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用于携带和输送靶向细胞的磁性微机器人的研制。

Development of a magnetic microrobot for carrying and delivering targeted cells.

机构信息

Department of Mechanical and Biomedical Engineering, City University of Hong Kong, Hong Kong SAR, China.

Centre for Robotics and Automation, Shenzhen Research Institute of City University of Hong Kong, Shenzhen 518057, China.

出版信息

Sci Robot. 2018 Jun 27;3(19). doi: 10.1126/scirobotics.aat8829.

Abstract

The precise delivery of targeted cells through magnetic field-driven microrobots/carriers is a promising technique for targeted therapy and tissue regeneration. This paper presents a microrobot designed with a burr-like porous spherical structure for carrying and delivering targeted cells in vivo under a magnetic gradient field-driven mechanism. The robot was fabricated by using three-dimensional laser lithography and coated with Ni for magnetic actuation and Ti for biocompatibility. Numerical and experimental studies demonstrated that the proposed microrobot design could enhance magnetic driving capability, promote cell-carrying capacity, and benefit cell viability. Microrobots loaded with cells could be automatically controlled to reach a desired site by using a self-constructed electromagnetic coil system, as verified by in vivo transport of cell-cultured microrobots in zebrafish embryos. The carried cells could be spontaneously released from the microrobot to the surrounding tissues; in vitro experiments showed that cells from the microrobot were directly released onto the desired site or were able to pass through the blood vessel-like microchannel to arrive at the delivery area. Further in vivo cell-releasing tests were performed on nude mice, followed by histological study. This research provides a microrobotic device platform for regenerative medicine and cell-based therapy.

摘要

通过磁场驱动的微机器人/载体精确输送靶向细胞是一种有前途的靶向治疗和组织再生技术。本文提出了一种设计用于体内靶向细胞携带和输送的微机器人,其采用带有毛刺状多孔球形结构,在磁场梯度驱动机制下工作。该机器人通过三维激光光刻制造,并涂覆有 Ni 用于磁驱动和 Ti 用于生物相容性。数值和实验研究表明,所提出的微机器人设计可以增强磁驱动能力,提高细胞携带能力,并有利于细胞活力。通过使用自行构建的电磁线圈系统,可以自动控制加载有细胞的微机器人到达所需位置,这在斑马鱼胚胎中进行的细胞培养微机器人的体内运输实验中得到了验证。携带的细胞可以自发地从微机器人释放到周围组织中;体外实验表明,微机器人中的细胞可以直接释放到所需位置,或者可以穿过类似血管的微通道到达输送区域。进一步在裸鼠上进行了体内细胞释放测试,并进行了组织学研究。这项研究为再生医学和基于细胞的治疗提供了一种微机器人设备平台。

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