University of Texas Medical Branch, Laboratory for Optical Sensing and Monitoring, Center for Biomedical Engineering, Department of Neuroscience and Cell Biology, Department of Anesthesiology, Galveston, Texas, United States.
J Biomed Opt. 2017 Sep 1;22(9):91512. doi: 10.1117/1.JBO.22.9.091512.
Optoacoustic (photoacoustic) diagnostic modality is a technique that combines high optical contrast and ultrasound spatial resolution. We proposed using the optoacoustic technique for a number of applications, including cancer detection, monitoring of thermotherapy (hyperthermia, coagulation, and freezing), monitoring of cerebral blood oxygenation in patients with traumatic brain injury, neonatal patients, fetuses during late-stage labor, central venous oxygenation monitoring, and total hemoglobin concentration monitoring as well as hematoma detection and characterization. We developed and built optical parametric oscillator-based systems and multiwavelength, fiber-coupled highly compact, laser diode-based systems for optoacoustic imaging, monitoring, and sensing. To provide sufficient output pulse energy, a specially designed fiber-optic system was built and incorporated in ultrasensitive, wideband optoacoustic probes. We performed preclinical and clinical tests of the systems and the optoacoustic probes in backward mode for most of the applications and in forward mode for the breast cancer and cerebral applications. The high pulse energy and repetition rate allowed for rapid data acquisition with high signal-to-noise ratio from cerebral blood vessels, such as the superior sagittal sinus, central veins, and peripheral veins and arteries, as well as from intracranial hematomas. The optoacoustic systems were capable of automatic, real-time, continuous measurements of blood oxygenation in these blood vessels.
光声(超声)诊断模式是一种结合高光学对比度和超声空间分辨率的技术。我们提出将光声技术应用于多个领域,包括癌症检测、热疗(高热、凝固和冷冻)监测、创伤性脑损伤、新生儿、晚期分娩胎儿的脑血氧监测、中心静脉氧饱和度监测、总血红蛋白浓度监测以及血肿检测和特征分析。我们开发并构建了基于光学参量振荡器的系统和多波长、光纤耦合的高度紧凑的基于激光二极管的系统,用于光声成像、监测和传感。为了提供足够的输出脉冲能量,我们专门设计了光纤系统,并将其集成到超灵敏、宽带光声探头中。我们对这些系统和反向模式下的光声探头进行了临床前和临床测试,对于大多数应用,以及乳腺癌和脑部应用,则采用正向模式。高脉冲能量和重复率允许从大脑血管(如矢状窦、中心静脉和外周静脉和动脉)以及颅内血肿中快速采集具有高信噪比的信号。光声系统能够自动、实时、连续测量这些血管中的血氧饱和度。