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Mri conditional actively tracked metallic electrophysiology catheters and guidewires with miniature tethered radio-frequency traps: Theory, design, and validation

  • Akbar Alipour
  • , Eric S. Meyer
  • , Charles L. Dumoulin
  • , Ronald D. Watkins
  • , Hassan Elahi
  • , Wolfgang Loew
  • , Jeffrey Schweitzer
  • , Gregory Olson
  • , Yue Chen
  • , Susumu Tao
  • , Michael Guttman
  • , Aravindan Kolandaivelu
  • , Henry R. Halperin
  • , Ehud J. Schmidt

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

Objective: Cardiovascular interventional devices typically have long metallic braids or backbones to aid in steerability and pushability. However, electromagnetic coupling of metallic-based cardiovascular interventional devices with the radiofrequency (RF) fields present during Magnetic Resonance Imaging (MRI) can make a device unsafe for use in an MRI scanner. We aimed to develop MRI conditional actively-tracked cardiovascular interventional devices by sufficiently attenuating induced currents on the metallic braid/tube and internal-cabling using miniaturized resonant floating RF traps (MBaluns). Method: MBaluns were designed for placement at multiple locations along a conducting cardiovascular device to prevent the establishment of standing waves and to dissipate RF-induced energy. The MBaluns were constructed with loosely-wound solenoids to be sensitive to transverse magnetic fields created by both surface currents on the device's metallic backbone and common-mode currents on internal cables. Electromagnetic simulations were used to optimize MBalun parameters. Following optimization, two different MBalun designs were applied to MR-actively-tracked metallic guidewires and metallic-braided electrophysiology ablation catheters. Control-devices were constructed without MBaluns. MBalun performance was validated using network-analyzer quantification of current attenuation, electromagnetic Specific-Absorption-Rate (SAR) analysis, thermal tests during high SAR pulse sequences, and MRI-guided cardiovascular navigation in swine. Results: Electromagnetic SAR simulations resulted in ≈20 dB attenuation at the tip of the wire using six successive MBaluns. Network-analyzer tests confirmed ∼17 dB/MBalun surface-current attenuation. Thermal tests indicated temperature decreases of 5.9 °C in the MBalun-equipped guidewire tip. Both devices allowed rapid vascular navigation resulting from good torquability and MR-Tracking visibility. Conclusion: MBaluns increased device diameter by 20%, relative to conventional devices, providing a spatially-efficient means to prevent heating during MRI. Significance: MBaluns allow use of long metallic components, which improves mechanical performance in active MR-guided interventional devices.

Original languageEnglish
Article number8836616
Pages (from-to)1616-1627
Number of pages12
JournalIEEE Transactions on Biomedical Engineering
Volume67
Issue number6
DOIs
StatePublished - Jun 2020
Externally publishedYes

Keywords

  • Active tracking
  • Inductive coupling
  • Mri intervention
  • Resonance rf traps
  • Rf safety

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