Gadolinium enhancement increases the sensitivity of MRI in detecting disease activity in multiple sclerosis

D H Miller1, F Barkhof, J J Nauta

  • 1University Department of Clinical Neurology, National Hospital for Neurology and Neurosurgery, London, UK.

Insights

Gadolinium enhancement significantly improves the sensitivity of monthly brain MRI scans for monitoring multiple sclerosis treatments. Post-contrast short TR SE sequences are most effective for detecting active lesions in MS patients.

Area of Science:

  • Neurology
  • Radiology
  • Medical Imaging

Background:

  • Serial brain MRI is crucial for monitoring multiple sclerosis (MS) treatment efficacy.
  • The necessity of gadolinium enhancement in these MRI scans for detecting active lesions remained unclear.

Purpose of the Study:

  • To compare the sensitivity of gadolinium-enhanced short repetition time (TR) spin echo (SE) sequences versus unenhanced long TR SE sequences in detecting active lesions in MS patients.
  • To determine the optimal MRI sequence for monitoring MS treatment.

Main Methods:

  • A blind analysis compared long TR SE and gadolinium-enhanced short TR SE sequences.
  • 26 untreated patients with relapsing-remitting or secondary progressive MS underwent monthly MRI for four occasions.
  • Active lesions were defined based on new, enlarged, or persistent enhancing lesions on respective sequences.

Main Results:

  • Gadolinium enhancement markedly increased sensitivity, detecting 106-144 active lesions compared to long TR SE alone.
  • 64% of active lesions were detected exclusively with gadolinium enhancement on short TR SE.
  • 15% were detected only on long TR SE, and 21% were detected on both.

Conclusions:

  • Gadolinium enhancement significantly boosts the sensitivity of monthly brain MRI for monitoring MS treatment.
  • Post-contrast short TR SE sequences are the most sensitive for detecting active lesions in frequent MS monitoring.
  • Long TR SE sequences should still be performed due to a notable incidence of lesions detected exclusively by this method.

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