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Updated: Sep 6, 2025

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Increased glucocorticoid metabolism in diabetic kidney disease
Daniel Ackermann1,2, Bruno Vogt1,2, Murielle Bochud2
1Department of Nephrology and Hypertension, University of Bern, Berne, Switzerland.
Aims:
Glomerular damage indicated by proteinuria is a main symptom in diabetic nephropathy. Mineralocorticoid receptor (MR) antagonists (MRAs) are beneficial irrespective of aldosterone availability. Thus, we hypothesized an alternatively activated MR to promote glomerular damage in proteinuric diabetic nephropathy. Specifically, we aimed first to demonstrate the presence of steroid hormones serving as alternative MR targets in type II diabetic patients with proteinuric kidney disease, second whether MR selectivity was modified, third to characterize MR and glucocorticoid receptor (GR) expression and activity in glomerular cell types exposed to eu- and hyperglycemic conditions, fourth to characterize the pro-fibrotic potential of primary human renal mesangial cells (HRMC) upon stimulation with aldosterone and cortisol, and fifth to specify the involvement of the MR and/or GR in pro-fibrotic signaling.
Materials And Methods:
Urinary steroid hormone profiles of patients with diabetic kidney disease were analyzed by gas chromatography-mass spectrometry and compared to an age and gender matched healthy control group taken out of a population study. In both cohorts, the activity of the MR pre-receptor enzyme 11β-hydroxysteroid dehydrogenase type 2 (HSD11B2), which inactivates cortisol to prevent it from binding to the MR, was assessed to define a change in MR selectivity. Expression of HSD11B2, MR and GR was quantified in HRMC and primary human renal glomerular endothelial cells (HRGEC). Activity of MR and GR was explored in HRMC by measuring the MR/GR down-stream signal SGK1 and the pro-fibrotic genes TGFB1, FN1 and COL1A1 in normal and high glucose conditions with the MR/GR agonists aldosterone/cortisol and the MR/GR antagonists spironolactone/RU486.
Results:
Patients with diabetic kidney disease excreted more tetrahydroaldosterone than the control group reaching significance in men. The excretion of MR-agonistic steroid hormones was only increased for 18-hydroxytetrahydrocorticosterone in diabetic women. The excretion of most glucocorticoids was higher in the diabetic cohort. Higher apparent systemic HSD11B2 activity suggested less activation of the MR by cortisol in diabetic patients. Both cell types, HRMC and HRGEC, lacked expression of HSD11B2. Hyperglycemic conditions did not change MR and GR expression and activity. Stimulation with both aldosterone and cortisol promoted upregulation of pro-fibrotic genes in HRMC. This effect of MR and/or GR activation was more pronounced in high glucose conditions and partially inhibited by MRAs and GR antagonists.
Conclusions:
In patients with diabetic kidney disease alternative MR activation is conceivable as cortisol and cortisone metabolites are increased. Systemic availability of active metabolites is counteracted via an increased HSD11B2 activity. As this cortisol deactivation is absent in HRMC and HRGEC, cortisol binding to the MR is enabled. Both, cortisol and aldosterone stimulation led to an increased expression of pro-fibrotic genes in HRMC. This mechanism was related to the MR as well as the GR and more marked in high glucose conditions linking the benefit of MRAs in diabetic kidney disease to these findings.
Insights
Diabetic kidney disease involves alternative mineralocorticoid receptor (MR) activation by cortisol, promoting fibrosis. Glucocorticoid receptor (GR) also contributes, especially in high glucose, explaining benefits of MR antagonists in diabetic nephropathy.
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- Diabetic nephropathy is characterized by glomerular damage and proteinuria.
- Mineralocorticoid receptor antagonists (MRAs) show benefits in diabetic kidney disease, independent of aldosterone.
- Alternative activation of the mineralocorticoid receptor (MR) is hypothesized to drive glomerular damage in proteinuric diabetic nephropathy.
Purpose of the Study:
- To demonstrate alternative steroid hormone targets for MR in type II diabetic patients with kidney disease.
- To assess modifications in MR selectivity.
- To characterize MR and glucocorticoid receptor (GR) expression and activity in glomerular cells under varying glucose conditions and their role in pro-fibrotic signaling.
Main Methods:
- Analyzed urinary steroid hormone profiles in diabetic kidney disease patients versus healthy controls using gas chromatography-mass spectrometry.
- Assessed 11β-hydroxysteroid dehydrogenase type 2 (HSD11B2) activity to determine MR selectivity.
- Quantified HSD11B2, MR, and GR expression in human renal mesangial cells (HRMC) and glomerular endothelial cells (HRGEC).
- Investigated MR and GR activity by measuring downstream signaling (SGK1) and pro-fibrotic genes (TGFB1, FN1, COL1A1) under agonist/antagonist treatment and varying glucose levels.
Main Results:
- Diabetic kidney disease patients showed increased tetrahydroaldosterone excretion; diabetic women also had increased 18-hydroxytetrahydrocorticosterone.
- Glucocorticoid excretion was generally higher in the diabetic cohort, with apparent increased systemic HSD11B2 activity suggesting reduced cortisol-MR binding.
- HRMC and HRGEC lacked HSD11B2 expression; hyperglycemia did not alter MR/GR expression or activity. Aldosterone and cortisol stimulated pro-fibrotic gene upregulation in HRMC, an effect amplified in high glucose and partially blocked by antagonists.
Conclusions:
- Alternative MR activation by cortisol is plausible in diabetic kidney disease due to increased cortisol metabolites.
- Absence of HSD11B2 in HRMC and HRGEC permits cortisol binding to MR.
- Both MR and GR activation contribute to pro-fibrotic gene expression, particularly under hyperglycemia, linking MRA benefits to these pathways.
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