Department of Mechanical and Industrial Engineering, Center for Advanced Diffusion-Wave and Photoacoustic Technologies (CADIPT), University of Toronto, Toronto, Ontario, Canada.
J Biophotonics. 2019 Jul;12(7):e201800441. doi: 10.1002/jbio.201800441. Epub 2019 Apr 1.
We present a noninvasive and noncontacting biosensor using Wavelength Modulated Differential Photothermal Radiometry (WM-DPTR) to monitor blood glucose concentration (BGC) through interstitial fluid (ISF) probing in human middle fingers. WM-DPTR works in the interference-free mid-infrared range with differential wavelengths at the peak and baseline of the fundamental glucose molecule absorption band, giving rise to high glucose sensitivity and specificity. In vivo WM-DPTR measurements and simultaneous finger pricking BGC reference measurements were performed on diabetic and nondiabetic volunteers during oral glucose tolerance testing. The measurement results demonstrated high resolution and large dynamic range (~80 deg) change in phase signal in the normal-to-hyperglycemia BGC range (5 mmol/L to higher than 33.2 mmol/L), which were supported by negative control measurements. The immunity to temperature variation of WM-DPTR yields precise and accurate noninvasive glucose measurements in the ISF.
我们提出了一种使用波长调制差分光热辐射计(WM-DPTR)的无创、非接触式生物传感器,通过在人体中指间液(ISF)探测来监测血糖浓度(BGC)。WM-DPTR 在无干扰的中红外范围内工作,具有在基频葡萄糖分子吸收带的峰值和基线处的差分波长,从而具有高的葡萄糖灵敏度和特异性。在口服葡萄糖耐量试验期间,对糖尿病和非糖尿病志愿者进行了体内 WM-DPTR 测量和同时的手指刺破 BGC 参考测量。测量结果表明,在正常到高血糖 BGC 范围(5mmol/L 到高于 33.2mmol/L)内,相位信号具有高分辨率和大动态范围(~80 度)变化,这得到了阴性对照测量的支持。WM-DPTR 对温度变化的免疫性可在 ISF 中进行精确、准确的无创血糖测量。