Jet fuel toxicity: skin damage measured by 900-MHz MRI skin microscopy and visualization by 3D MR image processing

Rakesh Sharma1, Bruce R Locke

  • 1Center for Interdisciplinary Magnetic Resonance, National High Magnetic Field Laboratory, Florida State University, Tallahassee, FL 32310, USA. rs05h@fsu.edu

Insights

High-resolution magnetic resonance microimaging (MRM) effectively visualized and measured jet fuel-induced skin damage in rats. This noninvasive technique accurately assessed changes in epidermis and hair follicles, correlating well with histopathology data.

Area of Science:

  • Toxicology
  • Biomedical Imaging
  • Dermatology

Background:

  • Jet fuels can cause skin irritation and damage.
  • Assessing dermal toxicity noninvasively is crucial for understanding exposure effects.
  • Magnetic Resonance Microimaging (MRM) offers high-resolution visualization capabilities.

Purpose of the Study:

  • To evaluate the toxicity of jet fuels on rat skin using noninvasive MRM.
  • To visualize and quantify changes in epidermis and hair follicles after jet fuel exposure.
  • To compare the efficacy of MRM with traditional histopathology methods.

Main Methods:

  • High-resolution 900-MHz MRM was employed to image rat skin exposed to jet fuels.
  • Multiple imaging techniques (MTC, T1, T2*, diffusion tensor, chemical shift) were utilized.
  • Image processing and segmented color-coded feature spaces were used for quantitative analysis.

Main Results:

  • MRM successfully visualized epidermis exfoliation, thickening, and hair follicle atrophy.
  • MRM data showed strong correlation with histopathology for epidermis thickness (R²=0.9052) and hair root area (R²=0.88).
  • Toxicity ranking of jet fuels was determined: tetradecane > hexadecane > dodecane.

Conclusions:

  • High-resolution MRM is a sensitive and specific noninvasive method for evaluating jet fuel dermal toxicity.
  • MRM provides 3D spatial visualization of skin structure changes, aiding in toxicity assessment and fuel comparison.
  • The study demonstrated MRM's potential as a valuable tool in toxicological and dermatological research.