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用于连续血糖监测的水凝胶光纤。

Hydrogel optical fibers for continuous glucose monitoring.

机构信息

School of Engineering, University of Birmingham, Birmingham, B15 2TT, UK; Department of Experimental Nuclear Physics, Nuclear Research Center, Egyptian Atomic Energy Authority, Egypt.

Optoelectronics Research Lab, COMSATS University Islamabad, Park Road, Islamabad, 45550, Pakistan.

出版信息

Biosens Bioelectron. 2019 Jul 15;137:25-32. doi: 10.1016/j.bios.2019.05.002. Epub 2019 May 2.

Abstract

Continuous glucose monitoring facilitates the stringent control of blood glucose concentration in diabetic and intensive care patients. Optical fibers have emerged as an attractive platform; however, their practical applications are hindered due to lack of biocompatible fiber materials, complex and non-practical readout approaches, slow response, and time-consuming fabrication processes. Here, we demonstrate the quantification of glucose by smartphone-integrated fiber optics that overcomes existing technical limitations. Simultaneously, a glucose-responsive hydrogel was imprinted with an asymmetric microlens array and was attached to a multimode silica fiber's tip during photopolymerization, and subsequent interrogated for glucose sensing under physiological conditions. A smartphone and an optical power meter were employed to record the output signals. The functionalized fiber showed a high sensitivity (2.6 μW mM), rapid response, and a high glucose selectivity in the physiological glucose range. In addition, the fiber attained the glucose complexation equilibrium within 15 min. The lactate interference was also examined and it was found minimal ∼0.1% in the physiological range. A biocompatible hydrogel made of polyethylene glycol diacrylate was utilized to fabricate a flexible hydrogel fiber to replace the silica fiber, and the fiber's tip was functionalized with the glucose-sensitive hydrogel during the ultraviolet light curing process. The biocompatible fiber was quickly fabricated by the molding, the readout approach was facile and practical, and the response to glucose was comparable to the functionalized silica fiber. The fabricated optical fiber sensors may have applications in wearable and implantable point-of-care and intensive-care continuous monitoring systems.

摘要

连续血糖监测有助于糖尿病和重症监护患者严格控制血糖浓度。光纤已经成为一种有吸引力的平台;然而,由于缺乏生物相容性光纤材料、复杂且不实用的读出方法、响应缓慢以及制造工艺耗时,其实际应用受到阻碍。在这里,我们展示了通过智能手机集成光纤来定量检测葡萄糖的方法,该方法克服了现有技术的限制。同时,将葡萄糖响应性水凝胶压印成不对称微透镜阵列,并在光聚合过程中将其附着在多模石英光纤的尖端,随后在生理条件下进行葡萄糖传感检测。智能手机和光功率计用于记录输出信号。功能化光纤在生理葡萄糖范围内表现出高灵敏度(2.6µW mM)、快速响应和高葡萄糖选择性。此外,光纤在 15 分钟内达到葡萄糖络合平衡。还检查了乳酸盐干扰,发现其在生理范围内最小约 0.1%。使用聚乙二醇二丙烯酸酯制成的生物相容性水凝胶来制造柔性水凝胶光纤以替代石英光纤,并且在紫外线光固化过程中在光纤尖端功能化葡萄糖敏感水凝胶。通过成型可以快速制造出生物相容性光纤,读出方法简单实用,对葡萄糖的响应与功能化的石英光纤相当。所制造的光纤传感器可应用于可穿戴和可植入的即时护理和重症监护连续监测系统。

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