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活体中光可程控的活体微路由器。

Optically Programmable Living Microrouter in Vivo.

机构信息

Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Institute of Nanophotonics, Jinan University, Guangzhou, 511443, China.

出版信息

Adv Sci (Weinh). 2023 Nov;10(32):e2304103. doi: 10.1002/advs.202304103. Epub 2023 Sep 25.

Abstract

With high reconfigurability and swarming intelligence, programmable medical micromachines (PMMs) represent a revolution in microrobots for executing complex coordinated tasks, especially for dynamic routing of various targets along their respective routes. However, it is difficult to achieve a biocompatible implantation into the body due to their exogenous building blocks. Herein, a living microrouter based on an organic integration of endogenous red blood cells (RBCs), programmable scanning optical tweezers and flexible optofluidic strategy is reported. By harvesting energy from a designed optical force landscape, five RBCs are optically rotated in a controlled velocity and direction, under which, a specific actuation flow is achieved to exert the well-defined hydrodynamic forces on various biological targets, thus enabling a selective routing by integrating three successive functions, i.e., dynamic input, inner processing, and controlled output. Benefited from the optofluidic manipulation, various blood cells, such as the platelets and white blood cells, are transported toward the damaged vessel and cell debris for the dynamic hemostasis and targeted clearance, respectively. Moreover, the microrouter enables a precise transport of nanodrugs for active and targeted delivery in a large quantity. The proposed RBC microrouter might provide a biocompatible medical platform for cell separation, drug delivery, and immunotherapy.

摘要

可编程医用微型机器人(PMMs)具有高度的可重构性和群体智能,代表了微机器人领域的一场革命,可用于执行复杂的协调任务,特别是用于沿着各自路径对各种目标进行动态路由。然而,由于其外源构建模块,很难实现生物相容性的植入。在此,报道了一种基于内源性红细胞(RBCs)、可编程扫描光镊和柔性光流控策略的有机集成的活体微路由。通过从设计的光力景观中获取能量,五个 RBC 以受控的速度和方向进行光旋转,在此情况下,实现特定的致动流,对各种生物靶标施加明确的流体动力,从而通过集成三个连续的功能(即动态输入、内部处理和受控输出)实现选择性路由。得益于光流控操作,各种血细胞,如血小板和白细胞,被运送到受损的血管和细胞碎片处,分别实现动态止血和靶向清除。此外,微路由还能够精确地输送纳米药物,实现大量的主动靶向递送。所提出的 RBC 微路由可为细胞分离、药物输送和免疫治疗提供一个生物相容的医学平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f62/10646234/9e271133d7b1/ADVS-10-2304103-g002.jpg

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