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Updated: Jul 30, 2025

Quantification of the Immunosuppressant Tacrolimus on Dried Blood Spots Using LC-MS/MS
Published on: November 8, 2015
A multi-omics investigation of tacrolimus off-target effects on a proximal tubule cell-line
Hassan Aouad1, Quentin Faucher1, François-Ludovic Sauvage1
1Pharmacology & Transplantation, Université de Limoges, INSERM U1248, Limoges, France.
Introduction:
Tacrolimus, an immunosuppressive drug prescribed to a majority of organ transplant recipients is nephrotoxic, through still unclear mechanisms. This study on a lineage of proximal tubular cells using a multi-omics approach aims to detect off-target pathways modulated by tacrolimus that can explain its nephrotoxicity.
Methods:
LLC-PK1 cells were exposed to 5 µM of tacrolimus for 24 h in order to saturate its therapeutic target FKBP12 and other high-affine FKBPs and favour its binding to less affine targets. Intracellular proteins and metabolites, and extracellular metabolites were extracted and analysed by LC-MS/MS. The transcriptional expression of the dysregulated proteins PCK-1, as well as of the other gluconeogenesis-limiting enzymes FBP1 and FBP2, was measured using RT-qPCR. Cell viability with this concentration of tacrolimus was further checked until 72 h.
Results:
In our cell model of acute exposure to a high concentration of tacrolimus, different metabolic pathways were impacted including those of arginine (e.g., citrulline, ornithine) (p < 0.0001), amino acids (e.g., valine, isoleucine, aspartic acid) (p < 0.0001) and pyrimidine (p < 0.01). In addition, it induced oxidative stress (p < 0.01) as shown by a decrease in total cell glutathione quantity. It impacted cell energy through an increase in Krebs cycle intermediates (e.g., citrate, aconitate, fumarate) (p < 0.01) and down-regulation of PCK-1 (p < 0.05) and FPB1 (p < 0.01), which are key enzymes in gluconeogenesis and acid-base balance control.
Discussion:
The variations found using a multi-omics pharmacological approach clearly point towards a dysregulation of energy production and decreased gluconeogenesis, a hallmark of chronic kidney disease which may also be an important toxicity pathway of tacrolimus.
Insights
Tacrolimus (immunosuppressant) causes kidney damage by disrupting cellular energy production and gluconeogenesis. This study reveals off-target effects impacting metabolic pathways, offering insights into its nephrotoxicity.
Area of Science:
- Biochemistry
- Pharmacology
- Cell Biology
Background:
- Tacrolimus is a vital immunosuppressant for organ transplant recipients.
- Tacrolimus exhibits nephrotoxicity through incompletely understood mechanisms.
- Understanding tacrolimus's off-target effects is crucial for mitigating kidney damage.
Purpose of the Study:
- To investigate the off-target pathways modulated by tacrolimus in proximal tubular cells.
- To elucidate the molecular mechanisms underlying tacrolimus-induced nephrotoxicity using a multi-omics approach.
Main Methods:
- LLC-PK1 cells were treated with 5 µM tacrolimus for 24 hours.
- Intracellular and extracellular metabolites were analyzed using LC-MS/MS.
- Gene expression of key gluconeogenesis enzymes (PCK-1, FBP1, FBP2) was quantified via RT-qPCR.
Main Results:
- Tacrolimus significantly impacted arginine, amino acid, and pyrimidine metabolic pathways.
- It induced oxidative stress, evidenced by decreased glutathione levels.
- Cellular energy metabolism was altered, with increased Krebs cycle intermediates and downregulated gluconeogenesis enzymes (PCK-1, FBP1).
Conclusions:
- Multi-omics analysis revealed tacrolimus dysregulates cellular energy production and gluconeogenesis.
- These metabolic disruptions are potential key mechanisms of tacrolimus nephrotoxicity.
- Findings provide insights into preventing or managing tacrolimus-induced kidney injury.
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