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基于尿酸氧化酶和长寿命金属卟啉的光学尿酸传感器。

An Optical Urate Biosensor Based on Urate Oxidase and Long-Lifetime Metalloporphyrins.

机构信息

Department of Biomedical Engineering, 5045 Emerging Technologies Building, 3120 TAMU, Texas A&M University, College Station, TX 77843, USA.

Department of Materials Science and Engineering, 3003 TAMU, Texas A&M University, College Station, TX 77843, USA.

出版信息

Sensors (Basel). 2020 Feb 11;20(4):959. doi: 10.3390/s20040959.

Abstract

Gout is a condition that affects over 8 million Americans. This condition is characterized by severe pain, and in more advanced cases, bone erosion and joint destruction. This study explores the fabrication and characterization of an optical, enzymatic urate biosensor for gout management, and the optimization of the biosensor response through the tuning of hydrogel matrix properties. Sensors were fabricated through the co-immobilization of oxygen-quenched phosphorescent probes with an oxidoreductase within a biocompatible copolymer hydrogel matrix. Characterization of the spectral properties and hydrogel swelling was conducted, as well as evaluation of the response sensitivity and long-term stability of the urate biosensor. The findings indicate that increased acrylamide concentration improved the biosensor response by yielding an increased sensitivity and reduced lower limit of detection. However, the repeatability and stability tests highlighted some possible areas of improvement, with a consistent response drift observed during repeatability testing and a reduction in response seen after long-term storage tests. Overall, this study demonstrates the potential of an on-demand, patient-friendly gout management tool, while paving the way for a future multi-analyte biosensor based on this sensing platform.

摘要

痛风是一种影响超过 800 万美国人的疾病。这种疾病的特征是剧烈疼痛,在更严重的情况下,还会导致骨侵蚀和关节破坏。本研究探索了用于痛风管理的光学酶尿酸生物传感器的制造和特性,以及通过调整水凝胶基质特性来优化生物传感器的响应。传感器是通过将氧猝灭磷光探针与氧化还原酶共固定在生物相容性共聚物水凝胶基质中来制造的。对光谱特性和水凝胶溶胀进行了表征,以及对尿酸生物传感器的响应灵敏度和长期稳定性进行了评估。研究结果表明,增加丙烯酰胺浓度可以提高生物传感器的响应,从而提高灵敏度并降低检测下限。然而,重复性和稳定性测试突出了一些可能需要改进的领域,在重复性测试中观察到一致的响应漂移,并且在长期存储测试后观察到响应降低。总体而言,本研究展示了一种按需、适合患者使用的痛风管理工具的潜力,同时为基于该传感平台的未来多分析物生物传感器铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3868/7070708/c9fed0a7aabf/sensors-20-00959-g001.jpg

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