Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, People's Republic of China.
Department of Biomedical Engineering, City University of Hong Kong, Hong Kong 999077 SAR, People's Republic of China.
J Mater Chem B. 2021 Feb 7;9(5):1441-1451. doi: 10.1039/d0tb02329a. Epub 2021 Jan 20.
The functionalization of microrobots is essential for realizing their biomedical application in targeted cargo delivery, but the multifunctional integration of microrobots and controllable cargo delivery remains an enormous challenge at present. This work reports a kind of multi-functionalized micro-helical robot with superior loading capabilities for the controlled release of encapsulants. The magnetic microrobot, with a multilayer capsule helical structure, was developed via multifunctional strategies, including microfluidic synthesis, polyelectrolyte complexation, and surface coating with magnetic nanoparticles. The microrobot is constructed of a helical structure from a calcium alginate microfiber via a co-axial capillary microfluidic system. Then, it is coated with a polyelectrolyte complexation membrane and decorated with magnetic nanoparticles. After multi-step layer-by-layer (LbL) assembly with functionalized units, the structure is converted to a helical capsule possessing a soft and biocompatible polysaccharide alginate/chitosan/alginate shell with FeO nanoparticles decorated on the surface. The functionalized microrobot not only enables wireless steering with rotational locomotion under the control of a six degrees of freedoms (6-DOFs) electromagnetic system at different frequencies, but it also possesses stimuli-responsive abilities owing to the semi-permeable membrane, which can trigger the controllable release of encapsulants in response to ions in the environment. This work provides an efficient strategy for the superior multi-functionalization of microrobots to achieve enhanced locomotion and encapsulation performance for the loading, transport, and targeted delivery of cargo.
多功能化是实现微机器人在靶向药物输送等生物医学领域应用的关键,然而当前微机器人的多功能集成和可控药物输送仍然是一个巨大的挑战。本工作报道了一种具有优越负载能力的多功能化微螺旋机器人,可用于封装剂的可控释放。这种磁微机器人采用多功能策略制备,具有多层胶囊螺旋结构,包括微流控合成、聚电解质络合和表面包覆磁性纳米粒子。微机器人由螺旋结构的海藻酸钠微纤维通过同轴毛细管微流控系统构建而成。然后,它被包覆一层聚电解质络合膜,并修饰上磁性纳米粒子。经过多步层层(LbL)组装功能性单元后,结构转变为具有软质和生物相容性多糖海藻酸钠/壳聚糖/海藻酸钠外壳的螺旋胶囊,表面上修饰有 FeO 纳米粒子。功能化微机器人不仅可以在不同频率的六自由度(6-DOFs)电磁场的控制下进行旋转运动的无线转向,而且由于具有半渗透膜,还具有刺激响应能力,可以响应环境中的离子触发封装剂的可控释放。这项工作为微机器人的优越多功能化提供了一种有效的策略,可实现增强的运动能力和封装性能,从而实现货物的负载、运输和靶向输送。