Cape Town - 2026 ISMRM-ISMRT Annual Meeting and Exhibition
9 May 2026 – 14 May 2026 · Cape Town, South Africa
361-06-010 ISMRM Abstract

Motion-resolved 3D carotid vessel wall T1 mapping: reproducibility from a 64-element head-neck to a 2-element carotid coil

Accepted
Isabel Montón Quesada 1, Céline Hirsch1, Pauline Calarnou1, Jean-Baptiste LEDOUX1,2, Jérôme Yerly1,2, Christopher W Roy1, Augustin C Ogier1, Ruud B van Heeswijk1
1Department of Radiology, Lausanne University Hospital (CHUV) and University of Lausanne (UNIL), Lausanne, Switzerland
2CIBM Center for Biomedical Imaging, Lausanne, Switzerland
Presenting Author: Isabel Montón Quesada

Synopsis

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References

1. Qi H, Sun J, Qiao H, et al. Carotid Intraplaque Hemorrhage Imaging with Quantitative Vessel Wall T1 Mapping: Technical Development and Initial Experience. Radiology. 2018;287(1):276-284. doi:10.1148/radiol.2017170526 [doi]
2. Serry FM, Ma S, Mao X, et al. Dual flip-angle IR-FLASH with spin history mapping for B1+ corrected T1 mapping: Application to T1 cardiovascular magnetic resonance multitasking. Magnetic Resonance in Medicine. 2021;86(6):3182-3191. doi:10.1002/mrm.28935 [doi]
3. Boussel L, Herigault G, de la Vega A, et al. Swallowing, arterial pulsation, and breathing induce motion artifacts in carotid artery MRI. Journal of Magnetic Resonance Imaging. 2006;23(3):413-415. doi:10.1002/jmri.20525 [doi]
4. Montón Quesada I, Calarnou P, Ledoux JB, et al. Self-gated respiratory-resolved 4D T1 mapping of the carotid vessel wall with B1+ correction. Proc Int Soc Magn Reson Med, Hawaii, USA; 2025: 1822. https://doi.org/10.58530/2025/1822 [doi]
5. Stupic KF, Ainslie M, Boss MA, et al. A standard system phantom for magnetic resonance imaging. Magnetic Resonance in Medicine. 2021;86(3):1194-1211. doi:10.1002/mrm.28779 [doi]
6. Piccini D, Littmann A, Nielles‐Vallespin S, et al. Spiral phyllotaxis: The natural way to construct a 3D radial trajectory in MRI. Magnetic Resonance in Med. 2011;66(4):1049-1056. doi:10.1002/mrm.22898 [doi]
7. Ding Z, She H, Chen Q, et al. Reduction of ringing artifacts induced by diaphragm drifting in free-breathing dynamic pulmonary MRI using 3D koosh-ball acquisition. Magnetic Resonance in Medicine. 2024;92(5):2021-2036. doi:10.1002/mrm.30207 [doi]
8. Delacoste J, Chaptinel J, Beigelman‐Aubry C, et al. A double echo ultra short echo time (UTE) acquisition for respiratory motion‐suppressed high resolution imaging of the lung. Magnetic Resonance in Med. 2018;79(4):2297-2305. doi:10.1002/mrm.26891 [doi]
9. Messroghli DR, Radjenovic A, Kozerke S, et al. Modified Look-Locker inversion recovery (MOLLI) for high-resolution T1 mapping of the heart. Magnetic Resonance in Medicine. 2004;52(1):141-146. doi:10.1002/mrm.20110 [doi]
10. Rosenzweig S, Scholand N, Holme HCM, et al. Cardiac and Respiratory Self-Gating in Radial MRI Using an Adapted Singular Spectrum Analysis (SSA-FARY). IEEE Trans Med Imaging. 2020;39(10):3029-3041. doi:10.1109/TMI.2020.2985994 [doi]
11. Montón Quesada I, Ogier AC, Ishida M, et al. Self-gated free-running 5D whole-heart MRI using blind source separation for automated cardiac motion extraction. Magnetic Resonance in Medicine. 2024;93(3):961-974. doi:10.1002/mrm.30322 [doi]
12. Di Sopra L, Piccini D, Coppo S, et al. An automated approach to fully self‐gated free‐running cardiac and respiratory motion‐resolved 5D whole‐heart MRI. Magnetic Resonance in Med. 2019;82(6):2118-2132. doi:10.1002/mrm.27898 [doi]
13. Neumann D, Breuer FA, Völker M, et al. Reducing contrast contamination in radial turbo-spin-echo acquisitions by combining a narrow-band KWIC filter with parallel imaging. Magnetic Resonance in Medicine. 2014;72(6):1680-1686. doi:10.1002/mrm.25081 [doi]

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