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Updated: Aug 28, 2025

Assessment of Kidney Function in Mouse Models of Glomerular Disease
Published on: June 30, 2018
SGLT2 inhibitors improve kidney function and morphology by regulating renal metabolic reprogramming in mice with
Yong-Ping Lu1,2, Ze-Yu Zhang2, Hong-Wei Wu2,3
1Department of Nephrology, Center of Kidney and Urology, The Seventh Affiliated Hospital, Sun Yat-Sen University, Shenzhen, China.
Abstract:
Diabetic kidney disease (DKD) is the leading cause of end-stage renal disease (ESRD) worldwide. SGLT2 inhibitors are clinically effective in halting DKD progression. However, the underlying mechanisms remain unclear. The serum and kidneys of mice with DKD were analyzed using liquid chromatography with tandem mass spectrometry (LC-MS/MS)-based metabolomic and proteomic analyses. Three groups were established: placebo-treated littermate db/m mice, placebo-treated db/db mice and EMPA-treated db/db mice. Empagliflozin (EMPA) and placebo (10 mg/kg/d) were administered for 12 weeks. EMPA treatment decreased Cys-C and urinary albumin excretion compared with placebo by 78.60% and 57.12%, respectively (p < 0.001 in all cases). Renal glomerular area, interstitial fibrosis and glomerulosclerosis were decreased by 16.47%, 68.50% and 62.82%, respectively (p < 0.05 in all cases). Multi-omic analysis revealed that EMPA treatment altered the protein and metabolic profiles in the db/db group, including 32 renal proteins, 51 serum proteins, 94 renal metabolites and 37 serum metabolites. Five EMPA-related metabolic pathways were identified by integrating proteomic and metabolomic analyses, which are involved in renal purine metabolism; pyrimidine metabolism; tryptophan metabolism; nicotinate and nicotinamide metabolism, and glycine, serine and threonine metabolism in serum. In conclusion, this study demonstrated metabolic reprogramming in mice with DKD. EMPA treatment improved kidney function and morphology by regulating metabolic reprogramming, including regulation of renal reductive stress, alleviation of mitochondrial dysfunction and reduction in renal oxidative stress reaction.
Insights
Empagliflozin (EMPA) treatment improved kidney function in diabetic kidney disease (DKD) mice by altering metabolic pathways. This study reveals EMPA
Area of Science:
- Nephrology
- Metabolomics
- Proteomics
Background:
- Diabetic kidney disease (DKD) is a major cause of end-stage renal disease (ESRD).
- SGLT2 inhibitors show clinical efficacy in slowing DKD progression.
- Mechanisms underlying SGLT2 inhibitor action in DKD are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms of Empagliflozin (EMPA) in treating diabetic kidney disease (DKD).
- To analyze metabolic and proteomic changes in the kidneys and serum of DKD mice treated with EMPA.
Main Methods:
- Liquid chromatography with tandem mass spectrometry (LC-MS/MS)-based metabolomic and proteomic analyses were performed on serum and kidney samples.
- DKD was induced in db/db mice, with treatment groups including placebo and Empagliflozin (EMPA).
- Comparative analysis was conducted between placebo-treated db/m mice, placebo-treated db/db mice, and EMPA-treated db/db mice.
Main Results:
- EMPA treatment significantly reduced Cys-C and urinary albumin excretion.
- EMPA decreased renal pathological changes, including glomerular area, interstitial fibrosis, and glomerulosclerosis.
- Multi-omic analysis identified alterations in 32 renal proteins, 51 serum proteins, 94 renal metabolites, and 37 serum metabolites following EMPA treatment.
- Five EMPA-related metabolic pathways were identified, including purine and pyrimidine metabolism, tryptophan metabolism, nicotinate and nicotinamide metabolism, and glycine, serine, and threonine metabolism.
Conclusions:
- DKD is characterized by significant metabolic reprogramming.
- EMPA treatment effectively improves kidney function and morphology in DKD mice.
- EMPA exerts its therapeutic effects by regulating metabolic reprogramming, reducing renal reductive and oxidative stress, and alleviating mitochondrial dysfunction.
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