Cape Town - 2026 ISMRM-ISMRT Annual Meeting and Exhibition
9 May 2026 – 14 May 2026 · Cape Town, South Africa
564-02-014 Registered Abstract

TFI vs LBV for susceptibility artifact correction during MR thermometry monitored mild RF hyperthermia in soft tissue sarcoma

Accepted
Marianne Göger-Neff1, Spyridon N Karkavitsas1, Benjamin Zilles1, Olaf Dietrich2, Christof Boehm3, Dimitrios Karampinos3,4,5, Lars H Lindner1, Mingming Wu 2,3
1Department of Medicine III, LMU Klinikum Munich, München, Germany
2Department of Radiology, LMU Klinikum Munich, München, Germany
3Institute for Diagnostic and Interventional Radiology, School of Medicine and Health, TUM University Hospital, Technical University of Munich (TUM), Munich, Germany
4Laboratory of Magnetic Resonance Imaging Systems and Methods, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland
5CIBM Center for Biomedical Imaging, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland
Presenting Author: Mingming Wu

Synopsis

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References

1. Veltsista, P. D., Oberacker, E., Ademaj, A., Corradini, S., Eckert, F., Flörcken, A., Kaul, D., Lindner, L. H., Issels, R., Ott, O. J., Pink, D., Potkrajcic, V., Reichardt, P., Roohani, S., Spalek, M. J., Riesterer, O., Zips, D., & Ghadjar, P. (2023). Hyperthermia in the treatment of high-risk soft tissue sarcomas: a systematic review. International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group, 40(1), 2236337. https://doi.org/10.1080/02656736.2023.2236337 [doi]
2. Kim K, Narsinh K, Ozhinsky E. Technical advances in motion-robust MR thermometry. Magn Reson Med. 2024; 92: 15-27. doi: 10.1002/mrm.30057 [doi]
3. Winter, L., Oberacker, E., Paul, K., Ji, Y., Oezerdem, C., Ghadjar, P., … Niendorf, T. (2015). Magnetic resonance thermometry: Methodology, pitfalls and practical solutions. International Journal of Hyperthermia, 32(1), 63–75. https://doi.org/10.3109/02656736.2015.1108462 [doi]
4. Zhou, D., Liu, T., Spincemaille, P., & Wang, Y. (2014). Background field removal by solving the Laplacian boundary value problem. NMR in biomedicine, 27(3), 312–319. https://doi.org/10.1002/nbm.3064 [doi]
5. Wu M, Mulder HT, Baron P, et al. Correction of motion-induced susceptibility artifacts and B0 drift during proton resonance frequency shift-based MR thermometry in the pelvis with background field removal methods. Magn Reson Med. 2020; 84: 2495–2511. https://doi.org/10.1002/mrm.28302 [doi]
6. Boehm, C., Goeger-Neff, M., Mulder, H. T., Zilles, B., Lindner, L. H., van Rhoon, G. C., Karampinos, D. C., & Wu, M. (2022). Susceptibility artifact correction in MR thermometry for monitoring of mild radiofrequency hyperthermia using total field inversion. Magnetic resonance in medicine, 88(1), 120–132. https://doi.org/10.1002/mrm.29191 [doi]
7. Karkavitsas, S. N., Göger-Neff, M., Kawula, M., Sumser, K., Zilles, B., Wadepohl, M., Landry, G., Kurz, C., Kunz, W. G., Dietrich, O., Lindner, L. H., & Paulides, M. M. (2024). Evaluation of magnetic resonance thermometry performance during MR-guided hyperthermia treatment of soft-tissue sarcomas in the lower extremities and pelvis. International journal of hyperthermia, 41(1), 2405105. https://doi.org/10.1080/02656736.2024.2405105 [doi]

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