Versatile, in-line optical oxygen tension sensors for continuous monitoring during ex vivo kidney perfusion†

IF 3.5 Q2 CHEMISTRY, ANALYTICAL Sensors & diagnostics Pub Date : 2024-02-27 DOI:10.1039/D3SD00240C
Emmanuel Roussakis, Juan Pedro Cascales, Dor Yoeli, Alexis Cralley, Avery Goss, Anna Wiatrowski, Maia Carvalho, Hunter B. Moore, Ernest E. Moore, Christene A. Huang and Conor L. Evans
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Abstract

Integration of physiological sensing modalities within tissue and organ perfusion systems is becoming a steadily expanding field of research, aimed at achieving technological breakthrough innovations that will expand the sites and clinical settings at which such systems can be used. This is becoming possible in part due to the advancement of user-friendly optical sensors in recent years, which rely both on synthetic, luminescent sensor molecules and inexpensive, low-power electronic components for device engineering. In this article we report a novel approach towards enabling automated, continuous monitoring of oxygenation during ex vivo organ perfusion, by combining versatile flow cell components and low-power, programmable electronic readout devices. The sensing element comprises a 3D printed, miniature flow cell with tubing connectors and an affixed oxygen-sensing thin film material containing in-house developed, brightly-emitting metalloporphyrin phosphor molecules embedded within a polymer matrix. Proof-of-concept validation of this technology is demonstrated through integration within the tubing circuit of a transportable medical device for hypothermic oxygenated machine perfusion of extracted kidneys as a model for organs to be preserved as transplants.

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多功能在线光学氧张力传感器,用于在体外肾灌注过程中进行连续监测
在组织和器官灌注系统中整合生理传感模式正成为一个不断扩大的研究领域,其目的是实现技术突破性创新,从而扩大此类系统的使用场所和临床环境。这在一定程度上得益于近年来用户友好型光学传感器的进步,这种传感器既依赖于合成的发光传感器分子,也依赖于用于设备工程的廉价、低功耗电子元件。在这篇文章中,我们报告了一种新方法,通过结合多功能流动池元件和低功耗、可编程电子读出设备,实现了在体外器官灌注过程中对氧饱和度的自动、连续监测。传感元件包括一个三维打印的微型流动池(带管道连接器)和一个附着的氧传感薄膜材料,该材料包含嵌入聚合物基质中的自主开发的高亮金属卟啉荧光粉分子。这项技术的概念验证是通过将其集成到一个可移动医疗设备的管道回路中来实现的,该医疗设备用于对提取的肾脏进行低温氧合机器灌注,以此作为器官移植的模型。
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