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Quantitative Magnetic Resonance Imaging of Skeletal Muscle Disease
Published on: December 18, 2016
Metabolite findings in tumefactive demyelinating lesions utilizing short echo time proton magnetic resonance
A Cianfoni1, S Niku, S G Imbesi
1Department of Radiology, University of California, San Diego Medical Center, San Diego, Calif, USA.
Background And Purpose:
To use MR spectroscopy to aid in the diagnosis of demyelinating disease and to help differentiate tumefactive demyelinating lesions from neoplastic processes.
Materials And Methods:
MR imaging of the brain was obtained in 4 patients who presented clinically with focal neurologic deficits. MR imaging initially revealed parenchymal mass lesions. Single-voxel MR spectroscopy was then performed utilizing a point-resolved spectroscopy sequence protocol with a short echo time (30 msec).
Results:
MR imaging revealed a focal ring-enhancing mass in one patient, multiple ring-enhancing lesions in the second patient, a large area of edema and mass effect without associated enhancement in the third patient, and multiple solid and peripherally enhancing lesions in the fourth patient. MR spectroscopic results in all 4 patients demonstrated marked elevation of the glutamate and glutamine peaks (2.1-2.5 ppm). Other nonspecific (and in a sense confounding) findings included elevation of the choline peak (3.2 ppm), elevation of the lactate peak (1.3 ppm), elevation of the lipid peak (0.5-1.5 ppm), and decrease in the N-acetylaspartate peak (2.0 ppm). All 4 patients were eventually given the diagnosis of multiple sclerosis based on CSF analysis, brain biopsy, and/or clinical follow-up.
Conclusion:
MR spectroscopic metabolite information may be useful in the diagnosis of demyelinating disease by demonstrating elevation of the glutamate/glutamine peaks because elevation of these peaks is typically not seen in aggressive intra-axial neoplastic processes. This is particularly beneficial in the rarer cases of tumefactive demyelinating lesions, which are very difficult to differentiate from neoplasms by imaging findings alone.
Insights
Magnetic Resonance (MR) spectroscopy can help diagnose demyelinating diseases. Elevated glutamate and glutamine peaks in MR spectroscopy aid in differentiating these lesions from tumors.
Area of Science:
- Neuroimaging
- Magnetic Resonance Spectroscopy
- Neurology
Background:
- Differentiating tumefactive demyelinating lesions from neoplastic processes is challenging using conventional MR imaging alone.
- Focal neurologic deficits can present as parenchymal mass lesions on MR imaging.
- MR spectroscopy offers a non-invasive method to assess brain metabolites.
Observation:
- Four patients with suspected brain mass lesions underwent MR imaging and single-voxel MR spectroscopy.
- MR imaging showed diverse appearances, including ring-enhancing lesions and edema.
- MR spectroscopy revealed elevated glutamate and glutamine peaks in all patients.
Findings:
- Marked elevation of glutamate and glutamine peaks (2.1-2.5 ppm) was observed.
- Nonspecific findings included elevated choline, lactate, and lipid peaks, and decreased N-acetylaspartate.
- All patients were ultimately diagnosed with multiple sclerosis.
Implications:
- MR spectroscopy's ability to detect elevated glutamate/glutamine may aid in diagnosing demyelinating diseases.
- This technique is particularly valuable for distinguishing tumefactive demyelinating lesions from neoplasms.
- Metabolite information from MR spectroscopy can improve diagnostic accuracy in complex neurological cases.
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