纤毛
生物医学工程
材料科学
血流动力学
狭窄
病理生理学
磁性纳米粒子
心脏病学
纳米技术
细胞生物学
磁共振成像
药物输送
神经科学
生物
炎症
解剖
生物物理学
医学
运动控制
作者
Lei Li,Qianhui Wang,Tianfeng Zhou,Mengjie Song,Juncai Song,Xianbing Zeng,Jiatian Chen,Ruijue Duan,Baiqian Xu,Xiang Xiao,Hongyou Zhao,D Chen,Yue Yin,Guanghao Wu,Yubing GUO
标识
DOI:10.1002/adma.202520941
摘要
Biological fluids provide critical cues of tissue health, yet most monitoring technologies are constrained to superficial signals, leaving deeper pathophysiological changes-such as those driving vascular stenosis-undetected until advanced stages. Here we report a bioinspired magnetic artificial cilia (MAC) platform that couples wireless flow sensing with localized drug delivery for early vascular intervention. The system integrates mechanically responsive EcoFlex-NdFeB composite cilia with reactive oxygen species (ROS)-activated nanovesicles (NVs). Under pathological hemodynamic disturbances, MAC deformation reorients the programmed remanent magnetization and redistributes the stray magnetic field, enabling near-field external detection in without implanted electronics. Concurrently, thioketal-functionalized NVs release anti-inflammatory agents in response to elevated ROS at stenotic sites. In vitro flow simulations and endothelial cell co-culture experiments validate the platform's dual capacity for real-time hemodynamic readout and on-demand therapeutic release. By uniting wireless mechanosensing with autonomous biochemical regulation, this hybrid system establishes a paradigm for intelligent, minimally invasive management of fluid-associated pathologies and offers a pathway toward early diagnosis and precision therapy.
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