Evaluation of the impact of strain correction on the orientation of cardiac diffusion tensors with in vivo and ex vivo porcine hearts
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Accepted version
Author(s)
Type
Journal Article
Abstract
Purpose
To evaluate the importance of strain-correcting stimulated echo acquisition mode echo-planar imaging cardiac diffusion tensor imaging.
Methods
Healthy pigs (n = 11) were successfully scanned with a 3D cine displacement-encoded imaging with stimulated echoes and a monopolar-stimulated echo-planar imaging diffusion tensor imaging sequence at 3 T during diastasis, peak systole, and strain sweet spots in a midventricular short-axis slice. The same diffusion tensor imaging sequence was repeated ex vivo after arresting the hearts in either a relaxed (KCl-induced) or contracted (BaCl2-induced) state. The displacement-encoded imaging with stimulated echoes data were used to strain-correct the in vivo cardiac diffusion tensor imaging in diastole and systole. The orientation of the primary (helix angles) and secondary (E2A) diffusion eigenvectors was compared with and without strain correction and to the strain-free ex vivo data.
Results
Strain correction reduces systolic E2A significantly when compared without strain correction and ex vivo (median absolute E2A = 34.3° versus E2A = 57.1° (P = 0.01), E2A = 60.5° (P = 0.006), respectively). The systolic distribution of E2A without strain correction is closer to the contracted ex vivo distribution than with strain correction, root mean square deviation of 0.027 versus 0.038.
Conclusions
The current strain-correction model amplifies the contribution of microscopic strain to diffusion resulting in an overcorrection of E2A. Results show that a new model that considers cellular rearrangement is required.
To evaluate the importance of strain-correcting stimulated echo acquisition mode echo-planar imaging cardiac diffusion tensor imaging.
Methods
Healthy pigs (n = 11) were successfully scanned with a 3D cine displacement-encoded imaging with stimulated echoes and a monopolar-stimulated echo-planar imaging diffusion tensor imaging sequence at 3 T during diastasis, peak systole, and strain sweet spots in a midventricular short-axis slice. The same diffusion tensor imaging sequence was repeated ex vivo after arresting the hearts in either a relaxed (KCl-induced) or contracted (BaCl2-induced) state. The displacement-encoded imaging with stimulated echoes data were used to strain-correct the in vivo cardiac diffusion tensor imaging in diastole and systole. The orientation of the primary (helix angles) and secondary (E2A) diffusion eigenvectors was compared with and without strain correction and to the strain-free ex vivo data.
Results
Strain correction reduces systolic E2A significantly when compared without strain correction and ex vivo (median absolute E2A = 34.3° versus E2A = 57.1° (P = 0.01), E2A = 60.5° (P = 0.006), respectively). The systolic distribution of E2A without strain correction is closer to the contracted ex vivo distribution than with strain correction, root mean square deviation of 0.027 versus 0.038.
Conclusions
The current strain-correction model amplifies the contribution of microscopic strain to diffusion resulting in an overcorrection of E2A. Results show that a new model that considers cellular rearrangement is required.
Date Issued
2017-07-21
Date Acceptance
2017-07-02
Citation
Magnetic Resonance in Medicine, 2017, 79 (4), pp.2205-2215
ISSN
0740-3194
Publisher
Wiley
Start Page
2205
End Page
2215
Journal / Book Title
Magnetic Resonance in Medicine
Volume
79
Issue
4
Copyright Statement
© 2017 International Society for Magnetic Resonance in Medicine. This is the accepted version of the following article: Ferreira, P. F., Nielles-Vallespin, S., Scott, A. D., de Silva, R., Kilner, P. J., Ennis, D. B., Auger, D. A., Suever, J. D., Zhong, X., Spottiswoode, B. S., Pennell, D. J., Arai, A. E. and Firmin, D. N. (2017), Evaluation of the impact of strain correction on the orientation of cardiac diffusion tensors with in vivo and ex vivo porcine hearts. Magn. Reson. Med. doi:10.1002/mrm.26850, which has been published in final form at https://dx.doi.org/10.1002/mrm.26850
Sponsor
British Heart Foundation
Identifier
https://doi.org/10.1002/mrm.26850
Grant Number
PG/14/68/30798
Subjects
Science & Technology
Life Sciences & Biomedicine
Radiology, Nuclear Medicine & Medical Imaging
cardiac
diffusion tensor imaging
strain
microstructure
cardiomyocyte
sheetlets
MAGNETIC-RESONANCE
HISTOLOGICAL VALIDATION
FIBER ORIENTATION
LEFT-VENTRICLE
MRI
MOTION
MYOCARDIUM
MICROSTRUCTURE
QUANTIFICATION
DIASTOLE
0903 Biomedical Engineering
Nuclear Medicine & Medical Imaging
Publication Status
Published