𝔖 Bobbio Scriptorium
✦   LIBER   ✦

Real-time MR imaging of myocardial regional function using strain-encoding (SENC) with tissue through-plane motion tracking

✍ Scribed by El-Sayed H. Ibrahim; Matthias Stuber; Ahmed S. Fahmy; Khaled Z. Abd-Elmoniem; Tetsuo Sasano; M. Roselle Abraham; Nael F. Osman


Publisher
John Wiley and Sons
Year
2007
Tongue
English
Weight
744 KB
Volume
26
Category
Article
ISSN
1053-1807

No coin nor oath required. For personal study only.

✦ Synopsis


Abstract

Purpose

To implement real‐time myocardial strain‐encoding (SENC) imaging in combination with tracking the tissue displacement in the through‐plane direction.

Materials and Methods

SENC imaging was combined with the slice‐following technique by implementing three‐dimensional (3D) selective excitation. Certain adjustments were implemented to reduce scan time to one heartbeat. A total of 10 volunteers and five pigs were scanned on a 3T MRI scanner. Spatial modulation of magnetization (SPAMM)‐tagged images were acquired on planes orthogonal to the SENC planes for comparison. Myocardial infarction (MI) was induced in two pigs and the resulting SENC images were compared to standard delayed‐enhancement (DE) images.

Results

The strain values computed from SENC imaging with slice‐following showed significant difference from those acquired without slice‐following, especially during systole (P < 0.01). The strain curves computed from the SENC images with and without slice‐following were similar to those computed from the orthogonal SPAMM images, with and without, respectively, tracking the tag line displacement in the strain direction. The resulting SENC images showed good agreement with the DE images in identifying MI in infarcted pigs.

Conclusion

Correction of through‐plane motion in real‐time cardiac functional imaging is feasible using slice‐following. The strain measurements are more accurate than conventional SENC measurements in humans and animals, as validated with conventional MRI tagging. J. Magn. Reson. Imaging 2007. © 2007 Wiley‐Liss, Inc.