材料科学
生物医学工程
磁性纳米粒子
超声波
磁共振成像
毒素
脑脊液
纳米技术
戒毒(替代医学)
纳米医学
胆红素
纳米颗粒
神经活动
氧化铁纳米粒子
生物物理学
药物输送
诱捕
作者
Yu Mei,Yu Mei,Shuangyi Cheng,Shunyao Li,Zhe Zhao,Yuan Chen,Jinlong Wang,Guohonghao Zeng,Jiayuan Huang,Ji Tan,Ziyu Zhang,Guoao Ma,Xuanyong LIU,Jun Chen,KaiLiang XU,X.L. Chen,Yongfeng Mei,Yongfeng Mei,Gaoshan Huang
标识
DOI:10.1002/adma.202516357
摘要
ABSTRACT Toxin accumulation within specialized microenvironments, such as cerebrospinal fluid (CSF), poses significant clinical challenges. In particular, bilirubin in CSF can cause severe damage to the brain and neural tissues. Current therapeutic strategies for intracranial bilirubin clearance suffer from poor targeting, inadequate detoxification capacity, and reliance on invasive procedures. Here, we demonstrate multifunctional microrobots designed for toxin removal in specialized anatomical compartments. The proposed ultrasound‐trackable microbubbles@PCN‐333 microrobots (UMPCs) feature a hollow hydrogel microbubble core for enhanced ultrasound imaging contrast, an outer metal–organic framework (MOF) layer for proactive and high‐capacity toxin adsorption, and embedded ferroferric oxide (Fe 3 O 4 ) nanoparticles to enablec. Magnetic actuation enhances the UMPC's bilirubin capture efficiency through improved mass transfer. By integrating an ultrafast ultrasound imaging system with magnetic actuation, we achieve real‐time tracking and precise control of UMPCs within the CSF. This strategy offers a minimally invasive and actively guided approach for efficient intracranial bilirubin clearance, opening new avenues for targeted toxin‐removal in anatomically confined environments.
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