Literature DB >> 21075017

Steerable catheter microcoils for interventional MRI reducing resistive heating.

Anthony Bernhardt1, Mark W Wilson, Fabio Settecase, Leland Evans, Vincent Malba, Alastair J Martin, Maythem Saeed, Timothy P L Roberts, Ronald L Arenson, Steven W Hetts.   

Abstract

RATIONALE AND
OBJECTIVES: The aims of this study were to assess resistive heating of microwires used for remote catheter steering in interventional magnetic resonance imaging and to investigate the use of alumina to facilitate heat transfer to saline flowing in the catheter lumen.
MATERIALS AND METHODS: A microcoil was fabricated using a laser lathe onto polyimide-tipped or alumina-tipped endovascular catheters. In vitro testing was performed on a 1.5-T magnetic resonance system using a vessel phantom, body radiofrequency coil, and steady-state pulse sequence. Resistive heating was measured with water flowing over a polyimide-tip catheter or saline flowing through the lumen of an alumina-tip catheter. Preliminary in vivo testing in porcine common carotid arteries was conducted with normal blood flow or after arterial ligation when current was applied to an alumina-tip catheter for up to 5 minutes.
RESULTS: After application of up to 1 W of direct current power, clinically significant temperature increases were noted with the polyimide-tip catheter: 23°C/W at zero flow, 13°C/W at 0.28 cm(3)/s, and 7.9°C/W at 1 cm(3)/s. Using the alumina-tip catheter, the effluent temperature rise using the lowest flow rate (0.12 cm(3)/s) was 2.3°C/W. In vivo testing demonstrated no thermal injury to vessel walls at normal and zero arterial flow.
CONCLUSIONS: Resistive heating in current carrying wire pairs can be dissipated by saline coolant flowing within the lumen of a catheter tip composed of material that facilitates heat transfer.
Copyright © 2011 AUR. Published by Elsevier Inc. All rights reserved.

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Year:  2010        PMID: 21075017      PMCID: PMC3034805          DOI: 10.1016/j.acra.2010.09.010

Source DB:  PubMed          Journal:  Acad Radiol        ISSN: 1076-6332            Impact factor:   3.173


  11 in total

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2.  Heating around intravascular guidewires by resonating RF waves.

Authors:  M K Konings; L W Bartels; H F Smits; C J Bakker
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3.  RF transmit power limit for the barewire loopless catheter antenna.

Authors:  C J Yeung; E Atalar
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4.  On the heating of linear conductive structures as guide wires and catheters in interventional MRI.

Authors:  W R Nitz; A Oppelt; W Renz; C Manke; M Lenhart; J Link
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Review 5.  Magnetic resonance safety update 2002: implants and devices.

Authors:  Frank G Shellock
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6.  RF heating due to conductive wires during MRI depends on the phase distribution of the transmit field.

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7.  Remote control of catheter tip deflection: an opportunity for interventional MRI.

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Review 8.  Radiofrequency energy-induced heating during MR procedures: a review.

Authors:  F G Shellock
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Review 9.  Current FDA guidance for MR patient exposure and considerations for the future.

Authors:  T W Athey
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10.  Magnetically-assisted remote control (MARC) steering of endovascular catheters for interventional MRI: a model for deflection and design implications.

Authors:  Fabio Settecase; Marshall S Sussman; Mark W Wilson; Steven Hetts; Ronald L Arenson; Vincent Malba; Anthony F Bernhardt; Walter Kucharczyk; Timothy P L Roberts
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  9 in total

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4.  Magnetic catheter manipulation in the interventional MR imaging environment.

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5.  Magnetically assisted remote-controlled endovascular catheter for interventional MR imaging: in vitro navigation at 1.5 T versus X-ray fluoroscopy.

Authors:  Aaron D Losey; Prasheel Lillaney; Alastair J Martin; Daniel L Cooke; Mark W Wilson; Bradford R H Thorne; Ryan S Sincic; Ronald L Arenson; Maythem Saeed; Steven W Hetts
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6.  Endovascular catheter for magnetic navigation under MR imaging guidance: evaluation of safety in vivo at 1.5T.

Authors:  S W Hetts; M Saeed; A J Martin; L Evans; A F Bernhardt; V Malba; F Settecase; L Do; E J Yee; A Losey; R Sincic; P Lillaney; S Roy; R L Arenson; M W Wilson
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7.  System architecture for a magnetically guided endovascular microcatheter.

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9.  Heat-Mitigated Design and Lorentz Force-Based Steering of an MRI-Driven Microcatheter toward Minimally Invasive Surgery.

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  9 in total

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