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首页> 外文期刊>Advanced Materials >Bioinspired Soft Microrobots with Precise Magneto-Collective Control for Microvascular Thrombolysis
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Bioinspired Soft Microrobots with Precise Magneto-Collective Control for Microvascular Thrombolysis

机译:Bioinspired软微米,具有精确磁集体控制微血管溶栓栓塞

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摘要

Abstract New‐era soft microrobots for biomedical applications need to mimic the essential structures and collective functions of creatures from nature. Biocompatible interfaces, intelligent functionalities, and precise locomotion control in a collective manner are the key parameters to design soft microrobots for the complex bio‐environment. In this work, a biomimetic magnetic microrobot (BMM) inspired by magnetotactic bacteria (MTB) with speedy motion response and accurate positioning is developed for targeted thrombolysis. Similar to the magnetosome structure in MTB, the BMM is composed of aligned iron oxide nanoparticle (MNP) chains embedded in a non‐swelling microgel shell. Linear chains in BMMs are achieved due to the interparticle dipolar interactions of MNPs under a static magnetic field. Simulation results show that, the degree and speed of assembly is proportional to the field strength. The BMM achieves the maximum speed of 161.7 µm s−1 and accurate positioning control under a rotating magnetic field with less than 4% deviation. Importantly, the locomotion analyses of BMMs demonstrate the frequency‐dependent synchronization under 8 Hz and asynchronization at higher frequencies due to the increased drag torque. The BMMs can deliver and release thrombolytic drugs via magneto‐collective control, which is promising for ultra‐minimal invasive thrombolysis.
机译:摘要新时代软微米用于生物医学应用需要模仿生物的基本结构和集体功能。以集体方式的生物相容性接口,智能功能和精确的运动控制是为复杂生物环境设计软微机器的关键参数。在这项工作中,开发了具有快速运动响应和精确定位的磁直流细菌(MTB)的仿生磁性微毒素(BMM)用于靶向溶栓。与MTB中的磁体结构类似,BMM由嵌入非溶胀微凝胶壳中的对齐的氧化铁纳米颗粒(MNP)链组成。由于MnP的晶体偶极相互作用在静态磁场下,BMMS中的线性链是实现的。仿真结果表明,组装的程度和速度与场强成比例。 BMM在旋转磁场下实现161.7μm的最大速度,并且在旋转磁场下的准确定位控制,偏差小于4%。重要的是,BMMS的运动运动分析在8 Hz下的频率依赖性同步和由于增加的拖曳扭矩增加而在较高频率下的异步同步。 BMMS可以通过磁集体控制提供和释放溶栓药,这是对超微小的侵入性溶栓进行的承诺。

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