Effect of paramagnetic manganese cations on (1)H MRS of the brain

Kathrine Skak Madsen1, David Alberg Holm, Lise Vejby Søgaard

  • 1Danish Research Centre for Magnetic Resonance, Copenhagen University Hospital, Hvidovre, Denmark. kathrine@drcmr.dk

NMR in Biomedicine
|June 25, 2008
PubMed

Insights

Manganese (Mn2+) as an MRI contrast agent has potential neurotoxicity. This study found that even at high concentrations, manganese did not significantly alter brain (1)H-MR spectra in vivo.

Area of Science:

  • Neuroimaging
  • Magnetic Resonance Imaging (MRI)

Background:

  • Manganese cations (Mn2+) are explored as intracellular MRI contrast agents.
  • High Mn2+ concentrations pose neurotoxicity risks and may affect detectable brain metabolites and their relaxation properties.

Purpose of the Study:

  • To investigate the impact of paramagnetic Mn2+ cations on (1)H-MR spectra of the brain.
  • To assess Mn2+ effects on metabolite relaxation and in vivo spectra using phantom and animal models at 4.7 Tesla.

Main Methods:

  • Determined T1 relaxation times of N-acetylaspartate (NAA), creatine, and choline solutions with varying Mn2+ concentrations and albumin presence.
  • Utilized an in vivo optic tract tracing model for superior colliculi imaging after intravitreal MnCl2 injection.
  • Estimated in vivo Mn2+ concentration based on phantom and in vivo water relaxation data.

Main Results:

  • N-acetylaspartate (NAA) demonstrated the highest sensitivity to Mn2+ induced relaxation effects in phantom studies.
  • In vivo imaging revealed distinct water T1 values in Mn2+-enhanced versus unenhanced regions of the superior colliculi.
  • Estimated in vivo Mn2+ concentration was 2-8 microM, with phantom data suggesting minimal metabolite relaxation effects at this level.

Conclusions:

  • Despite potential neurotoxicity and paramagnetic influences, Mn2+ did not significantly affect (1)H-MR spectra in the studied in vivo model.
  • The findings suggest Mn2+ can be used as an MRI contrast agent with limited impact on metabolite spectra at effective concentrations.

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