Predictors of Anesthetic Exposure in Pediatric MRI

Fedel Machado-Rivas1,2, Ellen Leitman1,2, Camilo Jaimes2,3

  • 1Department of Radiology, Division of Pediatric Imaging, Massachusetts General Hospital, 55 Fruit St, Boston, MA 02114.

Insights

Pediatric MRI scan time predicts propofol dose, crucial for minimizing anesthetic exposure in children. Understanding these factors helps optimize imaging protocols for patient safety and reduced drug administration.

Area of Science:

  • Pediatric Radiology
  • Anesthesiology
  • Neuroimaging

Background:

  • Anesthetic exposure in pediatric patients undergoing MRI may adversely affect neurocognitive development.
  • Minimizing anesthetic exposure during pediatric MRI is essential for patient safety.
  • Reducing MRI scan times in children under anesthesia is a clinical priority.

Purpose of the Study:

  • To determine if pediatric MRI scan time predicts total propofol dose administered.
  • To investigate imaging and clinical factors influencing propofol dose during pediatric MRI.
  • To establish a predictive model for anesthetic exposure in pediatric MRI.

Main Methods:

  • Retrospective analysis of 501 pediatric MRI examinations (ages 0-18) from 2016-2019.
  • Inclusion of brain, brain/spine, brain/abdomen, and brain/head/neck MRI scans with propofol anesthesia.
  • Multivariable linear regression analysis adjusting for covariates including age, sex, ASA classification, and magnet strength.

Main Results:

  • MRI scan time was a significant predictor of total propofol dose (0.178 mg/kg per minute).
  • Multiple body part examinations and IV contrast administration were associated with higher propofol doses.
  • 1.5-T magnet strength correlated with longer scan times and higher propofol doses in single body part scans.

Conclusions:

  • Pediatric MRI scan time, along with clinical and imaging variables, can effectively predict anesthetic (propofol) exposure.
  • This predictive capability allows for better management and potential reduction of anesthetic doses in pediatric MRI.
  • Findings provide a baseline for optimizing pediatric MRI protocols to minimize anesthetic risks.

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