Center for Advanced Diffusion-Wave Technologies CADIFT, Department of Mechanical and Industrial Engineering, University of Toronto, ON M5S 3G8, Canada.
J Biophotonics. 2013 Dec;6(11-12):911-9. doi: 10.1002/jbio.201200103. Epub 2012 Aug 29.
Wavelength-Modulated Differential Laser Photothermal Radiometry (WM-DPTR) has been designed for noninvasive glucose measurements in the mid-infrared (MIR) range. Glucose measurements in human blood serum in the physiological range (20-320 mg/dl) with predicted error <10.3 mg/dl demonstrated high sensitivity and accuracy to meet wide clinical detection requirements, ranging from hypoglycemia to hyperglycemia. The glucose sensitivity and specificity of WM-DPTR stem from the subtraction of the simultaneously measured signals from two excitation laser beams at wavelengths near the peak and the baseline of the strongest interference-free glucose absorption band in the MIR range. It was found that the serum glucose sensitivity and measurement precision strongly depend on the tunability and stability of the intensity ratio and the phase shift of the two laser beams. This level of accuracy was favorably compared to other MIR techniques. WM-DPTR has shown excellent potential to be developed into a clinically viable noninvasive glucose biosensor.
波长调制差分激光光热辐射计(WM-DPTR)专为在中红外(MIR)范围内进行无创血糖测量而设计。在生理范围内(20-320mg/dl)对人血清中的葡萄糖进行测量,预测误差<10.3mg/dl,表现出高灵敏度和准确性,可满足从低血糖到高血糖的广泛临床检测要求。WM-DPTR 的葡萄糖灵敏度和特异性源于从两个近峰值和 MIR 范围内最强无干扰葡萄糖吸收带基线的激发激光束同时测量的信号中减去。结果发现,血清葡萄糖的灵敏度和测量精度强烈依赖于两个激光束强度比和相移的可调谐性和稳定性。与其他 MIR 技术相比,这种精度水平是有利的。WM-DPTR 已显示出发展成为一种可行的临床无创葡萄糖生物传感器的巨大潜力。