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用于监测颅内压和温度的生物可吸收光学传感器系统。

Bioresorbable optical sensor systems for monitoring of intracranial pressure and temperature.

机构信息

Department of Chemical and Biomolecular Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

Frederick Seitz Materials Research Laboratory, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

出版信息

Sci Adv. 2019 Jul 5;5(7):eaaw1899. doi: 10.1126/sciadv.aaw1899. eCollection 2019 Jul.

Abstract

Continuous measurements of pressure and temperature within the intracranial, intraocular, and intravascular spaces provide essential diagnostic information for the treatment of traumatic brain injury, glaucoma, and cardiovascular diseases, respectively. Optical sensors are attractive because of their inherent compatibility with magnetic resonance imaging (MRI). Existing implantable optical components use permanent, nonresorbable materials that must be surgically extracted after use. Bioresorbable alternatives, introduced here, bypass this requirement, thereby eliminating the costs and risks of surgeries. Here, millimeter-scale bioresorbable Fabry-Perot interferometers and two dimensional photonic crystal structures enable precise, continuous measurements of pressure and temperature. Combined mechanical and optical simulations reveal the fundamental sensing mechanisms. In vitro studies and histopathological evaluations quantify the measurement accuracies, operational lifetimes, and biocompatibility of these systems. In vivo demonstrations establish clinically relevant performance attributes. The materials, device designs, and fabrication approaches outlined here establish broad foundational capabilities for diverse classes of bioresorbable optical sensors.

摘要

颅内、眼内和血管内空间的压力和温度的连续测量分别为创伤性脑损伤、青光眼和心血管疾病的治疗提供了重要的诊断信息。由于与磁共振成像 (MRI) 具有固有兼容性,光学传感器具有吸引力。现有的可植入光学组件使用永久性、不可吸收的材料,在使用后必须通过手术提取。这里介绍的可生物吸收的替代品绕过了这一要求,从而消除了手术的成本和风险。在这里,毫米级的可生物吸收的 Fabry-Perot 干涉仪和二维光子晶体结构能够实现压力和温度的精确、连续测量。机械和光学组合模拟揭示了基本的传感机制。体外研究和组织病理学评估量化了这些系统的测量精度、工作寿命和生物相容性。体内演示确立了具有临床相关性的性能特征。这里概述的材料、器件设计和制造方法为各种可生物吸收的光学传感器建立了广泛的基础功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c918/6611687/cb4974f98f42/aaw1899-F1.jpg

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