Free‐breathing myocardial T1 mapping using inversion‐recovery radial FLASH and motion‐resolved model‐based reconstruction. Issue 4 (20th November 2022)
- Record Type:
- Journal Article
- Title:
- Free‐breathing myocardial T1 mapping using inversion‐recovery radial FLASH and motion‐resolved model‐based reconstruction. Issue 4 (20th November 2022)
- Main Title:
- Free‐breathing myocardial T1 mapping using inversion‐recovery radial FLASH and motion‐resolved model‐based reconstruction
- Authors:
- Wang, Xiaoqing
Rosenzweig, Sebastian
Roeloffs, Volkert
Blumenthal, Moritz
Scholand, Nick
Tan, Zhengguo
Holme, H. Christian M.
Unterberg‐Buchwald, Christina
Hinkel, Rabea
Uecker, Martin - Abstract:
- Abstract : Purpose: To develop a free‐breathing myocardial T 1 $$ {\mathrm{T}}_1 $$ mapping technique using inversion‐recovery (IR) radial fast low‐angle shot (FLASH) and calibrationless motion‐resolved model‐based reconstruction. Methods: Free‐running (free‐breathing, retrospective cardiac gating) IR radial FLASH is used for data acquisition at 3T. First, to reduce the waiting time between inversions, an analytical formula is derived that takes the incomplete T 1 $$ {\mathrm{T}}_1 $$ recovery into account for an accurate T 1 $$ {\mathrm{T}}_1 $$ calculation. Second, the respiratory motion signal is estimated from the k‐space center of the contrast varying acquisition using an adapted singular spectrum analysis (SSA‐FARY) technique. Third, a motion‐resolved model‐based reconstruction is used to estimate both parameter and coil sensitivity maps directly from the sorted k‐space data. Thus, spatiotemporal total variation, in addition to the spatial sparsity constraints, can be directly applied to the parameter maps. Validations are performed on an experimental phantom, 11 human subjects, and a young landrace pig with myocardial infarction. Results: In comparison to an IR spin‐echo reference, phantom results confirm good T 1 $$ {\mathrm{T}}_1 $$ accuracy, when reducing the waiting time from 5 s to 1 s using the new correction. The motion‐resolved model‐based reconstruction further improves T 1 $$ {\mathrm{T}}_1 $$ precision compared to the spatial regularization‐onlyAbstract : Purpose: To develop a free‐breathing myocardial T 1 $$ {\mathrm{T}}_1 $$ mapping technique using inversion‐recovery (IR) radial fast low‐angle shot (FLASH) and calibrationless motion‐resolved model‐based reconstruction. Methods: Free‐running (free‐breathing, retrospective cardiac gating) IR radial FLASH is used for data acquisition at 3T. First, to reduce the waiting time between inversions, an analytical formula is derived that takes the incomplete T 1 $$ {\mathrm{T}}_1 $$ recovery into account for an accurate T 1 $$ {\mathrm{T}}_1 $$ calculation. Second, the respiratory motion signal is estimated from the k‐space center of the contrast varying acquisition using an adapted singular spectrum analysis (SSA‐FARY) technique. Third, a motion‐resolved model‐based reconstruction is used to estimate both parameter and coil sensitivity maps directly from the sorted k‐space data. Thus, spatiotemporal total variation, in addition to the spatial sparsity constraints, can be directly applied to the parameter maps. Validations are performed on an experimental phantom, 11 human subjects, and a young landrace pig with myocardial infarction. Results: In comparison to an IR spin‐echo reference, phantom results confirm good T 1 $$ {\mathrm{T}}_1 $$ accuracy, when reducing the waiting time from 5 s to 1 s using the new correction. The motion‐resolved model‐based reconstruction further improves T 1 $$ {\mathrm{T}}_1 $$ precision compared to the spatial regularization‐only reconstruction. Aside from showing that a reliable respiratory motion signal can be estimated using modified SSA‐FARY, in vivo studies demonstrate that dynamic myocardial T 1 $$ {\mathrm{T}}_1 $$ maps can be obtained within 2 min with good precision and repeatability. Conclusion: Motion‐resolved myocardial T 1 $$ {\mathrm{T}}_1 $$ mapping during free‐breathing with good accuracy, precision and repeatability can be achieved by combining inversion‐recovery radial FLASH, self‐gating and a calibrationless motion‐resolved model‐based reconstruction. … (more)
- Is Part Of:
- Magnetic resonance in medicine. Volume 89:Issue 4(2023)
- Journal:
- Magnetic resonance in medicine
- Issue:
- Volume 89:Issue 4(2023)
- Issue Display:
- Volume 89, Issue 4 (2023)
- Year:
- 2023
- Volume:
- 89
- Issue:
- 4
- Issue Sort Value:
- 2023-0089-0004-0000
- Page Start:
- 1368
- Page End:
- 1384
- Publication Date:
- 2022-11-20
- Subjects:
- free‐breathing myocardial T1 mapping -- self‐gating -- motion‐resolved model‐based reconstruction -- radial FLASH -- spatiotemporal total variation
Nuclear magnetic resonance -- Periodicals
Electron paramagnetic resonance -- Periodicals
616.07548 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1522-2594 ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/mrm.29521 ↗
- Languages:
- English
- ISSNs:
- 0740-3194
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5337.798000
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