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August 10, 2018IEEE Robotics and Automation Letters37 citations

Towards the Development of a Steerable and MRI-Compatible Cardiac Catheter for Atrial Fibrillation Treatment

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JSJun ShengXWXuefeng WangTDTimm‐Michael Dickfeld

Key Points

  • To design, fabricate, and validate a steerable, MRI-compatible cardiac catheter driven by shape memory alloys to improve catheter navigation and eliminate radiation exposure during atrial fibrillation ablation.
  • Designed a catheter combining flexible tubing with a multi-module steerable tip actuated by pairs of antagonistic shape memory alloy (SMA) wires.
  • Implemented a conductive heating actuation approach to significantly lower the electric current required for SMA bending.
  • Modeled bending kinematics, tested actuator performance experimentally, and conducted proof-of-concept validation in an explanted heart.
  • Conductive heating successfully reduced operating electric currents, enhancing actuator compatibility with MRI environments.
  • Experimental testing confirmed controlled bidirectional bending across the antagonistic SMA tip modules.
  • Proof-of-concept deployment in an explanted heart demonstrated feasible cardiac catheter navigation.

Abstract

To treat atrial fibrillation (AFib), radiofrequency ablation is usually implemented with a cardiac catheter to block abnormal electrical signals from pulmonary veins. However, it is challenging to manipulate a passive catheter. In addition, the radiation exposure to patients under fluoroscopic guidance has been a concern. To address these two major issues, this work presents the development of a steerable and MRI-compatible cardiac catheter by using shape memory alloy (SMA) as an alternative interventional tool for AFib. The developed cardiac catheter is comprised of a passive and flexible tubing and a steerable tip. The tip is composed of multiple bending modules and each module is actuated by a pair of antagonistic SMA wires. To improve the MRI-compatibility of SMA actuators, the electric current required for SMA actuation is significantly reduced by developing a technique of conductive heating actuation. In this paper, the design and fabrication of the cardiac catheter are presented, followed by modeling the SMA bending module. The working performance of the SMA bending module is experimentally studied. In the end, a proof-of-concept demonstration of the cardiac catheter is performed in an explanted heart.

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Cite This Study

Sheng et al. (2018) studied this question.

synapsesocial.com/papers/6a04e8f7aa90da843cc91039https://doi.org/10.1109/lra.2018.2861011
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