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Assessing Cortical Cerebral Microinfarcts on High Resolution MR Images
Published on: November 20, 2015
Field-Cycling MRI for Identifying Minor Ischemic Stroke Below 0.2 T
Vasiliki Mallikourti1, P James Ross1, Oliver Maier1
1From the Aberdeen Biomedical Imaging Centre (V.M., P.J.R., E.F., D.J.L., L.M.B.) and Institute of Medical Sciences (M.J.M.), University of Aberdeen, Polwarth Building, Foresterhill, Aberdeen AB25 2ZD, United Kingdom; Institute of Medical Engineering, Graz University of Technology, Graz, Austria (O.M.); and Acute Stroke Unit, Aberdeen Royal Infirmary, Aberdeen, United Kingdom (G.G.G.).
Field-cycling imaging (FCI) can identify subacute ischemic stroke by detecting T1 relaxation changes at low magnetic fields. This new imaging technique shows promise for stroke diagnosis, offering novel contrast mechanisms.
Area of Science:
- Medical Imaging
- Biophysics
- Neurology
Background:
- Field-cycling imaging (FCI) measures T1 relaxation time constants across a range of low magnetic fields (0.2-200 mT).
- FCI offers novel contrast mechanisms potentially useful for stroke detection, beyond conventional MRI capabilities.
- This technology was developed at the University of Aberdeen.
Purpose of the Study:
- To evaluate a prototype whole-body FCI scanner for identifying infarct regions in subacute ischemic stroke patients.
- To assess the feasibility of using FCI as an alternative imaging modality for stroke.
Main Methods:
- Prospective study of adult patients with confirmed ischemic stroke admitted to a stroke unit.
- FCI scans acquired 1-6 days post-ictus at 0.2 mT to 0.2 T with varying evolution times.
- T1 maps generated; infarct regions compared to contralateral unaffected brain using Wilcoxon signed-rank test.
Main Results:
- FCI scans below 0.2 T showed hyperintense T1 regions corresponding to infarcts, with 86% interrater agreement.
- Infarct-to-contralateral tissue contrast increased as magnetic field strength decreased (r = -0.68, P < .001).
- T1 dispersion slopes differed significantly between infarct and unaffected tissues (P = .03).
Conclusions:
- Whole-brain FCI effectively identifies subacute ischemic stroke using T1 relaxation mechanisms.
- FCI can detect stroke at magnetic field strengths as low as 0.2 mT.
- This technique demonstrates potential as a valuable tool in stroke imaging.
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