Literature DB >> 23297324

Percutaneous punctures with MR imaging guidance: comparison between MR imaging-enhanced fluoroscopic guidance and real-time MR Imaging guidance.

Bernhard Christian Meyer1, Alexander Brost, Dara L Kraitchman, Wesley D Gilson, Norbert Strobel, Joachim Hornegger, Jonathan S Lewin, Frank K Wacker.   

Abstract

PURPOSE: To evaluate and compare the technical accuracy and feasibility of magnetic resonance (MR) imaging-enhanced fluoroscopic guidance and real-time MR imaging guidance for percutaneous puncture procedures in phantoms and animals.
MATERIALS AND METHODS: The experimental protocol was approved by the institutional animal care and use committee. Punctures were performed in phantoms, aiming for markers (20 each for MR imaging-enhanced fluoroscopic guidance and real-time MR imaging guidance), and pigs, aiming for anatomic landmarks (10 for MR imaging-enhanced fluoroscopic guidance and five for MR imaging guidance). To guide the punctures, T1-weighted three-dimensional (3D) MR images of the phantom or pig were acquired. Additional axial and coronal T2-weighted images were used to visualize the anatomy in the animals. For MR imaging-enhanced fluoroscopic guidance, phantoms and pigs were transferred to the fluoroscopic system after initial MR imaging and C-arm computed tomography (CT) was performed. C-arm CT and MR imaging data sets were coregistered. Prototype navigation software was used to plan a puncture path with use of MR images and to superimpose it on fluoroscopic images. For real-time MR imaging, an interventional MR imaging prototype for interactive real-time section position navigation was used. Punctures were performed within the magnet bore. After completion, 3D MR imaging was performed to evaluate the accuracy of insertions. Puncture durations were compared by using the log-rank test. The Mann-Whitney U test was applied to compare the spatial errors.
RESULTS: In phantoms, the mean total error was 8.6 mm ± 2.8 with MR imaging-enhanced fluoroscopic guidance and 4.0 mm ± 1.2 with real-time MR imaging guidance (P < .001). The mean puncture time was 2 minutes 10 seconds ± 44 seconds with MR imaging-enhanced fluoroscopic guidance and 37 seconds ± 14 with real-time MR imaging guidance (P < .001). In the animal study, a tolerable distance (<1 cm) between target and needle tip was observed for both MR imaging-enhanced fluoroscopic guidance and real-time MR imaging guidance. The mean total error was 7.7 mm ± 2.4 with MR imaging-enhanced fluoroscopic guidance and 7.9 mm ± 4.9 with real-time MR imaging guidance (P = .77). The mean puncture time was 5 minutes 43 seconds ± 2 minutes 7 seconds with MR imaging-enhanced fluoroscopic guidance and 5 minutes 14 seconds ± 2 minutes 25 seconds with real-time MR imaging guidance (P = .68).
CONCLUSION: Both MR imaging-enhanced fluoroscopic guidance and real-time MR imaging guidance demonstrated reasonable and similar accuracy in guiding needle placement to selected targets in phantoms and animals.

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Year:  2013        PMID: 23297324     DOI: 10.1148/radiol.12120117

Source DB:  PubMed          Journal:  Radiology        ISSN: 0033-8419            Impact factor:   11.105


  5 in total

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Authors:  Ouri Cohen; Ming Zhao; Erez Nevo; Jerome L Ackerman
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2.  Using C-arm x-ray imaging to guide local reporter probe delivery for tracking stem cell engraftment.

Authors:  Dorota A Kedziorek; Meiyappan Solaiyappan; Piotr Walczak; Tina Ehtiati; Yingli Fu; Jeff W M Bulte; Steven M Shea; Alexander Brost; Frank K Wacker; Dara L Kraitchman
Journal:  Theranostics       Date:  2013-12-17       Impact factor: 11.556

3.  Concepts for augmented reality visualisation to support needle guidance inside the MRI.

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Journal:  Healthc Technol Lett       Date:  2018-09-18

4.  Percutaneous MR-guided interventions using an optical Moiré Phase tracking system: Initial results.

Authors:  Urte Kägebein; Frank Godenschweger; Brian S R Armstrong; Georg Rose; Frank K Wacker; Oliver Speck; Bennet Hensen
Journal:  PLoS One       Date:  2018-10-16       Impact factor: 3.240

5.  Targeting Accuracy, Procedure Times and User Experience of 240 Experimental MRI Biopsies Guided by a Clinical Add-On Navigation System.

Authors:  Harald Busse; Tim Riedel; Nikita Garnov; Gregor Thörmer; Thomas Kahn; Michael Moche
Journal:  PLoS One       Date:  2015-07-29       Impact factor: 3.240

  5 in total

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