SGK-1) regulation. Insulin resulted in a significant reduction in urine sodium (by approximately 80%) that was restored by intraperitoneal administration of the ENaC antagonist, benzamil (1.4 mg/kg body wt). Differential centrifugation followed by Western blotting of whole kidney revealed significantly increased band densities (by 26-103%) for insulin- relative to vehicle-treated mice for alpha- and gamma-ENaC in the homogenate (H), and plasma membrane-enriched fraction (MF), with no difference in the vesicle-enriched fraction (VF). Similarly, beta-ENaC was significantly increased in MF (by 45%) but no change in the H. It was, however, significantly decreased in the VF (by 28%) with insulin. In agreement, immunoperoxidase labeling demonstrated relatively stronger apical, relative to cytosolic, localization of alpha-, beta-, and gamma-ENaC with insulin, whereas, with vehicle, labeling was fairly evenly dispersed throughout collecting duct principal cells. Furthermore, Western blotting showed insulin increased SGK-1 (by 75%) and phosphorylated-SGK band densities (by 30%) but only in the MF. These studies demonstrate novel in vivo regulation of renal ENaC activity and subunit proteins and SGK-1 by insulin in the acute time frame in the mouse.
Insights
Insulin activates the epithelial sodium channel (ENaC) in mouse kidneys, reducing sodium excretion. This study shows in vivo insulin administration upregulates ENaC and SGK-1, demonstrating novel renal regulation.
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- In vitro studies show insulin activates epithelial sodium channels (ENaC).
- Upregulation of renal ENaC by in vivo insulin administration remains unproven.
Purpose of the Study:
- To investigate the in vivo effects of insulin on renal ENaC regulation and sodium excretion in mice.
- To examine the impact of insulin on ENaC subunits and SGK-1 in kidney tissue.
Main Methods:
- Mice received intraperitoneal insulin or vehicle, followed by assessment of sodium excretion and kidney tissue analysis.
- Western blotting and immunoperoxidase labeling were used to quantify ENaC subunits and SGK-1.
- ENaC antagonist benzamil was used to confirm insulin's effect on sodium excretion.
Main Results:
- Insulin significantly reduced urinary sodium excretion by approximately 80%.
- Insulin increased alpha- and gamma-ENaC in kidney homogenates and plasma membrane fractions.
- Insulin upregulated beta-ENaC in plasma membrane fractions and increased SGK-1 levels.
Conclusions:
- Insulin acutely upregulates renal ENaC activity and protein levels in vivo.
- Insulin-mediated regulation of ENaC involves increased SGK-1 activity.
- These findings reveal a novel mechanism for insulin's control of renal sodium handling.
More Related Videos
10:31Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
08:47Live Images of GLUT4 Protein Trafficking in Mouse Primary Hypothalamic Neurons Using Deconvolution Microscopy
Published on: December 7, 2017
Related Concept Videos
Insulin: The Receptor and Signaling Pathways
Insulin Secretory Vesicles
Glucose Homeostasis: Pancreatic Islets and Insulin Secretion
Insulin and C-peptide are co-secreted in...