A Magnetically Controlled Soft Microrobot Steering a Guidewire in a Three-Dimensional Phantom Vascular Network
Мягкий микроробот с магнитным управлением для наведения проводника в трёхмерной фантомной сосудистой сети
2018-10-12
SCID: 54.1/8gq9ptrf
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guidewire steeringintravascular treatmentsmagnetically actuated soft microrobotreplica moldingthree-dimensional vascular phantom
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Abstract (AI)
Magnetically actuated soft robots may improve the treatment of disseminated intravascular coagulation. Significant progress has been made in the development of soft robotic systems that steer catheters. A more challenging task, however, is the development of systems that steer sub-millimeter-diameter guidewires during intravascular treatments; a novel microrobotic approach is required for steering. In this article, we develop a novel, magnetically actuated, soft microrobotic system, increasing the steerability of a conventional guidewire. The soft microrobot is attached to the tip of the guidewire, and it is magnetically steered by changing the direction and intensity of an external magnetic field. The microrobot is fabricated via replica molding and features a soft body made of polydimethylsiloxane, two permanent magnets, and a microspring. We developed a mathematical model mapping deformation of the soft microrobot using a feed-forward approach toward steering. Then, we used the model to steer a guidewire. The angulation of the microrobot can be controlled from 21.1° to 132.7° by using a magnetic field of an intensity of 15 mT. Steerability was confirmed by two-dimensional in vitro tracking. Finally, a guidewire with the soft microrobot was tested by using a three-dimensional (3D) phantom of the coronary artery to verify steerability in 3D space.
Key Findings
1
A feed-forward mathematical model was developed to map microrobot deformation for guidewire steering.
2
A magnetically actuated soft microrobot was developed to increase the steerability of conventional sub-millimeter guidewires during intravascular procedures.
3
Steerability was demonstrated through two-dimensional in vitro tracking and navigation within a three-dimensional coronary-artery phantom.
4
The microrobot combines a polydimethylsiloxane soft body, two permanent magnets, and a microspring, and attaches to the guidewire tip.
5
Using a 15 mT magnetic field, the microrobot’s angulation was controlled from 21.1° to 132.7°.
Research Object
A magnetically actuated soft microrobot attached to a sub-millimeter guidewire for intravascular navigation in a three-dimensional coronary-artery phantom
Research Subject
Magnetic steering and three-dimensional steerability of the guidewire through controlled microrobot deformation and angulation
Publication Details
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2018-10-12
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