4.8 Article

Reprogrammable Soft Swimmers for Minimally Invasive Thrombus Extraction

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 20, Pages 23896-23908

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c04745

Keywords

medical soft robots; reprogrammable magnetization; untethered; thrombosis; minimally invasive surgery

Funding

  1. Russian Science Foundation [21-73-10150]
  2. Russian Science Foundation [21-73-10150] Funding Source: Russian Science Foundation

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This paper presents a new approach to thrombosis treatment using reprogrammable magnetic soft robots to penetrate, hook, and extract plasma clots in a vein-mimicking system under applied rotating magnetic fields. This innovative technology shows promising results in treating thrombosis while avoiding the side effects of conventional methods.
Thrombosis-related diseases are the primary cause of death in the world. Despite recent advances in thrombosis treatment methods, their invasive nature remains a crucial factor, which leads to considerable deadly consequences. Soft magnetic robots are attracting widespread interest due to their fast response, remote actuation, and shape reprogrammability and can potentially avoid the side effects of conventional approaches. This paper outlines a new approach to the thrombosis treatment via reprogrammable magnetic soft robots that penetrate, hook, and extract the plasma clots in a vein-mimicking system under applied rotating magnetic fields. We present shape-switching bioinspired soft swimmers, capable of locomotion by different mechanisms in vein-mimicking flow conditions and whose swimming efficiency is similar to animals. Further, we demonstrate the potential of a developed robot for minimally invasive thromboextraction with and without fibrinolytic usage, including hooking the plasma clot for 3.1 +/- 1.1 min and extracting it from the vein-mimicking system under the applied magnetic fields. We consider an interesting solution for thrombosis treatment to avoid substantial drawbacks of the existing methods.

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