University of Kentucky, Department of Biomedical Engineering, Lexington, Kentucky, United States.
University of Kentucky, Department of Pediatrics, College of Medicine, Lexington, Kentucky, United States.
J Biomed Opt. 2021 Jan;26(1). doi: 10.1117/1.JBO.26.1.012705.
There is an essential need to develop wearable multimodality technologies that can continuously measure both blood flow and oxygenation in deep tissues to investigate and manage various vascular/cellular diseases.
To develop a wearable dual-wavelength diffuse speckle contrast flow oximetry (DSCFO) for simultaneous measurements of blood flow and oxygenation variations in deep tissues.
A wearable fiber-free DSCFO probe was fabricated using 3D printing to confine two small near-infrared laser diodes and a tiny CMOS camera in positions for DSCFO measurements. The spatial diffuse speckle contrast and light intensity measurements at the two different wavelengths enable quantification of tissue blood flow and oxygenation, respectively. The DSCFO was first calibrated using tissue phantoms and then tested in adult forearms during artery cuff occlusion.
Phantom tests determined the largest effective source-detector distance (15 mm) and optimal camera exposure time (10 ms) and verified the accuracy of DSCFO in measuring absorption coefficient variations. The DSCFO detected substantial changes in forearm blood flow and oxygenation resulting from the artery occlusion, which meet physiological expectations and are consistent with previous study results.
The wearable DSCFO may be used for continuous and simultaneous monitoring of blood flow and oxygenation variations in freely behaving subjects.
迫切需要开发可穿戴式多模态技术,以连续测量深部组织中的血流和血氧,从而研究和管理各种血管/细胞疾病。
开发一种可穿戴式双波长漫散斑点对比血流血氧仪(DSCFO),以同时测量深部组织中的血流和血氧变化。
使用 3D 打印技术制造了一种无纤维的可穿戴式 DSCFO 探头,将两个小的近红外激光二极管和一个微小的 CMOS 相机固定在用于 DSCFO 测量的位置。在两个不同波长处的空间漫散斑点对比度和光强测量分别实现了组织血流和血氧的定量。首先使用组织体模对 DSCFO 进行校准,然后在成人前臂进行动脉袖带阻塞测试。
体模测试确定了最大有效源-探测器距离(15mm)和最佳相机曝光时间(10ms),并验证了 DSCFO 测量吸收系数变化的准确性。DSCFO 检测到动脉阻塞引起的前臂血流和血氧的显著变化,这些变化符合生理预期,并与先前的研究结果一致。
可穿戴式 DSCFO 可用于自由活动受试者的血流和血氧变化的连续和同时监测。