用于靶向治疗的磁驱动活性氧清除纳米机器人

Yongzheng Zhao, Hao Xiong, Yanhong Li, Wei Gao, Chen Hua, Jianrong Wu, C. Fan, Xiaojun Cai, Yuanyi Zheng
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引用次数: 8

摘要

磁性微纳米机器人(MagRobots)具有远程移动性、高可重构性和可编程性、不需要燃料、多功能性等无可比拟的优点,在生物医学领域备受关注。磁性材料作为MagRobots的关键部件,在体内产生活性氧(ROS),通过Fenton/Fenton样反应诱导组织/器官损伤,这可能会阻碍MagRobots的临床应用。在这里,生物活性普鲁士蓝通过原位反应在MagRobots表面产生,以获得磁驱动的ROS清除纳米机器人(ROSrobots)。生成的普鲁士蓝阻断ROS的产生,并赋予MagRobots额外的功能,显著扩大其潜在的医疗应用。可重构ros机器人在磁场作用下,可在复杂环境中实现多模式变换、运动和操作。重要的是,提出了一种简单的控制方法来实现三维几何形状的运动,以便在复杂的环境中完成任务。此外,采用骨关节炎(OA)大鼠模型进行概念验证。值得注意的是,在超声成像的指导下,ROSrobots可以精确地注入关节腔,主动靶向治疗OA。本研究可进一步促进MagRobots的临床应用。
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Magnetically Actuated Reactive Oxygen Species Scavenging Nano‐Robots for Targeted Treatment
Magnetic micro/nanorobots (MagRobots) with unparalleled advantages, including remote mobility, high reconfigurability and programmability, lack of fuel requirement, and versatility, can be manipulated under a magnetic field, which has attracted considerable research attention in the biomedicine. Magnetic materials, as the key components of MagRobots, generate reactive oxygen species (ROS) in vivo to induce tissue/organ damage through Fenton/Fenton‐like reactions, which may hinder the clinical application of MagRobots. Here, the biologically active Prussian blue is generated on the surfaces of MagRobots via an in situ reaction to obtain magnetically actuated ROS‐scavenging nano‐robots (ROSrobots). The generated Prussian blue blocks ROS production and endows the MagRobots with additional functionalities, markedly expanding their potential medical applications. Under the action of a magnetic field, the reconfigurable ROSrobots realize multimode transformation, locomotion, and manipulation in complex environments. Importantly, a simple control method is proposed to achieve movement in 3D geometries to allow the completion of tasks in a complex environment. Furthermore, the osteoarthritis (OA) rat model was employed for proof of concept. Notably, under the guidance of ultrasound imaging, ROSrobots can be accurately injected into the articular cavity to actively target the treatment of OA. This research may further promote the clinical application of MagRobots.
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