» Articles » PMID: 21785888

Image-based Monitoring of Magnetic Resonance-guided Thermoablative Therapies for Liver Tumors

Overview
Date 2011 Jul 26
PMID 21785888
Citations 12
Authors
Affiliations
Soon will be listed here.
Abstract

Minimally invasive treatment options for liver tumor therapy have been increasingly used during the last decade because their benefit has been proven for primary and inoperable secondary liver tumors. Among these, radiofrequency ablation has gained widespread consideration. Optimal image-guidance offers precise anatomical information, helps to position interventional devices, and allows for differentiation between already-treated and remaining tumor tissue. Patient safety and complete ablation of the entire tumor are the overriding objectives of tumor ablation. These may be achieved most elegantly with magnetic resonance (MR)-guided therapy, where monitoring can be performed based on precise soft-tissue imaging and additional components, such as diffusion-weighted imaging and temperature mapping. New MR scanner types and newly developed sequence techniques have enabled MR-guided intervention to move beyond the experimental phase. This article reviews the current role of MR imaging in guiding radiofrequency ablation. Signal characteristics of primary and secondary liver tumors are identified, and signal alteration during therapy is described. Diffusion-weighted imaging (DWI) and temperature mapping as special components of MR therapy monitoring are introduced. Practical information concerning coils, sequence selection, and parameters, as well as sequence gating, is given. In addition, sources of artifacts are identified and techniques to decrease them are introduced, and the characteristic signs of residual tumor in T1-, T2-, and DWI are described. We hope to enable the reader to choose MR sequences that allow optimal therapy monitoring depending on the initial signal characteristics of the tumor as well as its size and location in the liver.

Citing Articles

Deep learning-based automatic pipeline for 3D needle localization on intra-procedural 3D MRI.

Zhou W, Li X, Zabihollahy F, Lu D, Wu H Int J Comput Assist Radiol Surg. 2024; 19(11):2227-2237.

PMID: 38520646 PMC: 11541278. DOI: 10.1007/s11548-024-03077-3.


CT versus MR guidance for radiofrequency ablation in patients with colorectal liver metastases: a 10-year follow-up favors MR guidance.

Pereira P, Siemou P, Rempp H, Hoffmann R, Hoffmann R, Kettenbach J Eur Radiol. 2023; 34(7):4663-4671.

PMID: 38041717 DOI: 10.1007/s00330-023-10270-6.


The Effect of Cooling Fluid Composition on Ablation Size in Hepatic Laser Ablation: A Comparative Study in an Ex Vivo Bovine Setting.

Mankertz F, Bayerl N, Gemeinhardt O, Hosten N, Kromrey M Tomography. 2023; 9(5):1638-1648.

PMID: 37736984 PMC: 10514785. DOI: 10.3390/tomography9050131.


Improved visualization of hepatic tumors in magnetic resonance-guided thermoablation using T1-inversion-recovery imaging with variable inversion time.

Kubler J, Krumm P, Martirosian P, Winkelmann M, Gohla G, Nikolaou K Eur Radiol. 2023; 33(10):7015-7024.

PMID: 37133519 PMC: 10511564. DOI: 10.1007/s00330-023-09696-9.


Simulated accuracy assessment of small footprint body-mounted probe alignment device for MRI-guided cryotherapy of abdominal lesions.

Shono N, Ninni B, King F, Kato T, Tokuda J, Fujimoto T Med Phys. 2020; 47(6):2337-2349.

PMID: 32141080 PMC: 7889307. DOI: 10.1002/mp.14116.