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Rapid estimation of cartilage T2 based on double echo at steady state (DESS) with 3 Tesla

✍ Scribed by Goetz H. Welsch; Klaus Scheffler; Tallal C. Mamisch; Timothy Hughes; Steven Millington; Michael Deimling; Siegfried Trattnig


Publisher
John Wiley and Sons
Year
2009
Tongue
English
Weight
447 KB
Volume
62
Category
Article
ISSN
0740-3194

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✦ Synopsis


Abstract

The double‐echo‐steady‐state (DESS) sequence generates two signal echoes that are characterized by a different contrast behavior. Based on these two contrasts, the underlying T2 can be calculated. For a flip‐angle of 90°, the calculated T2 becomes independent of T1, but with very low signal‐to‐noise ratio. In the present study, the estimation of cartilage T2, based on DESS with a reduced flip‐angle, was investigated, with the goal of optimizing SNR, and simultaneously minimizing the error in T2. This approach was validated in phantoms and on volunteers. T2 estimations based on DESS at different flip‐angles were compared with standard multiecho, spin‐echo T2. Furthermore, DESS‐T2 estimations were used in a volunteer and in an initial study on patients after cartilage repair of the knee. A flip‐angle of 33° was the best compromise for the combination of DESS‐T2 mapping and morphological imaging. For this flip angle, the Pearson correlation was 0.993 in the phantom study (∼20% relative difference between SE‐T2 and DESS‐T2); and varied between 0.429 and 0.514 in the volunteer study. Measurements in patients showed comparable results for both techniques with regard to zonal assessment. This DESS‐T2 approach represents an opportunity to combine morphological and quantitative cartilage MRI in a rapid one‐step examination. Magn Reson Med, 2009. © 2009 Wiley‐Liss, Inc.


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Morphological and biochemical T2 evaluat
✍ Goetz H. Welsch; Tallal C. Mamisch; Lukas Zak; Andreas Mauerer; Sebastian Appric 📂 Article 📅 2011 🏛 John Wiley and Sons 🌐 English ⚖ 420 KB

## Abstract ## Purpose: To use a new approach which provides, based on the widely used three‐dimensional double‐echo steady‐state (DESS) sequence, in addition to the morphological information, the generation of biochemical T2 maps in one hybrid sequence. ## Materials and Methods: In 50 consecuti