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基于眼前房模型的双波长偏振光对存在双折射和运动伪影的葡萄糖传感检测。

Dual-wavelength polarimetric glucose sensing in the presence of birefringence and motion artifact using anterior chamber of the eye phantoms.

机构信息

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

出版信息

J Biomed Opt. 2013 Jan;18(1):17007. doi: 10.1117/1.JBO.18.1.017007.

Abstract

Noninvasive glucose monitoring is being investigated as a tool for effectively managing diabetes mellitus. Optical polarimetry has emerged as one such method, which can potentially be used to ascertain blood glucose levels by measuring the aqueous humor glucose levels in the anterior chamber of the eye. The key limitation for realizing this technique is the presence of sample noise due to corneal birefringence, which in the presence of motion artifact can confound the glucose signature in the aqueous humor of the eye. We present the development and characterization of a real-time, closed-loop, dual-wavelength polarimetric system for glucose monitoring using both a custom-built plastic eye phantom (in vitro) and isolated rabbit corneas (ex vivo) mounted in an artificial anterior chamber. The results show that the system can account for these noise sources and can monitor physiologic glucose levels accurately for a limited range of motion-induced birefringence. Using the dual-wavelength system in vitro and ex vivo, standard errors were 14.5 mg/dL and 22.4 mg/dL, respectively, in the presence of birefringence with motion. The results indicate that although dual-wavelength polarimetry has a limited range of compensation for motion-induced birefringence, when aligned correctly, it can minimize the effect of time-varying corneal birefringence for a range of motion larger than what has been reported in vivo.

摘要

非侵入性血糖监测正被研究作为一种有效管理糖尿病的工具。光旋光法就是这样一种方法,它可以通过测量眼前房的房水葡萄糖水平来确定血糖水平。实现这一技术的关键限制是由于角膜双折射存在样本噪声,在存在运动伪影的情况下,会使眼睛房水中的葡萄糖特征复杂化。我们提出了一种实时、闭环、双波长偏振监测系统的开发和特性,该系统使用定制的塑料眼模型(体外)和在人工前房中安装的分离兔角膜(体外)来监测葡萄糖。结果表明,该系统可以解释这些噪声源,并可以在运动引起的双折射的有限范围内准确监测生理血糖水平。在存在运动的双折射的情况下,使用体外和体外的双波长系统,标准误差分别为 14.5mg/dL 和 22.4mg/dL。结果表明,尽管双波长偏振法对运动引起的双折射补偿范围有限,但当正确对准时,它可以最小化随时间变化的角膜双折射的影响,运动范围大于体内报道的范围。

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