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用于连续监测支架边缘再狭窄的可植入膜传感器和远程无线电子设备。

Implantable Membrane Sensors and Long-Range Wireless Electronics for Continuous Monitoring of Stent Edge Restenosis.

作者信息

Bateman Allison, He Yuheng, Cherono Chris, Lee Jimin, Ghalichechian Nima, Yeo Woon-Hong

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, United States.

Wearable Intelligent Systems and Healthcare Center (WISH Center) at the Institute for Matter and Systems, Georgia Institute of Technology, Atlanta, GA 30332, United States.

出版信息

ACS Appl Mater Interfaces. 2025 Jul 30;17(30):42781-42790. doi: 10.1021/acsami.5c08212. Epub 2025 Jul 3.

Abstract

Continuous monitoring of vascular stent health is crucial for high-risk patients. Current approaches predominantly rely on inductive coupling, which limits the wireless reading distance and requires precise antenna alignment with implanted stents. Here, we present a long-range wireless electronic system that incorporates a low-resistance inductive stent fabricated via laser micromachining and electroplating of biocompatible metal films, forming a mechanically robust and conductive interface optimized for radar interrogation. A conformal, flexible capacitive pressure sensor is developed from soft dielectric elastomers and integrated within the stent's structure, enabling localized detection of hemodynamic pressure changes indicative of stent-edge restenosis. Computational modeling validates the antenna design as an effective radiator, while an in vitro study evaluates the performance of the stent-sensor assembly and wireless coupling. Our system successfully detected the stent from a distance of 50 cm, providing trackable localized pressure signals at 2 GHz for healthy stents as well as diagnostic capabilities for 50% stent-edge restenosis. This work establishes a new class of enhanced wireless stents, offering extended readout distances and real-time diagnostic capability, with broad implications for developing next-generation bioelectronic interfaces.

摘要

对高危患者而言,持续监测血管支架健康状况至关重要。当前方法主要依赖电感耦合,这限制了无线读取距离,且需要将天线与植入支架精确对准。在此,我们展示了一种远程无线电子系统,该系统包含通过激光微加工和生物相容性金属膜电镀制成的低电阻感应支架,形成了一个针对雷达探测进行优化的机械坚固且导电的界面。一种由柔软介电弹性体制成的保形、柔性电容式压力传感器被开发出来,并集成在支架结构内,能够局部检测指示支架边缘再狭窄的血流动力学压力变化。计算建模验证了天线设计作为有效辐射器的有效性,而体外研究评估了支架 - 传感器组件的性能和无线耦合情况。我们的系统成功从50厘米的距离检测到了支架,在2吉赫兹频率下为健康支架提供了可追踪的局部压力信号,同时具备对50%支架边缘再狭窄的诊断能力。这项工作建立了一类新型增强型无线支架,提供了更远的读出距离和实时诊断能力,对开发下一代生物电子接口具有广泛影响。

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