Chen Xinlin, Lin Weihao, Wang Chenge, Chen Shaoheng, Sheng Jing, Zeng Bixin, Xu M
Institute of Lasers and Biomedical Photonics, Biomedical Engineering College, Wenzhou Medical University, Wenzhou, Zhejiang, 325035, China.
Dept. of Physics, Fairfield University, 1073 North Road, Fairfield, CT 06824, USA.
Biomed Opt Express. 2017 Nov 8;8(12):5468-5482. doi: 10.1364/BOE.8.005468. eCollection 2017 Dec 1.
We present the real-time single snapshot multiple frequency demodulation - spatial frequency domain imaging (SSMD-SFDI) platform implemented with a visible digital mirror device that is capable of imaging and monitoring dynamic turbid medium and processes over a large field of view. One challenge in quantitative imaging of biological tissue such as the skin is the complex structure rendering techniques based on homogeneous medium models to fail. To address this difficulty we have also developed a novel method that maps the layered structure to a homogeneous medium for spatial frequency domain imaging. The varying penetration depth of spatially modulated light on its wavelength and modulation frequency is used to resolve the layered structure. The efficacy of the real-time SSMD-SFDI platform and this two-layer model is demonstrated by imaging forearms of 6 healthy subjects under the reactive hyperemia protocol. The results show that our approach not only successfully decouples light absorption by melanin from that by hemoglobin and yields accurate determination of cutaneous hemoglobin concentration and oxygen saturation, but also provides reliable estimation of the scattering properties, the melanin content and the epidermal thickness in real time. Potential applications of our system in imaging skin physiological and functional states, cancer screening, and microcirculation monitoring are discussed at the end.
我们展示了一种通过可见数字微镜器件实现的实时单快照多频解调 - 空间频域成像(SSMD - SFDI)平台,该平台能够在大视野范围内对动态混浊介质及过程进行成像和监测。在诸如皮肤等生物组织的定量成像中,一个挑战是基于均匀介质模型的复杂结构渲染技术失效。为解决这一难题,我们还开发了一种新颖的方法,即将分层结构映射到均匀介质以进行空间频域成像。利用空间调制光在其波长和调制频率上不同的穿透深度来解析分层结构。通过在反应性充血方案下对6名健康受试者的前臂进行成像,证明了实时SSMD - SFDI平台和这种双层模型的有效性。结果表明,我们的方法不仅成功地将黑色素的光吸收与血红蛋白的光吸收解耦,并准确测定皮肤血红蛋白浓度和氧饱和度,还能实时可靠地估计散射特性、黑色素含量和表皮厚度。最后讨论了我们的系统在皮肤生理和功能状态成像、癌症筛查及微循环监测方面的潜在应用。