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轮状磁驱动微群,具有创可贴模仿功能,用于修复微小肠道穿孔。

Wheel-like Magnetic-Driven Microswarm with a Band-Aid Imitation for Patching Up Microscale Intestinal Perforation.

机构信息

State Key Laboratory of Robotics and Systems, Harbin Institute of Technology, Harbin, Heilongjiang 150001, P. R. China.

Key Laboratory of Micro-Systems and Micro-Structures Manufacturing (Harbin Institute of Technology), Ministry of Education, Harbin 150001, China.

出版信息

ACS Appl Mater Interfaces. 2022 Feb 23;14(7):8743-8752. doi: 10.1021/acsami.1c21352. Epub 2022 Feb 8.

Abstract

Microscale intestinal perforation can cause considerable mortality and is very difficult to treat using conventional methods owing to the numerous challenges associated with microscale operations, which require the development of new body-friendly and effective treatment methods. Swarming micro- and nanomotors have shown great potential in biomedical applications in complex and hard-to-reach environments. Herein, we present a wheel-like magnetic-driven microswarm (WLM) with a band-aid imitation to patch microscale intestinal perforations by pasting on the perforation point in mucus-filled environments. A method called "packing under rolling" was applied to make the formed microswarms denser and rounder. Microswarms with variable aspect ratios can be fabricated by tuning the frequency and strength of the external magnetic field. Actuation and navigation in a confined complex environment, locomotion on three-dimensional surfaces, and multiple switchable motion modes have been realized by combining AC and DC magnetic fields. Moreover, we demonstrated WLM controllable navigation, movement, and microscale perforation patching in the chicken intestines . The proposed strategy will contribute to the treatment of microscale intestinal perforation and may be applicable to novel, precise topical medication and microsurgery.

摘要

微尺度肠道穿孔会导致相当高的死亡率,并且由于微尺度操作相关的众多挑战,使用传统方法很难进行治疗,这需要开发新的对身体友好且有效的治疗方法。群体运动的微纳米马达在复杂和难以到达的环境中的生物医学应用中显示出巨大的潜力。在此,我们提出了一种具有创可贴模仿的轮式磁驱动微群(WLM),通过在充满粘液的环境中粘贴在穿孔点上来修补微尺度肠道穿孔。采用“滚动下包装”的方法使形成的微群更加密集和圆形。通过调整外部磁场的频率和强度,可以制造出具有不同纵横比的微群。通过结合交流和直流磁场,实现了在受限复杂环境中的驱动和导航、在三维表面上的运动以及多种可切换的运动模式。此外,我们证明了 WLM 可以在鸡肠内进行可控导航、运动和微尺度穿孔修补。所提出的策略将有助于微尺度肠道穿孔的治疗,并且可能适用于新型的精确局部用药和微创手术。

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