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Published on: July 17, 2016
New insights into the vancomycin-induced nephrotoxicity using in vitro metabolomics combined with physiologically
Haiyan Du1, Zheng Li2, Yi Yang3
1Department of Pharmacy, Beijing Anzhen Hospital, Capital Medical University, Beijing, China.
Abstract:
Vancomycin is a first-line treatment for invasive infections caused by multidrug-resistant gram-positive bacteria. However, vancomycin-induced nephrotoxicity is an increasing burden, particularly in patients with complex life-threatening conditions. Vancomycin-induced nephrotoxicity associated with clinically relevant exposure on the target site has not been well defined. This study aimed to acquire the concentration of vancomycin in the renal tubules and kidneys in humans using physiologically based pharmacokinetic (PBPK) modeling and simulation. Based upon the exposure of vancomycin in the renal tubule, the toxicity of vancomycin in human renal proximal tubular epithelial cells was examined with the XTT assay and in vitro metabolomics analysis. A rat PBPK model predicting plasma and kidney concentration-time profiles of vancomycin matched the observed behavior after a single administration of 10 mg/kg. The concentration of vancomycin in renal tubules was about 40-50 times higher than that in plasma. The human PBPK model transferred from the rat model predicted renal tubule concentrations of vancomycin as 316.1-2136.6 μg/mL at 500 mg every 6 hours, and 199.0-3932.5 μg/mL at 1000 mg every 12 hours. Vancomycin showed significant nephrotoxicity at 4 mg/mL in XTT assessment. In total, 11 lysophosphatidylcholines and one lysophosphatidylethanolamine were identified by metabolomics analysis. The concentration-dependent increase was evident in the release of lysophospholipids after vancomycin treatment (0.125-4 mg/mL) for 24 hours. Our study revealed the relationship between the exposure of vancomycin in the kidney and toxicity of vancomycin at clinically relevant concentrations achieved from a mechanical PBPK model. A series of lysophospholipids as potential metabolic markers of renal toxicity were identified.
Insights
Vancomycin accumulates in renal tubules at concentrations 40-50 times higher than plasma, causing significant nephrotoxicity. Lysophospholipids were identified as potential biomarkers for this vancomycin-induced kidney damage.
Area of Science:
- Pharmacology
- Nephrology
- Toxicology
Background:
- Vancomycin is crucial for treating resistant gram-positive infections.
- Vancomycin-induced nephrotoxicity poses a significant clinical challenge, especially in critically ill patients.
- The precise relationship between vancomycin exposure at the target site and its nephrotoxicity remains unclear.
Purpose of the Study:
- To quantify vancomycin concentration in human renal tubules and kidneys using physiologically based pharmacokinetic (PBPK) modeling.
- To evaluate the in vitro nephrotoxicity of vancomycin in human renal proximal tubular epithelial cells.
- To identify potential metabolic biomarkers of vancomycin-induced renal toxicity.
Main Methods:
- Developed and validated a rat PBPK model to predict vancomycin plasma and kidney concentrations.
- Transferred the rat PBPK model to predict human renal tubule vancomycin concentrations.
- Assessed vancomycin toxicity using XTT assays and in vitro metabolomics on human renal cells.
Main Results:
- Vancomycin concentrations in renal tubules were 40-50 times higher than in plasma.
- Predicted human renal tubule concentrations ranged from 199.0–3932.5 μg/mL based on PBPK modeling.
- Significant nephrotoxicity was observed at 4 mg/mL, with concentration-dependent release of lysophospholipids.
Conclusions:
- PBPK modeling effectively linked vancomycin exposure in the kidney to its toxicity at clinically relevant concentrations.
- Lysophosphatidylcholines and lysophosphatidylethanolamine were identified as potential metabolic markers for vancomycin-induced renal toxicity.
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