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Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
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
Abstract:
Manganese cations (Mn(2+)) can be used as an intracellular contrast agent for structural, functional and neural pathway imaging applications. However, at high concentrations, Mn(2+) is neurotoxic and may influence the concentration of (1)H MR-detectable metabolites. Furthermore, the paramagnetic Mn(2+) cations may also influence the relaxation of the metabolites under investigation. Consequently, the purpose of this study was to investigate the effect of paramagnetic Mn(2+) cations on (1)H-MR spectra of the brain using in vivo and phantom models at 4.7 T. To investigate the direct paramagnetic effects of Mn(2+) cations on the relaxation of N-acetylaspartate (NAA), creatine and choline, T(1) relaxation times of metabolite solutions, with and without 5% albumin, and containing different Mn(2+) concentrations were determined. Relaxivity values with/without 5% albumin for NAA (4.8/28.1 s(-1) mM(-1)), creatine (2.8/2.8 s(-1) mM(-1)) and choline (1.8/1.1 s(-1) mM(-1)) showed NAA to be the most sensitive metabolite to the relaxation effects of the cations. Using an in vivo optic tract tracing imaging model, we obtained two adjacent regions of interest in the superior colliculi with different water T(1) values (Mn(2+)-enhanced = 1.01 s; unenhanced = 1.14 s) 24 h after intravitreal injection of 3 microL 50 mM MnCl(2). Using phantom and in vivo water relaxation time data, we estimated the in vivo Mn(2+) concentration to be 2-8 microM. The phantom data suggest that limited metabolite relaxation effects would be expected at this concentration. Consequently, this study indicates that, in this model, the presence of Mn(2+) cations does not significantly affect (1)H-MR spectra despite possible toxic and paramagnetic effects.
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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