Urinary proton magnetic resonance studies of early ifosfamide-induced nephrotoxicity and encephalopathy

P J Foxall1, J M Singer, J M Hartley

  • 1Institute of Urology and Nephrology, University College London Medical School, University of London, London, United Kingdom.

Insights

Proton nuclear magnetic resonance (1H NMR) urinalysis identified novel biochemical markers for ifosfamide toxicity, revealing changes in metabolite excretion and aiding in monitoring renal toxicity and cytoprotection.

Area of Science:

  • Biochemistry
  • Oncology
  • Nephrology

Background:

  • Ifosfamide is a crucial chemotherapeutic agent for various cancers.
  • Nephrotoxicity and neurotoxicity are significant dose-limiting side effects of ifosfamide treatment.
  • Identifying reliable biomarkers for ifosfamide-induced toxicity is essential for patient management.

Purpose of the Study:

  • To utilize high-resolution proton nuclear magnetic resonance (1H NMR) spectroscopy of urine to discover novel biochemical markers of ifosfamide-induced toxicity.
  • To compare urinary metabolite profiles in nonencephalopathic and encephalopathic patients receiving ifosfamide.
  • To investigate the correlation between urinary markers and the degree of renal toxicity and cytoprotection.

Main Methods:

  • Collected urine samples from patients undergoing ifosfamide therapy, including nonencephalopathic and encephalopathic groups.
  • Employed high-resolution proton nuclear magnetic resonance (1H NMR) spectroscopy for detailed urinalysis.
  • Analyzed time-related changes in endogenous low molecular weight metabolites and specific proteins.

Main Results:

  • 1H NMR identified characteristic changes in urinary metabolite excretion, including decreased hippurate and increased glycine, histidine, glucose, lactate, and trimethylamine-N-oxide.
  • Transient glutaric or adipic aciduria was observed in two nonencephalopathic patients.
  • Urinary retinol-binding protein levels increased post-treatment, and the mesna:dimesna ratio correlated with renal toxicity.
  • Metabolite changes in encephalopathic patients were similar to nonencephalopathic ones, without glutaric aciduria.

Conclusions:

  • 1H NMR spectroscopy is a valuable tool for identifying novel biochemical markers of ifosfamide toxicity.
  • Ifosfamide nephrotoxicity affects both cortical and medullary regions of the kidney.
  • The urinary mesna:dimesna ratio may serve as an indicator of cytoprotection effectiveness.
  • Findings contribute to optimizing ifosfamide therapy and managing its associated toxicities.

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