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Published on: March 7, 2025
Urea cycle modulation by combined SGLT2 inhibitors and metformin
Makoto Harada1,2, Jonathan Adam3,4, Siyu Han1,2
1Institute of Translational Genomics, Helmholtz Zentrum München, German Research Center for Environmental Health, Neuherberg, Germany.
Background:
Sodium-glucose co-transporter 2 inhibitors (SGLT2i), when combined with metformin (COMBI), offer multi-organ protective effects in patients with type 2 diabetes (T2D), particularly those at high risk of cardiovascular or renal complications. However, the underlying molecular mechanisms remain poorly understood.
Methods:
We profiled 303 targeted serum metabolites in 1494 participants of the KORA study, including T2D patients treated with COMBI therapy, metformin monotherapy, or no glucose-lowering medication. Additionally, metabolomic profiling was quantified on seven tissues (plasma, liver, adrenal glands, adipose tissue, testis, lung, and cerebellum), and related hepatic transcripts were evaluated in 40 mice. Multivariable linear regression analyses, adjusted for age, sex, BMI, lifestyle, glycemic, and cardiovascular risk factors, were applied to human data; tissue-specific regression analyses were conducted for murine samples. Identified metabolites were further investigated using biochemical pathway analyses and literature review.
Results:
COMBI therapy was associated with significant changes in metabolite profiles. In humans, 10 metabolites were significantly altered compared to metformin monotherapy. In mice, 82 altered metabolites were identified in plasma, 52 in liver, 30 in adrenal glands, 12 in adipose tissue, seven in testis, seven in lung, and six in cerebellum. COMBI therapy lowered threonine concentrations in both human serum and murine plasma but raised threonine, glycine, and urea cycle metabolites (citrulline, asymmetric dimethyl arginine (ADMA), and ornithine) in murine liver. This was accompanied by enhanced hepatic expression of Slc38a2, a threonine transporter gene. In humans, urea cycle metabolites correlated strongly with the fibrosis-4 index, a marker of liver fibrosis. Additionally, COMBI therapy elevated ketone body markers, such as hydroxybutyrylcarnitine, across murine liver, plasma, adrenal glands, adipose tissue, and testis.
Conclusions:
COMBI therapy modulates amino acid metabolism, the urea cycle, and ketone body production, suggesting potential mechanisms underlying its protective effects against liver fibrosis and male subfertility. These findings provide novel insights into the systemic metabolic actions of COMBI therapy and highlight its translational potential to improve clinical outcomes in T2D patients.
Insights
Sodium-glucose co-transporter 2 inhibitors (SGLT2i) combined with metformin (COMBI) therapy significantly alters amino acid metabolism and ketone body production. These metabolic changes may explain COMBI therapy's protective effects in type 2 diabetes patients.
Area of Science:
- Metabolomics
- Type 2 Diabetes Research
- Pharmacology
Background:
- Sodium-glucose co-transporter 2 inhibitors (SGLT2i) combined with metformin (COMBI) show multi-organ protective effects in type 2 diabetes (T2D).
- The molecular mechanisms behind these protective effects are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms of COMBI therapy's protective effects.
- To analyze the impact of COMBI therapy on serum and tissue metabolite profiles.
- To explore the relationship between metabolic changes and clinical outcomes like liver fibrosis.
Main Methods:
- Targeted serum metabolomic profiling of 1494 KORA study participants (T2D patients on COMBI, metformin monotherapy, or no glucose-lowering medication).
- Metabolomic profiling in seven tissues and hepatic transcript analysis in 40 mice.
- Multivariable linear regression analyses in humans and tissue-specific regression in mice.
Main Results:
- COMBI therapy significantly altered metabolite profiles in humans and mice.
- COMBI therapy modulated amino acid metabolism (e.g., threonine, glycine) and urea cycle metabolites (e.g., citrulline, ADMA, ornithine) in liver.
- Elevated ketone body markers were observed across multiple tissues with COMBI therapy; human urea cycle metabolites correlated with liver fibrosis markers.
Conclusions:
- COMBI therapy modulates amino acid metabolism, urea cycle, and ketone body production.
- These metabolic shifts offer potential mechanisms for COMBI's protective effects against liver fibrosis and male subfertility.
- Findings highlight the translational potential of understanding COMBI's systemic metabolic actions for T2D patient outcomes.
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