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毫米级磁植入物与完全集成的可穿戴设备相结合,用于无线生物物理和生化传感。

Millimeter-scale magnetic implants paired with a fully integrated wearable device for wireless biophysical and biochemical sensing.

机构信息

National Key Laboratory of Science and Technology on Micro/Nano Fabrication, Department of Biomedical Engineering, College of Future Technology, Peking University, Beijing, China.

School of Integrated Circuits, Peking University, Beijing, China.

出版信息

Sci Adv. 2024 Mar 22;10(12):eadm9314. doi: 10.1126/sciadv.adm9314. Epub 2024 Mar 20.

Abstract

Implantable sensors can directly interface with various organs for precise evaluation of health status. However, extracting signals from such sensors mainly requires transcutaneous wires, integrated circuit chips, or cumbersome readout equipment, which increases the risks of infection, reduces biocompatibility, or limits portability. Here, we develop a set of millimeter-scale, chip-less, and battery-less magnetic implants paired with a fully integrated wearable device for measuring biophysical and biochemical signals. The wearable device can induce a large amplitude damped vibration of the magnetic implants and capture their subsequent motions wirelessly. These motions reflect the biophysical conditions surrounding the implants and the concentration of a specific biochemical depending on the surface modification. Experiments in rat models demonstrate the capabilities of measuring cerebrospinal fluid (CSF) viscosity, intracranial pressure, and CSF glucose levels. This miniaturized system opens the possibility for continuous, wireless monitoring of a wide range of biophysical and biochemical conditions within the living organism.

摘要

可植入传感器可以直接与各种器官接口,从而精确评估健康状况。然而,从这些传感器中提取信号主要需要经皮电线、集成电路芯片或繁琐的读出设备,这增加了感染的风险,降低了生物兼容性,或限制了便携性。在这里,我们开发了一套毫米级、无芯片和无电池的磁性植入物,以及一个完全集成的可穿戴设备,用于测量生物物理和生化信号。可穿戴设备可以诱导磁性植入物产生大振幅阻尼振动,并无线捕获它们随后的运动。这些运动反映了植入物周围的生物物理条件以及特定生化物质的浓度,具体取决于表面修饰。在大鼠模型中的实验证明了测量脑脊液(CSF)粘度、颅内压和 CSF 葡萄糖水平的能力。这个小型化系统为在生物体内部连续、无线监测广泛的生物物理和生化条件提供了可能性。

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