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A comparative MRI study for white matter hyperintensities detection: 2D-FLAIR, FSE PD 2D, 3D-FLAIR and FLAIR MIP
Á Paniagua Bravo1, J J Sánchez Hernández, L Ibáñez Sanz
1Unidad Central de Radiodiagnóstico, Hospital Infanta Sofía, San Sebastián de los Reyes, Madrid, Spain.
Objective:
The main objective of this study was to not only determine the most appropriate sequence for the analysis of white matter hyperintensities (WMH) on MRI but also to confirm the advantage of three-dimensional (3D) acquisition, as it has been suggested in previous studies, and to test the convenience of using maximum intensity projection (MIP) algorithms on 3D-fluid-attenuated inversion-recovery (FLAIR) images for a quicker evaluation of brain MR studies.
Methods:
The number of WMH was compared in 40 patients and a control group of 10 volunteers using 4 different imaging modalities: two dimensional (2D)-FLAIR, 2D fast spin echo proton density (FSE PD), 3D-FLAIR and FLAIR MIP. Four experienced radiologists took part in the imaging analysis. All studies were performed on a 1.5-T whole-body MR unit.
Results:
A statistically significant difference between the number of lesions detected on 3D acquisitions (FLAIR CUBE® or FLAIR MIP sequences) compared with those on 2D-FLAIR or 2D FSE PD was demonstrated. There is no significant difference between 3D-FLAIR and FLAIR MIP, therefore both of them can be used with similar results.
Conclusion:
3D-FLAIR sequences should replace conventional 2D-FLAIR and/or FSE PD sequences in the MR acquisition protocol when WMH are suspected. MIP reformat algorithms are less time consuming, therefore these can also be used to simplify the detection.
Advances In Knowledge:
3D sequences are superior for WMH depiction. Moreover, MIP algorithms allow easier analyses with similar results.
Insights
Three-dimensional (3D) FLAIR MRI sequences are superior for detecting white matter hyperintensities (WMH). Maximum intensity projection (MIP) algorithms on 3D FLAIR images offer a quicker and simpler method for WMH evaluation.
Area of Science:
- Radiology
- Neuroimaging
- Medical Imaging Analysis
Background:
- White matter hyperintensities (WMH) are common findings in brain MRI.
- Conventional two-dimensional (2D) imaging sequences may not optimally detect WMH.
- Three-dimensional (3D) acquisition has been suggested to improve WMH visualization.
Purpose of the Study:
- To determine the optimal MRI sequence for white matter hyperintensity (WMH) analysis.
- To confirm the advantage of 3D acquisition for WMH detection.
- To evaluate the utility of maximum intensity projection (MIP) on 3D FLAIR for faster brain MR evaluations.
Main Methods:
- Comparison of WMH counts using 2D FLAIR, 2D FSE PD, 3D FLAIR, and FLAIR MIP sequences.
- Analysis conducted on 40 patients and 10 volunteers.
- All imaging performed on a 1.5-T MRI unit with evaluation by four experienced radiologists.
Main Results:
- Statistically significant difference in WMH detection between 3D acquisitions (FLAIR CUBE® or FLAIR MIP) and 2D sequences (FLAIR, FSE PD).
- No significant difference in WMH detection between 3D-FLAIR and FLAIR MIP.
- Both 3D-FLAIR and FLAIR MIP yield similar and superior results for WMH detection.
Conclusions:
- 3D-FLAIR sequences should supersede conventional 2D-FLAIR and FSE PD for suspected WMH.
- MIP reformat algorithms simplify WMH detection and are less time-consuming.
- 3D sequences offer superior WMH depiction, with MIP algorithms facilitating easier analysis with comparable results.
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