Herbert Robert, Lim Hyo-Ryoung, Rigo Bruno, Yeo Woon-Hong
George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
IEN Center for Human-Centric Interfaces and Engineering at the Institute for Electronics and Nanotechnology, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Sci Adv. 2022 May 13;8(19):eabm1175. doi: 10.1126/sciadv.abm1175. Epub 2022 May 11.
The continuous monitoring of hemodynamics attainable with wireless implantable devices would improve the treatment of vascular diseases. However, demanding requirements of size, wireless operation, and compatibility with endovascular procedures have limited the development of vascular electronics. Here, we report an implantable, wireless vascular electronic system, consisting of a multimaterial inductive stent and printed soft sensors capable of real-time monitoring of arterial pressure, pulse rate, and flow without batteries or circuits. Developments in stent design achieve an enhanced wireless platform while matching conventional stent mechanics. The fully printed pressure sensors demonstrate fast response times, high durability, and sensing at small bending radii. The device is monitored via inductive coupling at communication distances notably larger than prior vascular sensors. The wireless electronic system is validated in artery models, while minimally invasive catheter implantation is demonstrated in an in vivo rabbit study. Overall, the vascular system offers an adaptable framework for comprehensive monitoring of hemodynamics.
通过无线植入式设备实现的血流动力学连续监测将改善血管疾病的治疗。然而,对尺寸、无线操作以及与血管内手术兼容性的苛刻要求限制了血管电子学的发展。在此,我们报告一种可植入的无线血管电子系统,它由一个多材料感应支架和能够在无电池或电路情况下实时监测动脉血压、脉搏率和血流的印刷软传感器组成。支架设计的进展实现了一个增强的无线平台,同时匹配传统支架力学性能。全印刷压力传感器展示出快速响应时间、高耐用性以及在小弯曲半径下的传感能力。该设备通过感应耦合在明显大于先前血管传感器的通信距离上进行监测。该无线电子系统在动脉模型中得到验证,同时在一项体内兔实验中展示了微创导管植入。总体而言,该血管系统为血流动力学的全面监测提供了一个适应性框架。